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ouabain

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Description

Ouabain is a naturally occurring cardiac glycoside extracted from the seeds and bark of the African plant *Strophanthus gratus*. It is a potent inhibitor of the Na+/K+-ATPase pump, an enzyme that plays a crucial role in maintaining cellular ion gradients and regulating heart function. Ouabain's inhibition of Na+/K+-ATPase leads to increased intracellular sodium concentrations, which indirectly inhibits the sodium-calcium exchanger, resulting in an increase in intracellular calcium levels. This elevation in calcium triggers a stronger and more forceful contraction of the heart muscle, making ouabain a valuable therapeutic agent for treating heart failure. However, its narrow therapeutic window and potential for toxicity limit its clinical use. Ouabain is also implicated in the regulation of blood pressure and has been studied as a potential target for developing new antihypertensive drugs. Research into ouabain focuses on understanding its complex pharmacological properties, its role in cardiovascular homeostasis, and its potential therapeutic applications, including its use as a potential anticancer agent. The research surrounding ouabain is motivated by its potential as a therapeutic agent, its unique mechanism of action, and its involvement in various physiological processes.'

Ouabain: A cardioactive glycoside consisting of rhamnose and ouabagenin, obtained from the seeds of Strophanthus gratus and other plants of the Apocynaceae; used like DIGITALIS. It is commonly used in cell biological studies as an inhibitor of the NA(+)-K(+)-EXCHANGING ATPASE. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

cardiac glycoside : Steroid lactones containing sugar residues that act on the contractile force of the cardiac muscles. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

ouabain : A steroid hormone that is a multi-hydroxylated alpha-L-rhamnosyl cardenoloide. It binds to and inhibits the plasma membrane Na(+)/K(+)-ATPase (sodium pump). It has been isolated naturally from Strophanthus gratus. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

FloraRankFlora DefinitionFamilyFamily Definition
StrophanthusgenusA plant genus of the family APOCYNACEAE that contains OUABAIN cardiac glycosides.[MeSH]ApocynaceaeThe dogbane family of the order Gentianales. Members of the family have milky, often poisonous juice, smooth-margined leaves, and flowers in clusters.[MeSH]
Strophanthus gratusspecies[no description available]ApocynaceaeThe dogbane family of the order Gentianales. Members of the family have milky, often poisonous juice, smooth-margined leaves, and flowers in clusters.[MeSH]
StrophanthusgenusA plant genus of the family APOCYNACEAE that contains OUABAIN cardiac glycosides.[MeSH]ApocynaceaeThe dogbane family of the order Gentianales. Members of the family have milky, often poisonous juice, smooth-margined leaves, and flowers in clusters.[MeSH]
Strophanthus gratusspecies[no description available]ApocynaceaeThe dogbane family of the order Gentianales. Members of the family have milky, often poisonous juice, smooth-margined leaves, and flowers in clusters.[MeSH]

Cross-References

ID SourceID
PubMed CID4605
CHEMBL ID1720907
CHEBI ID91723
MeSH IDM0015582
PubMed CID439501
CHEMBL ID222863
CHEBI ID472805
SCHEMBL ID15433
MeSH IDM0015582

Synonyms (153)

Synonym
smr001551689
HMS3267G08
BRD-A46747628-001-01-9
card-20(22)-enolide,5,11,14,19-pentahydroxy-, (1.beta.,3.beta.,5.beta.,11.alpha.)-
mls002702983 ,
wln: l e5 b666tj a1q cq e1 iq mq qq f- dt5ov ehj& oo- bt6otj cq dq eq f1
NSC25485 ,
strophanthin g
NCI60_002047
3-((6-deoxyhexopyranosyl)oxy)-1,5,11,14,19-pentahydroxycard-20(22)-enolide
3-[(6-deoxyhexopyranosyl)oxy]-1,5,11,14,19-pentahydroxycard-20(22)-enolide
FT-0673316
card-20(22)-enolide, 3-[(6-deoxy-.alpha.-l-mannopyranosyl)oxy]-1,5,11,14,19-pentahydroxy-, octahydrate, (1.beta.,3.beta.,5.beta.,11.alpha.)-
CHEMBL1720907
CHEBI:91723
Q27163538
3-[1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-[(3,4,5-trihydroxy-6-methyl-2-oxanyl)oxy]-2,3,4,6,7,8,9,11,12,15,16,17-dodecahydro-1h-cyclopenta[a]phenanthren-17-yl]-2h-furan-5-one
FT-0771593
DTXSID00859515
3beta-[(6-deoxy-alpha-l-talopyranosyl)oxy]-1beta,5,11alpha,14,19-pentahydroxy-5beta-card-20(22)-enolide
BRD-K35708212-331-03-1
strophoperm
rectobaina
gratus strophanthin
strophosan
solufantina
uabaina
strophalen
ouabagenin l-rhamnoside
strodival
nsc-25485
acocantherin
gratibain
purostrophan
ouabaine
kombetin
g-strophicor
smr000058492
MLS000069786 ,
EU-0100943
nsc 25485
brn 0101712
einecs 211-139-3
uabanin
ouabagenin-l-rhamnosid [german]
hsdb 3519
ccris 965
3-(6-deoxy-alpha-l-mannopyranosyloxy)-1,5,11a,14,19-pentahydroxycard-20(22)-enolide
card-20(22)-enolide, 3-((6-deoxy-alpha-l-mannopyranosyl)oxy)-1,5,11,14,19-pentahydroxy-, (1beta,3beta,5beta,11alpha)-
quabain
3-((6-deoxy-alpha-l-mannopyranosyl)oxy)-1,5,11alpha,14,19-pentahydroxycard-20(22)-enolide
D00112
g-strophanthin (jan)
SMP1_000142
BPBIO1_000664
PRESTWICK3_000471
LOPAC0_000943
cardiac glycoside
card-20(22)-enolide, 3-[(6-deoxy-.alpha.-l-mannopyranosyl)oxy]-1,5,11,14,19-pentahydroxy-, (1.beta.,3.beta.,5.beta.,11.alpha.)-
3-[(6-deoxy-.alpha.-l-mannopyranosyl)oxy]-1,5,11.alpha.,14,19-pentahydroxycard-20(22)-enolide
astrobain
3-[(1r,3s,5s,8r,9s,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-tetrahydropyran-2-yl]oxy-2,3,4,6,7,8,9,11,12,15,16,17-dodecahydro-1h-cyclopenta[a]phenanthren-17-yl]-2h-furan-5-one
ouabain
C01443
g-strophanthin
obn ,
oubain
ouabain anhydrous
DB01092
3-(alpha-l-rhamnopyranosyloxy)-1beta,5beta,11alpha,14,19-pentahydroxy-5beta-card-20(22)-enolide
1IBG
ouabain, octahydrate
PRESTWICK0_000471
PRESTWICK1_000471
SPBIO_002541
PRESTWICK2_000471
BSPBIO_000602
SR-01000721848-2
NCGC00017394-02
acocantherine
O 3125 ,
HMS2089J19
4-[1,5,11,14-tetrahydroxy-10-hydroxymethyl-13-methyl-3-(3,4,5-trihydroxy-6-methyl-tetrahydro-pyran-2-yloxy)-hexadecahydro-cyclopenta[a]phenanthren-17-yl]-5h-furan-2-one(ouabain)
CHEBI:472805 ,
sr-01000076047
NCGC00017394-07
CHEMBL222863 ,
sr-01000721848
SR-01000721848-4
ouabagenin-l-rhamnosid
ouabain4-[1,5,11,14-tetrahydroxy-10-hydroxymethyl-13-methyl-3-(3,4,5-trihydroxy-6-methyl-tetrahydro-pyran-2-yloxy)-hexadecahydro-cyclopenta[a]phenanthren-17-yl]-5h-furan-2-one
4-((1r,3s,5s,8r,9s,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-tetrahydro-2h-pyran-2-yloxy)-hexadecahydro-1h-cyclopenta[a]phenanthren-17-yl)furan-2(5h)-one
4-[1,5,11,14-tetrahydroxy-10-hydroxymethyl-13-methyl-3-(3,4,5-trihydroxy-6-methyl-tetrahydro-pyran-2-yloxy)-hexadecahydro-cyclopenta[a]phenanthren-17-yl]-5h-furan-2-one
4-[(1r,3s,5s,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-hydroxymethyl-13-methyl-3-((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-tetrahydro-pyran-2-yloxy)-hexadecahydro-cyclopenta[a]phenanthren-17-yl]-5h-furan-2-one
bdbm50286739
cid_439501
4-[(r)-1,5,11,14-tetrahydroxy-10-hydroxymethyl-13-methyl-3-(3,4,5-trihydroxy-6-methyl-tetrahydro-pyran-2-yloxy)-hexadecahydro-cyclopenta[a]phenanthren-17-yl]-5h-furan-2-one
4-((1r,3s,5s,8r,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-tetrahydro-2h-pyran-2-yloxy)-hexadecahydro-1h-cyclopenta[a]phenanthren-17-yl)furan-2(5h)-one
HMS3262N08
tox21_301547
dtxcid8023765
cas-630-60-4
NCGC00255970-01
dtxsid0043765 ,
tox21_112057
NCGC00013319-01
tox21_110024
CCG-205024
HMS2235A07
strophanthin-g
5-18-05-00625 (beilstein handbook reference)
unii-5acl011p69
5acl011p69 ,
LP00943
EPITOPE ID:161502
strophantin-g
4-[(1s,2r,3r,5s,7s,10r,11s,14r,15r,17r)-3,7,11,17-tetrahydroxy-2-(hydroxymethyl)-15-methyl-5-{[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyloxan-2-yl]oxy}tetracyclo[8.7.0.0^{2,7}.0^{11,15}]heptadecan-14-yl]-2,5-dihydrofuran-2-one
gtpl4826
CCG-208243
SCHEMBL15433
3N23
NCGC00263656-01
tox21_112057_1
3A3Y
ouabain [mart.]
g-strophanthin [jan]
ouabain [who-dd]
ouabain anhydrous [hsdb]
ouabain [mi]
card-20(22)-enolide, 3-((6-deoxy-.alpha.-l-mannopyranosyl)oxy)-1,5,11,14,19-pentahydroxy-, (1.beta.,3.beta.,5.beta.,11.alpha.)-
g-strophanthin [mi]
(1.beta.,3.beta.,5.beta.,11.alpha.)-3-((6-deoxy-.alpha.-l-mannopyranosyl)oxy)-1,5,11,14,19-pentahydroxycard-20(22)-enolide
ouabain [ep monograph]
NCGC00261628-01
tox21_500943
AKOS024285581
c29h44o12.8h2o
HB1140
3-[(6-deoxy-alpha-l-mannopyranosyl)oxy]-1,5,11alpha,14,19-pentahydoxycard-20(22)-enolide
OPERA_ID_395
REGID_FOR_CID_439501
SR-01000076047-1
4-((1r,3s,5s,8r,9s,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-(((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyltetrahydro-2h-pyran-2-yl)oxy)hexadecahydro-1h-cyclopenta[a]phenanthren-17-yl)furan-2(5h)-one
SR-01000076047-5
NCGC00017394-11
(1alpha,3beta,5beta,11alpha,17alpha)-3-[(6-deoxy-alpha-l-mannopyranosyl)oxy]-1,5,11,14,19-pentahydroxycard-20(22)-enolide
Q285911
4-((1r,3s,5s,9s,10r,11r,13r,14s,17r)-1,5,11,14-tetrahydroxy-10-(hydroxymethyl)-13-methyl-3-((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyltetrahydro-2h-pyran-2-yloxy)hexadecahydro-1h-cyclopenta[a]phenanthren-17-yl)furan-2(5h)-one
SDCCGSBI-0050917.P002
NCGC00015769-17
NCGC00015769-32
EN300-19631221
4-[(1r,3as,3br,5as,7s,9r,9ar,9bs,10r,11ar)-3a,5a,9,10-tetrahydroxy-9a-(hydroxymethyl)-11a-methyl-7-{[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyloxan-2-yl]oxy}-hexadecahydro-1h-cyclopenta[a]phenanthren-1-yl]-2,5-dihydrofuran-2-one

Research Excerpts

Toxicity

Potassium cyanide abolishes the toxic effect of Abeta(25-35) to erythrocytes. mercaptosuccinate, a glutathione peroxidase inhibitor, and ouabain, a Na+,K+-ATPase inhibitors, promote it. During toxicity there is progressive increase in contractile force. Progressive prolongation of intramyocardial conduction occurs in nontoxic and toxic doses.

ExcerptReferenceRelevance
" The cumulative toxic dose of ouabain was modestly but significantly less (P less than ."( Digitalis toxicity during acute hypoxia in intact conscious dogs.
Beller, GA; Smith, TW, 1975
)
0.25
"Twenty-nine patients with gynaecological cancers who received over 400 mg of doxorubicin were monitored electrocardiographically to determine whether cardiac glycosides countered the adverse effects of high total doses of doxorubicin."( Doxorubicin cardiotoxicity: possible role of digoxin in its prevention.
Gibson, AL; Guthrie, D, 1977
)
0.26
"An attempt was made to study the effect of furosemide on the toxic and lethal dose (LD) of ouabain."( [Effect of furosemide on ouabain toxicity in guinea pigs (author's transl)].
Kanamori, K; Kobayashi, T; Minami, M; Miyamoto, A; Otani, T; Saito, H; Sakurai, M; Togashi, H; Yasuda, H, 1978
)
0.26
" During toxicity there is progressive increase in contractile force with continued ouabain infusion Progressive prolongation of intramyocardial conduction occurs in nontoxic and toxic doses, but His-Purkinje conduction is prolonged only in supratoxic doses."( Contractile and electrophysiological responses to progressive digitalis toxicity.
Banka, VS; Helfant, RH; Scherlag, BJ, 1975
)
0.25
" The neurotoxicity induced by carbamazepine may be involved in the teratogenic and adverse effects of overdose associated with the treatment of manic-depressive illness and seizures."( Carbamazepine-induced neurotoxicity and its prevention by NMDA in cultured cerebellar granule cells.
Chuang, DM; Gao, XM, 1992
)
0.28
" It has been found that highly toxic doses of the drugs produced no changes in the cell multiplication of normal human fibroblasts."( [The cytotoxicity of strophanthin G and digoxin].
Narimanov, AA,
)
0.13
"We studied the influence of magnesium on contractility and on force-frequency-relationship as well as on the positive inotropic and toxic effects of ouabain (OUA) on electrically driven human right auricular trabeculae."( Increase of the extracellular magnesium concentration reduces cardiac glycoside toxicity in the human myocardium.
Böhm, M; Erdmann, E; Koch, A; La Rosée, K; Schwinger, RH; Uhlmann, R, 1992
)
0.28
"To see whether the Na/H antiporter plays a role in digitalis cardiotoxicity, we investigated the influence of modulators of Na/H exchange on the toxic effects of ouabain in isolated, paced (0."( Opposite modulation of ouabain cardiotoxicity by hexamethyleneamiloride and phenylephrine.
Anagnostopoulos, T; Terzic, A; Vogel, SM, 1991
)
0.28
" In Purkinje fibers exposed to toxic concentrations of ouabain, R 56865 (1 microM) reduced the delayed after depolarization (DAD) amplitude and inhibited triggered activity."( Investigation of electrophysiologic mechanisms for the antiarrhythmic actions of R 56865 in cardiac glycoside toxicity.
Damiano, BP; Stump, GL; Yagel, SK, 1991
)
0.28
" The toxic effects of tyledoside F and ouabain on cardiac myocytes were also investigated by observing the effect of the Ca2+ overload on the variability of myocytes during a period of 75 min."( The toxic effects on cardiac myocytes of tyledoside F, a cumulative neurotoxic cardiac glycoside isolated from Tylecodon grandiflorus.
van der Walt, JJ; van Rooyen, JM, 1990
)
0.28
"This study examined effects of extracellular magnesium (Mg++0) on the positive inotropic and toxic actions of cardiotonic steroids in cardiac muscle isolated from guinea pig heart."( Extracellular magnesium and cardiotonic steroid toxicity in isolated myocardial preparations.
Kafiluddi, R; Kennedy, RH; Seifen, E, 1989
)
0.28
" Assuming that the low affinity forms are responsible for the toxic effect, these data correlate well with some of the physiological findings and suggest that the diminished toxicity for ouabain in hypertrophied hearts rather reflects a modification of the properties of the (Na+, K+)-ATPases than a change in the myocardial calcium metabolism."( Diminished toxicity of ouabain in the hypertrophied rat heart.
Berrebi-Bertrand, I; Chevalier, B; Lelièvre, LG; Mouas, C; Swynghedauw, B, 1989
)
0.28
"Isolated perfused guinea pig (Langendorff) heart was employed to determine if the myocardial mechanical dysfunction (mechanical toxicity) produced by toxic concentration of ouabain (1 microM) was accompanied by alterations in mitochondrial function."( Digitalis cardiotoxicity: cellular calcium overload a possible mechanism.
Agbanyo, M; Hoeschen, RJ; Khatter, JC; Navaratnam, S; Nero, B,
)
0.13
"Effects of amiloride on the inotropic and toxic actions of cardiac glycosides were examined using left atrial muscle isolated from guinea pig heart."( Suppression of positive inotropic and toxic effects of cardiac glycosides by amiloride.
Akera, T; Brody, TM; Kennedy, RH, 1985
)
0.27
"In the in vitro perfusion of the isolated heart, toxic doses of cardiac glycosides produce an inotropic response which is followed by a decline in contractile force and an increase in the resting tension."( Digitalis-induced mechanical toxicity: protection by slow Ca++ channel blockers.
Agbanyo, M; Bains, R; Hoeschen, RJ; Khatter, JC; Navaratnam, S, 1986
)
0.27
"It has long been proposed that the excitatory and toxic properties of acidic amino acid receptor agonists are linked."( Amino acid neurotoxicity: relationship to neuronal depolarization in rat cerebellar slices.
Garthwaite, G; Garthwaite, J; Hajós, F, 1986
)
0.27
" The compounds also exhibited toxicity; however, transformation was observed at non-toxic as well as toxic doses."( Comparison of arsenic-induced cell transformation, cytotoxicity, mutation and cytogenetic effects in Syrian hamster embryo cells in culture.
Barrett, JC; Lee, TC; Oshimura, M, 1985
)
0.27
"Enhanced susceptibility to toxic arrhythmias by digitalis administration has been reported in clinical and experimental myocardial infarction."( Enhancement of triggered activity in ischemic Purkinje fibers by ouabain: a mechanism of increased susceptibility to digitalis toxicity in myocardial infarction.
El-Sherif, N; Gough, WB; Hariman, RJ; Zeiler, RH, 1985
)
0.27
" Our results suggest that the dose-related stimulatory, permeabilizing, and toxic effects of AmB most probably have distinct mechanisms of action and may be independent of one another."( Stimulatory, permeabilizing, and toxic effects of amphotericin B on L cells.
Brajtburg, J; Elberg, S; Kobayashi, GS; Medoff, G; Medoff, J; Schlessinger, D, 1984
)
0.27
"The effects of hypoxia on the tolerance of myocardium to the toxic actions of digitalis were studied in isolated heart muscle preparations."( Effects of myocardial hypoxia on digitalis-induced toxicity in the isolated heart of guinea pigs and cats.
Akera, T; Kim, DH, 1984
)
0.27
"We evaluated the hypothesis that the area postrema facilitates the cardiac arrhythmias caused by toxic doses of digitalis."( Lack of protection against ouabain cardiotoxicity after chronic ablation of the area postrema in cats.
Borison, HL; Riancho, JA; Thron, CD, 1984
)
0.27
" Dx infused intravenously to conscious or anaesthetized guinea-pigs proved as cardiotoxic as amitriptyline but more toxic than protriptyline, thus confirming our previous results in rabbits."( Prostaglandins and the cardiotoxic effects of doxepin in rabbits and guinea-pigs.
Elonen, E; Eränkö, P; Mattila, MJ; Puisto, EL, 1980
)
0.26
" (1 microgram/kg per min) to establish the control toxic doses and the level of ouabain in the heart at death."( Centrally mediated enhancement of ouabain cardiotoxicity by angiotensin II in dogs.
Fleming, JT; Holl, JE, 1982
)
0.26
" Saline-treated guinea pigs with prior fear conditioning became digitalis toxic at a significantly lower dose of the drug than control guinea pigs that had not had exposure to signaled shock."( Cholinergic activation produces psychosomatic digitalis toxicity.
Cagin, NA; Natelson, BH, 1981
)
0.26
" Contrary to their action in the toxic effect, both 100 microM amiloride and the intracellular loading of BAPTA failed to counteract the nontoxic effect of 1 microM ouabain."( Toxic and nontoxic effects of ouabain on the transmitter release from frog motor nerve terminals.
Enomoto, K; Hara, N; Ichinose, M; Maeno, T; Sawada, M, 1995
)
0.29
" It is postulated that one important toxic effect of ammonia/ammonium is an increased demand for maintenance energy, caused by the need to maintain ion gradients over the cytoplasmic membrane."( Mechanisms of ammonia and ammonium ion toxicity in animal cells: transport across cell membranes.
Häggström, L; Martinelle, K, 1993
)
0.29
"Oxidized ouabain, a product of the oxidative cleavage of the rhamnose ring in ouabain has been found to have a higher inotropic toxic ratio in cultured cardiac myocytes."( In vivo assessment of the inotropic and toxic effects of oxidized ouabain.
Arad, M; Heller, M; Rabinowitz, B; Shotan, A; Uretzki, G,
)
0.13
" We perfused toxic dose of either ouabain, dihydroouabain (hydrophilic cardiac steroids), ouabagenin or digitoxin (hydrophobic steroids) in conditions of endocytosis inhibited."( Endocytosis inhibition protects the isolated guinea pig heart against ouabain toxicity.
Atonal, F; Contreras, P; Melendez, E; Núñez-Durán, H, 1996
)
0.29
" Bumetanide could possibly be used in antifungal therapy to increase amphotericin B effectiveness doses without increasing its adverse effects."( Amphotericin B-induced apoptosis and cytotoxicity is prevented by the Na+, K+, 2Cl(-)-cotransport blocker bumetanide.
Grankvist, K; Henriksson, R; Marklund, L, 2000
)
0.31
" Our results suggest that some cells may have mechanisms to protect themselves from ouabain toxicity and that MRP1 may have a role in controlling the toxic effects of ouabain."( Reduced glutathione protect cells from ouabain toxicity.
Affonso-Mitidieri, O; Capella, LS; Capella, MA; Gefé, M; Lopes, AG; Morales, MM; Rumjanek, VM; Silva, EF, 2001
)
0.31
"The antifungal antibiotic amphotericin B causes considerable toxic effects during clinical therapy."( Bumetanide annihilation of amphotericin B-induced apoptosis and cytotoxicity is due to its effect on cellular K+ flux.
Behnam-Motlagh, P; Grankvist, K; Henriksson, R; Marklund, L, 2001
)
0.31
"The toxic effect of digitalis compounds at cell level produces an intracellular Ca2+ overload and a decrease in intracellular concentrations of K+."( [Mechanism of cellular toxicity induced by digitalis compounds. Study with ouabain].
Avila Casados, Mdel C; Maldonado Lagunas, V; Meléndez Zajgla, J; Pastelín Hernández, G; Ramírez Ortega, Mdel C; Suárez Munguía, J; Zarco Olvera, G,
)
0.13
" We conclude that the electrical and physiologic imbalance produced by toxic doses of ouabain activates mechanisms that cause cell death via apoptosis in heart myocites and fast growing cells."( [Mechanism of cellular toxicity induced by digitalis compounds. Study with ouabain].
Avila Casados, Mdel C; Maldonado Lagunas, V; Meléndez Zajgla, J; Pastelín Hernández, G; Ramírez Ortega, Mdel C; Suárez Munguía, J; Zarco Olvera, G,
)
0.13
" Veratridine (100 microM) or ouabain alone (500 microM) were not toxic to the cells."( A novel toxicity-based assay for the identification of modulators of voltage-gated Na+ channels.
Weiser, T, 2004
)
0.32
" We tested whether the NCX or NCKX family of exchangers contributes most to the toxic NMDA-induced Ca(2+) influx in depolarized neurons."( Differential contribution of plasmalemmal Na/Ca exchange isoforms to sodium-dependent calcium influx and NMDA excitotoxicity in depolarized neurons.
Baranauskas, G; Czyz, A; Kiedrowski, L; Li, XF; Lytton, J, 2004
)
0.32
" In conclusion, the present data suggest that both antioxidant systems, glutathione and trypanothione/trypanothione reductase, participate in protection of Leishmania against the toxic effect of nitrogen-derived reactive species."( Glutathione and the redox control system trypanothione/trypanothione reductase are involved in the protection of Leishmania spp. against nitrosothiol-induced cytotoxicity.
Cruz, AK; Cunha, FQ; Ferreira, SH; Fonseca, SG; Hothersall, JS; Moraes, RH; Noronha-Dutra, AA; Romão, PR; Tovar, J, 2006
)
0.33
" Potassium cyanide, a Cu,Zn-superoxide dismutase inhibitor, abolishes the toxic effect of Abeta(25-35) to erythrocytes, whereas mercaptosuccinate, a glutathione peroxidase inhibitor, and ouabain, a Na+,K+-ATPase inhibitor, promote it."( [Role of glycolysis and antioxidant enzymes in the toxicity of amyloid beta peptide Abeta25-35 to erythrocytes].
Kaminskiĭ, IuG; Kosenko, EA; Marov, NV; Pogosian, AS; Solomadin, IN; Venediktova, NI,
)
0.13
" Neutral red uptake showed that ascorbate, but not dehydroascorbate, was highly toxic in the MMe cell lines REN and MM98, and less toxic in immortalized (human mesothelial cells-htert) and primary mesothelial cells."( Selective ascorbate toxicity in malignant mesothelioma: a redox Trojan mechanism.
Biffo, S; Burlando, B; Ranzato, E, 2011
)
0.37
"Cardiac glycosides, which inhibit the plasma membrane Na(+) pump, are one of the four categories of drug recommended for routine use to treat heart failure, yet their therapeutic window is limited by toxic effects."( Role of mitochondrial dysfunction in cardiac glycoside toxicity.
Brown, DA; Liu, T; O'Rourke, B, 2010
)
0.36
"Because cardenolides specifically inhibit the Na(+)K(+)-ATPase, insects feeding on cardenolide-containing plants need to circumvent this toxic effect."( Functional evidence for physiological mechanisms to circumvent neurotoxicity of cardenolides in an adapted and a non-adapted hawk-moth species.
Dobler, S; Petschenka, G; Pick, C; Wagschal, V, 2013
)
0.39
" The toxic effects of brevetoxins are believed to be due to the activation of voltage-sensitive sodium channels in cell membranes."( A new cytotoxicity assay for brevetoxins using fluorescence microscopy.
Bourdelais, AJ; Elliott, EA; McCall, JR, 2014
)
0.4
" These findings suggest that BMSCs are safe after cell transplantation for the treatment of stroke."( Short-, middle- and long-term safety of superparamagnetic iron oxide-labeled allogeneic bone marrow stromal cell transplantation in rat model of lacunar infarction.
Abumiya, T; Hamauchi, S; Hokari, M; Houkin, K; Kazumata, K; Nakayama, N; Shichinohe, H; Tan, C, 2015
)
0.42
" In addition, OBG repressed the expression of epithelial sodium channel (ENaC), a LXR target gene, without causing hepatic steatosis, a typical side effect of conventional LXR ligands."( Ouabagenin is a naturally occurring LXR ligand without causing hepatic steatosis as a side effect.
Fukunaga, K; Kato, S; Okada, M; Shinoda, Y; Shioda, N; Tamura, S; Ueda, M; Ui-Tei, K, 2018
)
0.48

Pharmacokinetics

No significant differences were found in the following experiments with digoxin and ouabain in control and protein-deficient animals. We examined digoxin transport in the presence and absence of ou abain to determine whether digoxin binding to Na+K(+)-ATPase affects its transcellular transport.

ExcerptReferenceRelevance
"Current pharmacologic texts recognize no significant pharmacodynamic differences between the various cardiac glycosides."( Pharmacodynamic distinctions between ouabain, digoxin and digitoxin.
Dale, EM; Dalton, RE; Havemann, DF; Holden, P; Kilgore, WM; Runge, TM; Stephens, JC, 1975
)
0.25
" Half-life (t1/2) for its net release from LV in buffer was 32."( Enhanced clearance of specifically bound digoxin from human myocardial and skeletal muscle samples by specific digoxin antibody fragments: subsequent complete digitalis glycoside receptor (Na,K-ATPase) quantification.
Kjeldsen, K; Schmidt, TA, 1991
)
0.28
" Sodium efflux obeyed first-order kinetics with a half-life of about 9 min."( Volume, sodium content and sodium efflux of human mononucleated cells: characteristics and methodological problems.
Jest, P; Klitgaard, NA; Pedersen, KE, 1987
)
0.27
" No significant differences were found in the following experiments with digoxin and ouabain in control and protein-deficient animals: inotropic effects of ouabain on isolated papillary muscles and left atria; uptake of [3H]ouabain by isolated papillary muscles; ventricular fibrillatory doses of digoxin and ouabain in anesthetized animals and the concentrations of digoxin in plasma and papillary muscles at the onset of ventricular fibrillation in these animals; plasma half-life of digoxin in unanesthetized guinea pigs."( Myocardial effects and pharmacokinetics of digoxin and ouabain in protein-deficient guinea pigs.
Varma, DR, 1980
)
0.26
" We examined digoxin transport in the presence and absence of ouabain to determine whether digoxin binding to Na+,K(+)-ATPase affects its transcellular digoxin transport, and evaluated its influx and efflux clearance by model-dependent pharmacokinetic analysis."( Pharmacokinetic characterization of transcellular transport and drug interaction of digoxin in Caco-2 cell monolayers.
Aiba, T; Hashimoto, Y; Ishida, K; Okuno, M; Yoshinaga, M, 2005
)
0.33

Compound-Compound Interactions

ExcerptReferenceRelevance
" These results suggest that bufalin in combination with VP16, all-trans retinoic acid, 1 alpha,25-dihydroxyvitamin D3, rTNF-alpha, or gamma-interferon may be very useful in the differentiation of human leukemia."( Induction by bufalin of differentiation of human leukemia cells HL60, U937, and ML1 toward macrophage/monocyte-like cells and its potent synergistic effect on the differentiation of human leukemia cells in combination with other inducers.
Kuroiwa, Y; Nakaya, K; Yoshida, T; Zhang, L, 1992
)
0.28
"The effect of strophanthine-g and its combination with different concentrations of calcium in Tyrode solution was studied in guinea-pig auriculi atrii contracting under the effect of isometric electric stimulation."( [Inotropic effect of strophanthin in combination with calcium on the heart muscle].
Bratus', VV; Chekman, IS; Gorchakova, NA; Mudraia, IS, 1985
)
0.27
"A modified technique of acetylcholine assay on the guinea pig ileum has been combined with either minivolume gel filtration or high-performance liquid chromatography separation of the samples."( A simple and sensitive method of acetylcholine identification and assay. Bioassay combined with minicolumn gel filtration or high-performance liquid chromatography.
Duncalf, D; Foldes, FF; Hársing, LG; Nagashima, H; Potter, P; Vizi, ES, 1985
)
0.27
" The present study was undertaken to investigate the role of sodium pump activity in warm induction of cardioplegia combined with reperfusion of oxygenated cardioplegic solution."( Role of sodium pump activity in warm induction of cardioplegia combined with reperfusion of oxygenated cardioplegic solution.
Imamura, H; Inagaki, C; Ko, T; Omori, K; Otani, H, 1995
)
0.29
" Selected cardiac glycosides were tested in combination with four clinically relevant cytotoxic drugs (5-fluorouracil, oxaliplatin, cisplatin, irinotecan)."( Cytotoxic effects of cardiac glycosides in colon cancer cells, alone and in combination with standard chemotherapeutic drugs.
Bohlin, L; Felth, J; Fryknäs, M; Gullbo, J; Lindskog, M; Rickardson, L; Rosén, J; Wickström, M, 2009
)
0.35
"The hepatic organic anion transporting polypeptides (OATPs) influence the pharmacokinetics of several drug classes and are involved in many clinical drug-drug interactions."( Classification of inhibitors of hepatic organic anion transporting polypeptides (OATPs): influence of protein expression on drug-drug interactions.
Artursson, P; Haglund, U; Karlgren, M; Kimoto, E; Lai, Y; Norinder, U; Vildhede, A; Wisniewski, JR, 2012
)
0.38

Bioavailability

Ouabain (10(-4) M) in the perfusate the fluid absorption rate fell to 57 nl/s. It is well established that digitalis compounds present great variability in their respective "in vivo" bioavailability in human.

ExcerptReferenceRelevance
" The rate of absorption decreased from the colon to the duodenum (colon greater than ileum greater than jejunum greater than duodenum)."( Intestinal oxalate absorption. I. Absorption in vitro.
Caspary, WF, 1977
)
0.26
" The disaccharide lactulose (galactosyl-beta-1,4-fructose) was poorly absorbed from rat small intestine in vitro and human mouth in vivo."( Absorption of lactulose from mammalian gastrointestinal tract.
Evered, DF; Sadoogh-Abasian, F, 1979
)
0.26
" It is well established that digitalis compounds present great variability in their respective "in vivo" bioavailability in human (60-90% for digoxin, 0% for ouabain)."( Intestinal absorption of drugs: digitalis binding and transport by brush-border membrane vesicles from human duodenum.
Coppens, R; Di Marino, V; Durand, A; Masset, D; Placidi, M; Rahmani, R; Rahmani-Jourdheuil, D, 1991
)
0.28
" The absolute bioavailability of nasal tetraethylammonium administration was 79%."( Nasal absorption of tetraethylammonium in rats.
Kato, Y; Kimura, R; Miwa, M; Sato, M; Yamada, S,
)
0.13
" With ouabain (10(-4) M) in the perfusate the fluid absorption rate fell to 57 nl/s (S."( Significance of active ion transport in transalveolar water absorption: a study on isolated rat lung.
Basset, G; Crone, C; Saumon, G, 1987
)
0.27
" The effect of sodium alginate both on the rate of absorption and the calcium/strontium discrimination ratio has been confirmed."( The passage of calcium and strontium across the gut of the anaesthetized goat.
Gibbons, RA; Sansom, BF; Sellwood, R, 1972
)
0.25
" Both anti-arrhythmic efficacy and bioavailability were compared to oral drug."( Sublingual absorption of the quaternary ammonium antiarrhythmic agent, UM-272.
Lucchesi, BR; Patterson, E; Stetson, P, 1983
)
0.27
" The control solution contained only 80% of the normal NaCl concentration, the remainder of the osmolality was made up by mannitol, a condition that did not significantly decrease the fluid absorption rate in gallbladder sac preparations."( Gallbladder epithelial cell hydraulic water permeability and volume regulation.
Persson, BE; Spring, KR, 1982
)
0.26
" The bioavailability of EO0122 by the oral route exceeded 80% of the oral dose."( A preclinical study of EO-122, a new lidocaine-like antiarrhythmic drug.
Bruckstein, R; Cohen, S; Kaplinsky, E; Kariv, N; Oppenheimer, E, 1980
)
0.26
" These results suggest that different mechanisms may operate in the BL efflux of L-lysine from human intestinal epithelial cells, depending on the extracellular availability of other amino acids, to guarantee optimal bioavailability of this essential amino acid both in the postprandial absorptive period and between meals."( The efflux of lysine from the basolateral membrane of human cultured intestinal cells (Caco-2) occurs by different mechanisms depending on the extracellular availability of amino acids.
Di Girolamo, M; Ferruzza, S; Ranaldi, G; Sambuy, Y, 1997
)
0.3
" The aim of this study was to analyse whether ouabain treatment alters the nitric oxide bioavailability in cerebral arteries."( Ouabain treatment increases nitric oxide bioavailability and decreases superoxide anion production in cerebral vessels.
Alonso, MJ; Beltrán, AE; Briones, AM; Hernanz, R; Martín, A; Salaices, M; Tejerina, T, 2008
)
0.35
"Nutrient transporters expressed on cell membrane have been targeted for enhancing bioavailability of poorly permeable drugs."( Molecular expression and functional activity of sodium dependent multivitamin transporter in human prostate cancer cells.
Mitra, AK; Patel, M; Shah, S; Vadlapatla, RK, 2012
)
0.38
"The ATP-binding cassette transporter P-glycoprotein (P-gp) is known to limit both brain penetration and oral bioavailability of many chemotherapy drugs."( A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
Ambudkar, SV; Brimacombe, KR; Chen, L; Gottesman, MM; Guha, R; Hall, MD; Klumpp-Thomas, C; Lee, OW; Lee, TD; Lusvarghi, S; Robey, RW; Shen, M; Tebase, BG, 2019
)
0.51

Dosage Studied

Ouabain-sensitive [86Rb] uptake and degranulation increased in parallel and in a dose-response fashion with increasing Fc receptor cross-linking. Dose-response curves to calcium in SHR aortae treated with 10(-3) mol/l ouabains were shifted to the left of those in WKY.

ExcerptRelevanceReference
" Inotropic and chronotropic dose-response studies to isoproterenol in the anesthetized dog demonstrated that the quarternary compound lacked beta adrenergic receptor blocking properties."( The antiarrhythmic and cardiovascular properties of 1-dimethyl isopropylamino-3-(2-phenylphenoxy)-propan-2-ol chloride, UM-424.
Counsell, RE; Kniffen, FJ; Lucchesi, BR; Winokur, S, 1976
)
0.26
" Ouabain dosage needed to cause ventricular tachycardia was significantly higher than that of pentobarbital with all agents except fluroxene, as was the LD50."( The effect of enflurane, isoflurane, fluroxene, methoxyflurane and diethyl ether anesthesia on ouabain tolerance in the dog.
Albrecht, RF; Cairoli, VJ; El-Etr, AA; Grossman, RK; Ivankovich, AD; Miletich, DJ,
)
0.13
"4-fold shift to the right in the dose-response curve to norepinephrine."( Potassium release from the rat submaxillary gland in vitro. I. Induction by catecholamines.
Giles, M; Martinez, JR; Quissell, DO, 1976
)
0.26
" At a dosage of 20 mg/kg in the intact rat, it elicited ECG changes similar to those seen with a 10-mg/kg dose of digitoxigenin."( Thiocardenolides I: synthesis and biological actions of 3beta-thiocyanato-14beta-hydroxy-5beta-card-20(22)-enolide.
Abramson, HN; Huang, CL; Tobin, T; Wu, TF, 1976
)
0.26
" Atropine (5 x 10(-6) M) causes a 17-fold shift to the right on the dose-response curve to carbamylcholine."( Potassium release from the rat submaxillary gland in vitro. II. Induction by parasympathomimetic secretagogues.
Martinez, JR; Quissell, DO, 1976
)
0.26
" As papaverine (10(-5) M), AP 10 (10(-4) M) shifted to the left the atrial dose-response curve for isoproterenol."( In vitro and in vivo myocardial effects of a cyclic AMP phosphodiesterase inhibitor structurally related to natural cardenolides.
Nemoz, G; Pacheco, H; Prigent, AF; Roche, M, 1979
)
0.26
" A dose-response study indicated that high doses of T4 may stimulate Mg++ activated ATPase."( Effects of thyroxine treatment on the hepatic plasma membrane ATPase activity in rats.
Berdanier, CD; Ecklund, RE; Tobin, RB,
)
0.13
" Dosage regimens based on the measurement of creatinine-clearance are of little help in "effective digitalisation"."( Digitalis pharmacokinetics and therapy with respect to impaired renal function.
Kramer, P, 1977
)
0.26
" Mutation frequency to 6TG R, an X-linked recessive phenotype, was inversely related to dosage whereas OUA R, a codominant phenotpye, occurred with equal frequency in both lines."( The relationship between induced mutation frequency and chromosome dosage in established mouse fibroblast lines.
Gartler, SM; Raskind, WH, 1978
)
0.26
" The rates of such an increase were measured during this period at various cardioactive steroid concentrations and used to produce dose-response curves."( The intracellular sodium activity of cardiac Purkinje fibres during inhibition and re-activation of the Na-K pump.
Deitmer, JW; Ellis, D, 1978
)
0.26
" However, there is a clear dose-response relationship between spike frequency or plateau duration and the glucose concentration."( Electrical characteristics of the beta-cells in pancreatic islets.
Meissner, HP, 1976
)
0.26
"47-fold shift to the left in the dose-response curve to norepinephrine and carbachol, respectively, after pretreatment with reserpine."( Potassium release from the rat submaxillary gland in vitro. III. Effects of pretreatment with reserpine.
Martinez, JR, 1977
)
0.26
" The dose-response relation was very steep, with little or no effect below 15 mg/liter and an effect too large to measure at concentrations greater than 30 mg/liter."( Effects of nystatin on membrane conductance and internal ion activities in Aplysia neurons.
Brodwick, MS; Eaton, DC; Russell, JM, 1977
)
0.26
" Biliary excretion of radioactivity after 14C-probenecid administration was found to be saturated at a dosage of 100 mg X kg-1."( Probenecid-induced effects on bile flow and biliary excretion of 3H-ouabain.
Damm, KH; Erttmann, RR, 1976
)
0.26
" In that way of dose-response curves for the rapid effects of ouabain and other inhibitors of active Na transport were obtained with both the original, ouabain-sensitive (OS) and the variant, ouabain-resistant (OR) cells."( Variant HeLa cells selected for their resistance to ouabain.
Rosenberg, HM, 1975
)
0.25
"In a comparison of digitalis tolerance in dogs anesthetized with ketamine, Innovar Vet, or pentobarbital, the dosage of ouabain needed to cause ventricular tachycardia was significantly higher, as was the LD50 of ouabain, with ketamine or Innovar than with pentobarbital."( The effects of ketamine and of Innovar anesthesia on digitalis tolerance in dogs.
El-Etr, AA; Ivankovich, AD; Janeczko, GF; Maronic, JP,
)
0.13
" Ninety percent of K+/86Rb accumulation was blocked by ouabain, and the dose-response curve of inhibition by ouabain was monophasic (IC50, approximately 80 microM), suggesting the role of a single type of Na+/K+ pump (alpha-isoenzyme) in 86Rb accumulation by rat glomerulosa cells."( Angiotensin-II inhibits Na+/K+ pump in rat adrenal glomerulosa cells: possible contribution to stimulation of aldosterone production.
Balla, T; Csordás, G; Enyedi, P; Hajnóczky, G; Hunyady, L; Kalapos, MP; Spät, A, 1992
)
0.28
" Ouabain depressed the maximal response without shifting the dose-response curve."( Ouabain blocks some rapid concentration-induced clamp acetylcholine responses on Helix neurons.
Arvanov, VL; Ayrapetyan, SN; Ovakimyan, KS; Stepanyan, AS, 1992
)
0.28
" An increase in intracellular Ca2+ concentration depressed the amplitude of current induced by application of acetylcholine in neurons with ouabain-sensitive responses and shifted the dose-response relationship to the right."( The effects of cAMP, Ca2+, and phorbol esters on ouabain-induced depression of acetylcholine responses in Helix neurons.
Arvanov, VL; Ayrapetyan, SN; Stepanyan, AS, 1992
)
0.28
" Pooled, concentrated G-10 elution fractions from the early part of the inhibitor peak, which were free of pyruvate, produced a dose-response relationship by enzymatic assay that was close to parallel with that for ouabain."( An Na, K ATPase inhibitor from ultrafiltrate obtained by hemodialysis of patients with uremia.
Johnston, H; Sohn, HJ; Stokes, GS, 1992
)
0.28
" Dose-response experiments performed with (a) cardioglycosides (ouabain and K-strophantoside), (b) steroid hormones and their glucuronides (tetrahydrocortisol, oestradiol and the respective 3-glucuronic derivatives) and (c) ouabain-like compounds purified in our laboratory (0."( Modulation of Na+/K+ pump in intact erythrocytes by cardioglycosides, steroid hormones and ouabain-like compounds.
Bracchino, P; Cavaletto, M; Giunta, C; Pergola, L; Pessione, E, 1992
)
0.28
" The effect of ATPase inhibition on the response pattern after repetitive dosing with phenylephrine (PE) and KCl was also determined."( Effects of Na-K-ATPase inhibition on catecholamine reactivity in rat pulmonary artery.
Cutaia, M; Rudio, K, 1992
)
0.28
" (v) The dose-response curves for the stimulatory action of chloramine-T in unpoisoned and ouabain-poisoned fibers are alike except that the threshold concentration is less than 10(-5) M in poisoned fibers."( Abolition with chloramine-T of inactivation in barnacle muscle fibers results in stimulation of the ouabain-insensitive sodium efflux.
Bittar, EE; Wu, JR; Zhou, Z, 1992
)
0.28
" After the addition of varying concentrations of ouabain, we found a biphasic dose-response curve as measured by the increase in [Na+]i."( Cultured chick-embryo heart cells respond differently to ouabain as measured by the increase in their intracellular Na+ concentration.
Ahlemeyer, B; Schoner, W; Weintraut, H, 1992
)
0.28
" Addition of the muscarinic antagonists atropine or pirenzepine shifted the carbachol dose-response curves to the right, without decreasing the carbachol maximal stimulatory effects."( Effects of muscarinic agonists and depolarizing agents on inositol monophosphate accumulation in the rabbit vagus nerve.
Dunant, Y; Sierro, CD; Vitus, J, 1992
)
0.28
" Glycoside shifted to the right the dose-response curve for stimulation of the cAMP synthesis by 1-isoproterenol."( [The Na,K-ATPase pump and the lymphocyte adenylate cyclase system].
Krasnikova, TL, 1991
)
0.28
" Further, dose-response studies showed that sodium fluoride (NaF), activator of G-binding proteins, and ouabain, inhibitor of Na+/H+ pump, increased levels of IL-6 mRNA."( Role of lymphotoxin in expression of interleukin 6 in human fibroblasts. Stimulation and regulation.
Adelman, DC; Akashi, M; Koeffler, HP; Loussararian, AH; Saito, M, 1990
)
0.28
" Ouabain dose-response curve in the range of 10(-7) M-0."( Role of thyroid state in age-dependent cardiac effects of ouabain in guinea pigs.
Binah, O; Felzen, B; Lotan, R, 1991
)
0.28
" Following chronic dosing with diuretic doses, the basal levels of plasma potassium in dogs were not altered."( ICI 181,037: a novel eukalemic diuretic with antiarrhythmic activity.
Andruskiewicz, C; Do, ML; Howe, B; Kau, S; Leszczynska, K; Li, J; Schwartz, J; Yochim, C, 1991
)
0.28
" Similar dose-response curves for the inhibition of the enzyme activity were determined for both drugs."( Binding properties and biological effects of oxidized-ouabain on cultured neonatal-rat cardiac myocytes. Implications on the mechanism of action of the digitalis-glycosides.
Eilam, Y; Hallaq, H; Heller, M; Panet, R, 1991
)
0.28
" For these fractions dose-response curves for 86Rb uptake and for displacement of digoxin were parallel, respectively, to those of ouabain and digoxin, suggesting similarities of digoxin-like immunoreactive substance to cardiac glycosides."( Partial purification of endogenous digitalis-like compound(s) in cord blood.
Balzan, S; Biver, P; Gazzetti, P; Ghione, S; Montali, U, 1991
)
0.28
" A mathematical analysis of the dose-response curves (inhibition of Na+/K(+)-ATPase) at equilibrium is consistent with the putative existence of three inhibitory states for ouabain two of high (very high plus high) and one of low affinity."( Two active Na+/K+-ATPases of high affinity for ouabain in adult rat brain membranes.
Berrebi-Bertrand, I; Christe, G; Lelièvre, LG; Maixent, JM, 1990
)
0.28
" This factor, at physiological concentrations of potassium (5-25 mM), inhibits in a dose-response manner Na+,K(+)-ATPase and displaces ouabain from its receptor at the enzyme structure."( Complete purification of two identical Na(+)-pump inhibitors isolated from bovine hypothalamus and hypophysis.
G-Robles, R; Illescas, M; Mendez, E; Ricote, M; Sancho, J, 1990
)
0.28
" Moreover, maximal mutation frequency at the Na+/K(+)-ATPase gene locus (ouar mutation) was attained within 30 or 40 min of exposure, dependent on dosage of N-NO-AAF."( Induction of ouabain-resistance mutation and cycle-dependent transformation of C3H/10T1/2 cells by N-nitroso-2-acetylaminofluorene.
Kuo, ML; Lin, JK, 1990
)
0.28
" In concentrations greater than 10(-5) M, ouabain caused a parallel shift to the left of the phenylephrine dose-response curve, indicating potentiation."( Effect of ouabain on the responses to vasoconstrictor agents in isolated perfused rat tail arteries.
Armsworth, SJ; Marwood, JF; Stokes, GS,
)
0.13
" Complete dose-response curves to norepinephrine in 19 1K1C compared with 25 uninephrectomized (1K) normotensive control rats showed unchanged thresholds and 50% effective dosages."( Arteriolar responses to norepinephrine and ouabain in early 1-kidney, 1-clip hypertension in rats.
Overbeck, HW, 1985
)
0.27
" In preparations precontracted by a higher concentration of KCl, 40 mM, forskolin produced full relaxation with a shift of the dose-response curve to the right; adenosine did not produce full relaxation."( Vasodilation produced by forskolin compared with that produced by adenosine in rabbit coronary artery.
Fujiwara, M; Hama, T; Hisajima, H; Kurahashi, K; Usui, H,
)
0.13
" The dose-response relation for the cardiotonic steroid dihydroouabain (DHO) was obtained by measuring the change in membrane current caused by application of concentrations of 1-100 microM."( Properties of an electrogenic sodium-potassium pump in isolated canine Purkinje myocytes.
Cohen, IS; Datyner, NB; Gintant, GA; Mulrine, NK; Pennefather, P, 1987
)
0.27
" Rats were dosed daily for 20 d with soman (0."( Changes in nerve membrane polarization following repeated exposure to soman.
Anderson, RJ; Chamberlain, WL, 1988
)
0.27
" The ATPase log dose-response curve was linear between approximately 12."( Enzyme activation of human prolactin: a potential basis for a bioassay.
Bertrand, PV; Ryle, M, 1989
)
0.28
" A dose-response ouabain (1 mM) sensitive relationship exists between [Na+]o and retardation of the reversal phenomenon."( Induced interphase cell retraction: its reversal and EGF potentiation.
Sit, KH; Wong, KP, 1989
)
0.28
" The alpha-1 agonists, cirazoline and phenylephrine, had similar dose-response curves and stimulated proximal tubules more than distal tubules."( Alpha adrenoceptor agonist stimulation of oxygen consumption in rat proximal and distal nephrons.
Gesek, FA; Strandhoy, JW, 1989
)
0.28
" By contrast, carbachol did not alter the dose-response profile to AR-L57."( A comparison of the cardiotonic effects of AR-L115 and AR-L57: evidence for distinct inotropic mechanisms.
Hayes, JS; Pollock, GD; Wilson, H; Wyss, VL,
)
0.13
" Perfusion with adenosine for a minimum of 90 min followed by washout resulted in a 40% depression of the dose-response curve of left ventricular dP/dt to isoproterenol."( Persistent desensitization of the heart to the inotropic action of isoproterenol by adenosine.
Lee, JT; Newman, WH; Webb, JG, 1989
)
0.28
" Moreover, small noncontractile doses of STI in this in vitro preparation produced a fivefold leftward shift in the contraction dose-response curve of norepinephrine (P less than ."( Effects of a human-derived sodium transport inhibitor on in vitro vascular reactivity.
Gonick, HC; Prins, BA; Purdy, RE; Weber, MA; Weiler, E, 1989
)
0.28
" Complete norepinephrine dose-response curves in 8 rats with chronic and 28 with early 1K1C hypertension, compared with appropriate normotensive control rats, showed unchanged thresholds and ED50 values."( The vascular Na+-K+ pump in experimental hypertension.
Overbeck, HW, 1987
)
0.27
" First, there are two separate inotropic responses to ouabain in the rat ventricle and the isolated rat heart resulting in a biphasic dose-response curve."( The calcium dependence of the biphasic inotropic response to ouabain in the isolated rat heart.
Grupp, G; Grupp, IL; Hickerson, TW; Schwartz, A, 1988
)
0.27
" The dose-response curve of this compound was parallel to that of ouabain."( The effects of urinary digitalislike factor on cultured vascular smooth muscle cells.
Goto, A; Ishiguro, T; Ishii, M; Sugimoto, T; Yamada, K; Yoshioka, M, 1988
)
0.27
" The dose-response curve for HF inhibition of LLC-PK1 86Rb+ uptake showed a sigmoidal shape consistent with an allosteric binding reaction."( Na+ pump in renal tubular cells is regulated by endogenous Na+-K+-ATPase inhibitor from hypothalamus.
Cantiello, HF; Chen, E; Haupert, GT; Ray, S, 1988
)
0.27
" Dose-response curves to calcium in SHR aortae treated with 10(-3) mol/l ouabain were shifted to the left of those in WKY."( Calcium and contractile responses to ouabain and potassium-free solution in aortae from spontaneously hypertensive rats.
Lamb, FS; Moreland, RS; Webb, RC, 1988
)
0.27
" These advantages are: the composition of fluids supplying the preparation is under control; the oxygen supply to the cord is no longer dependent on the cardiovascular function, which may be impaired by the substance under study; a complete dose-response curve may be obtained from each animal; washout experiments may be performed; the action of substances can be studied in the presence of extreme concentrations of drugs, ions, etc."( The in situ perfused spinal cord of the rat. Applicability of drugs and chemicals, sodium-lithium exchange, and calcium reduction to functional intact central nervous system tissue.
Deutschmann, W; Wellhöner, HH, 1986
)
0.27
" No apparent right or left shift in dose-response curve for the positive inotropic effect of strophanthidin was observed and toxic concentrations of strophanthidin were unchanged; however, the degree of the positive inotropic effect produced by high concentrations of strophanthidin was significantly smaller in hypertrophied muscle."( Pressure-induced cardiac hypertrophy: changes in Na+,K+-ATPase and glycoside actions in cats.
Akera, T; Nirasawa, Y, 1987
)
0.27
" Further increase in dosage of both prostaglandin synthesis inhibitors failed to induce further reduction of integrated areas of coronary vasodilatation."( Effects of prostaglandin synthesis inhibition on sympathetic-and parasympathetic-mediated coronary hemodynamic responses.
Condorelli, M; Cuocolo, A; de Luca, N; Patrignani, P; Ricciardelli, B; Trimarco, B; Volpe, M, 1986
)
0.27
" The drug shifted to the right the dose-response curve for Ca in low K solution."( Na/Ca exchange and tension development in vascular smooth muscle: effect of amiloride.
Bova, S; Cargnelli, G; Luciani, S, 1988
)
0.27
" Soluble hexavalent CaCrO4, administered in either acute (5-h) or subacute (24-h) dosing regimens, induced dose-dependent cytotoxicity and mutation to 6-thioguanine resistance in Chinese hamster ovary cells but no mutation to ouabain resistance or focus formation in transformation assays, although the acute treatment induced a high frequency of conversion of 10T1/2 cells to adipocytes."( Transformation of C3H/10T1/2 mouse embryo cells to focus formation and anchorage independence by insoluble lead chromate but not soluble calcium chromate: relationship to mutagenesis and internalization of lead chromate particles.
Banh, D; Landolph, JR; Patierno, SR, 1988
)
0.27
" A comparison of the IC50 values from dose-response curves using 10(-14) to 10(-7) M peptides (IC50 is the peptide concentration that produced a 50% decrease of the maximal effect) indicated that NPY was more potent as inhibitor of contractility and less potently inhibited coronary flow and heart rate, whereas 4-norleucine-NPY had more inhibitory influence on coronary flow and heart rate and less on cardiac contractility."( Comparison of the effects of neuropeptide Y (NPY) and 4-norleucine-NPY on isolated perfused rat hearts; effects of NPY on atrial and ventricular strips of rat heart and on rabbit heart mitochondria.
Balasubramaniam, A; Benza, R; Fischer, JE; Grupp, G; Grupp, I; Jackson, RL; Matlib, MA, 1988
)
0.27
" A dose-response study revealed that the concentration of phloretin causing half-maximal inhibition (K1/2) was 5 x 10(-4) M for adapted animals."( Active urea transport by the skin of Bufo viridis: amiloride- and phloretin-sensitive transport sites.
Abuful, A; Chaimovitz, C; Hays, RM; Noeh, Z; Rapoport, J, 1988
)
0.27
" Measurements of the inotropic effects in guinea pig left atria performed at concentrations of acrihellin kept constant yielded a dose-response curve, which closely resembles that of the conventional cardioactive steroid ouabain."( Acrihellin, a cardioactive steroid escaping from the organ-bath.
Herzig, S; Lüllmann, H; Mohr, K; Seemann, B, 1987
)
0.27
" In each assay, ras-transformed NIH/3T3 cell lines displayed an increased sensitivity to ouabain as compared to the parental NIH/3T3 cell line, both in dose-response and in time-course experiments."( Effects of ouabain on NIH/3T3 cells transformed with retroviral oncogenes and on human tumor cell lines.
Bassin, RH; Benade, L; Ciardiello, F; Flatow, U; Tagliaferri, P; Talbot, N; Yanagihara, K, 1987
)
0.27
" When ouabain dosage was increased to 20 mg/kg, the prolongation of PQ interval became prominent and P waves were hidden on the preceding T waves."( The applicability of noninvasive His bundle electrogram to assessing the effect of digitalis on atrioventricular conduction.
Nojima, K; Otsuka, K; Ozawa, T; Saito, H; Seto, K, 1986
)
0.27
" Therefore, we obtained dose-response curves to aerosols of histamine and ouabain in guinea pigs to determine whether an in vivo relationship existed between the excitatory effects of histamine and the enzyme-inhibiting effect of ouabain."( Airway responses to inhaled ouabain and histamine in conscious guinea pigs.
Agrawal, KP; Hyatt, RE, 1986
)
0.27
" Bilateral adrenal vein ligation, employed to eliminate the influence of adrenal catecholamines, decreased the dosage of chlorpromazine necessary to produce arrhythmia and death to 67."( Chlorpromazine: cardiac arrhythmogenicity in the cat.
Lathers, CM; Lipka, LJ, 1986
)
0.27
"A linear dose-response curve was produced by the addition of ouabain (10(-8)-10(-6) M) to the media bathing segments of porcine right coronary arteries."( Insurmountable antagonism of ouabain-induced coronary constriction by prazosin.
Fairfax, CA; Tanz, RD, 1985
)
0.27
" Dose-response curves showed that lignocaine was more active in abolishing the ouabain induced arrhythmia than the halothane-adrenaline arrhythmia and was least active on the arrhythmia caused by ligation of the coronary artery."( Effects of lignocaine and propranolol on experimental cardiac arrhythmias.
Allen, JD; Shanks, RG; Zaidi, SA, 1971
)
0.25
" A daily dosage of 15 mg/kg oxyfedrine had no effect on growth rate for 4 weeks, but thereafter the growth rate of treated animals fell below that of controls."( The effect of prolonged treatment with oxyfedrine on intracellular potentials and on other features of cardiac function in rabbits and guinea-pigs.
Polster, P; Vaughan Williams, EM, 1973
)
0.25
" The effects of furosemide on ATPase and on Na flux were dissociable on a dose-response curve."( Ouabain-uninhibited sodium transport in human erythrocytes. Evidence against a second pump.
Dunn, MJ, 1973
)
0.25
" In dose-response studies, increases in cell membrane permeability, measured as the loss of K+ ions, occurred along with the stimulation of [3H]uridine incorporation into RNA."( Stimulatory, permeabilizing, and toxic effects of amphotericin B on L cells.
Brajtburg, J; Elberg, S; Kobayashi, GS; Medoff, G; Medoff, J; Schlessinger, D, 1984
)
0.27
" In addition to a ouabain-insensitive Mg-ATPase, ouabain dose-response curves have suggested the presence, in brain, of two NaK-ATPase activities with different sensitivities to ouabain."( Brain NaK-ATPases in mice differentially sensitive to alcohols.
Collins, AC; Marks, MJ; Smolen, A,
)
0.13
" The dose-response graphs of kidney and skin Na+/K+-ATPase vs ouabain concentrations show that at ouabain concentrations ranging from 1 nM and 1 pM the inhibition elicited by the cardioglycoside disappears and is replaced by an activatory effect."( Na+/K+-ATPase from Xenopus laevis (Daudin) kidney and epidermis: high sensitivity towards regulatory compounds.
De Bortoli, M; Giunta, C; Sanchini, M; Stacchini, A, 1984
)
0.27
" Dose-response curves for the inotropic effects of ouabain on papillary muscle and on ventricular cells in culture indicate that the development of the cardiotonic properties is parallel to the saturation of the low affinity binding site for ouabain."( Digitalis receptors in cardiac cells and their relation with positive inotropic and cardiotoxic effects.
Kazazoglou, T; Lazdunski, M; Renaud, JF; Rossi, B, 1984
)
0.27
" Under all experimental conditions, very similar dose-response curves were obtained for the electrical activity."( Effects of carbachol on contractile force and action potentials of isolated atria at different rates of stimulation.
Ravens, U; Ziegler, A,
)
0.13
" In all groups studied, dose-response curves to agonists were shifted to the left when ouabain was added to the perfusion medium."( Studies on the role of sodium-potassium-activated ATPase as determinant of vascular reactivity in Wistar-Kyoto and spontaneously hypertensive rats.
Folkow, B; Göthberg, G; Jandhyala, B, 1980
)
0.26
" Utilizing three different ouabain dosage regimens in open-chested dogs, we obtained three different quasi-steady state plasma levels of ouabain."( Relationship between the positive inotropic effect of ouabain and its inhibitory effects on Na+, K+ -ATPase and active transport of Rb+ in the dog heart.
Askari, A; Huang, WH; Rhee, HM, 1981
)
0.26
" Dose-response data for ouabain inhibition of PAH transport and tubule Na,K-adenosine triphosphatase (ATPase) activity were identical."( Heavy metal inhibition of p-aminohippurate transport in flounder renal tissue: sites of HgCl2 action.
Miller, DS, 1981
)
0.26
" Complete dose-response curves of H+ secretion as a function of K+ concentration could now be obtained."( Cation effects on acid secretion in rabbit gastric glands.
Berglindh, T; Koelz, HR; Sachs, G, 1981
)
0.26
" In addition, it allows dose-response studies on the effect of inhibitors on ATPase activity in the same tubule segment."( A kinetic assay for Na-K-ATPase activity in isolated renal proximal tubules.
Kinne, R; Lin, JT; Schwartz, GJ, 1983
)
0.27
" From dose-response curves of the drug-induced current change (ID) the equilibrium dissociation constant of the binding of DHO to the Na-K pump (KD) and the electrogenic pump current flowing in the steady state (Ip) were inferred (Daut & Rüdel, 1982b)."( Inhibition of the sodium pump in guinea-pig ventricular muscle by dihydro-ouabain: effects of external potassium and sodium.
Daut, J, 1983
)
0.27
" Ouabain produced a monophasic dose-response curve in atria but a biphasic curve in papillary muscles."( Chronic diabetes decreases the ouabain inotropic response in rat left atria and papillary muscles.
McCullough, AL; McNeill, JH, 1983
)
0.27
" Dose-response curves for the inotropic effects of ouabain on papillary muscle and on ventricular cells in culture indicate that the development of the cardiotonic properties is parallel to the saturation of the low affinity binding site for ouabain."( Two classes of ouabain receptors in chick ventricular cardiac cells and their relation to (Na+,K+)-ATPase inhibition, intracellular Na+ accumulation, Ca2+ influx, and cardiotonic effect.
Kazazoglou, T; Lazdunski, M; Renaud, JF; Rossi, B, 1983
)
0.27
" Complete dose-response curves in eight 1K1C hypertensive rats were steeper and higher than those in five uninephrectomized (1K) normotensive control rats."( Effect of ouabain on arteriolar responses to norepinephrine in chronic, benign, volume-expanded hypertension.
Overbeck, HW,
)
0.13
"The inotropic dose-response curve of ouabain in rat cardiac ventricular strips exceeded a concentration range of two decades (1 X 10(-7) M to 3 X 10(-5) M) displaying an intermediate plateau phase."( Action of ouabain on rat heart: comparison with its effect on guinea-pig heart.
Herzig, S; Mohr, K, 1984
)
0.27
" Although the monovalent Fab'--beta-galactosidase conjugate yields a more sensitive assay and dose-response curves that are linear over a wider range, the divalent F(ab')2--beta-galactosidase conjugate provides an assay with adequate sensitivity and extremely good precision, and is generally easier to synthesize reproducibly."( Affinity-column-mediated immunoenzymometric assays: influence of affinity-column ligand and valency of antibody-enzyme conjugates.
Freytag, JW; Lau, HP; Wadsley, JJ, 1984
)
0.27
" Pretreatment with hyperosmotic mannitol (50 mM) for 30 min significantly inhibited cumulative dose-response curves to Ca++ in 60 mM KCl depolarizing solution."( Influence of hyperosmolarity on induced contractions of arterial smooth muscle in vitro.
Krishnamurty, VS; Ross, G, 1984
)
0.27
" In addition it was shown that multiparental hybrids can be generated using a modification of the selection system, a result which will be useful for gene dosage experiments involving human cells."( Characterization of ouabain resistant, hypoxanthine phosphoribosyl transferase deficient human cells and their usefulness as a general method for the production of human cell hybrids.
Stanbridge, EJ; Weissman, B, 1980
)
0.26
" The total ouabain dosage required for ventricular tachycardia was recorded, and the ouabain concentrations in the arterial plasma and in the myocardium were determined by liquid scintillation counting."( Lack of protection against ouabain cardiotoxicity after chronic ablation of the area postrema in cats.
Borison, HL; Riancho, JA; Thron, CD, 1984
)
0.27
"Length-contractile force curves and dose-response curves of heart rate, blood pressure, and contractile force were recorded from the left ventricle of six anesthetized dogs in a control state."( Persistence of myocardial failure following removal of chronic volume overload.
Newman, WH; Privitera, PJ; Webb, JG, 1982
)
0.26
" 3 On a dosage basis, encainide was seven times, lorcainide fourteen times and ORG 6001 twice as potent as lignocaine in raising VFT."( Antifibrillatory efficacy of encainide, loracainide and ORG 6001 compared with lignocaine in isolated hearts of rabbits and guinea-pigs.
Almotrefi, AA; Baker, JB, 1981
)
0.26
"Log dose-response curves of ouabain on rat and guinea-pig heart revealed the existence of a concentration-dependent, biphasic inotropic effect of ouabain."( A concentration-dependent biphasic positive inotropic action of ouabain on isolated heart of rat and guinea-pig.
Koomen, JM; Van Gilst, WH; Van Noordwijk, J; Zimmerman, AN, 1982
)
0.26
" In conclusion, though the dose-response relationship was observed in increasing myocardial contractility and pulmonary vasoconstriction by ouabain, the dose which increases myocardial contractility was less than that which evokes pulmonary vasoconstriction in normal and pulmonary hypertensive dogs."( [Studies on dose-dependent effect of ouabain on right ventricular function and pulmonary circulation].
Matsuka, H, 1982
)
0.26
" The dose-response curve of the inotropy and frequency was very similar in shape to that of theophylline as far as intensity of inotropy and the range of dosage is concerned, but AR-L 115 BS is 10 times as active."( [The effect of AR-L 115 BS on the function and oxygen consumption of isolated guinea pig atria as compared to g-strophanthin and theophylline].
Seifart, HJ; Siess, M; Stieler, K, 1981
)
0.26
" Additionally, EVI(+)S dose-response curves of classical signs of digitalis cardiac toxicity shifted to the left."( Chagasic sera alter the effects of ouabain on isolated rat atria. Participation of adrenergic mechanisms.
Arana, R; Borda, E; Canga, L; Cossio, P; Diez, C; Gimeno, AL; Sterin-Borda, L, 1981
)
0.26
" Dose-response curves for calcium upon norepinephrine stimulation were determined under conditions where neuronal uptake was eliminated."( Prolonged exposure to ouabain eliminates the greater norepinephrine-dependent calcium sensitivity of resistance vessels in spontaneously hypertensive rats.
Mulvany, MJ; Nilsson, H,
)
0.13
" Similar studies were conducted with rats treated at the highest lead dosage which did not result in weight loss (100 microgram lead as lead acetate/g body weight/day via intubation)."( Developmental studies of the uptake of choline, GABA and dopamine by crude synaptosomal preparations after in vivo or in vitro lead treatment.
Krigman, MR; Morell, P; Ramsay, PB, 1980
)
0.26
" The areas under the plasma concentration curve at conversion of ventricular tachycardia to sinus rhythm were similar for both dosage groups with area under the plasma concentration curve proportional to myocardial UM-272 concentration."( Plasma and myocardial tissue concentrations of UM-272 (N,N-dimethylpropranolol) after oral administration in dogs.
Lucchesi, BR; Patterson, E; Stetson, P, 1980
)
0.26
" Dose-response curves to norepinephrine in the presence of hydralazine were shifted to the right in parallel fashion at an only slight reduction of the maximum response."( Studies on the direct vasodilator effect of hydralazine in the isolated rabbit renal artery.
Gross, F; Khayyal, M; Kreye, VA, 1981
)
0.26
" Although most of the dose-response curves for this purified Na-pump inhibitor, designated as uroxin, in the various assay systems paralleled those of ouabain and the inhibitor purified from bovine adrenal glands (designated as adrexin C), the cross-reactivity curve with anti-ouabain antibodies did not."( A novel endogenous sodium-pump inhibitor in pig urine: purification and comparison with the inhibitor purified from bovine adrenal glands.
Inagami, T; Konishi, F; Tamura, M, 1993
)
0.29
" Relative resistance was not significantly changed by co-incubation with a non-cytotoxic dosage of these inhibitors."( Role of sodium pump systems to determine sensitivity to mitomycin C in non-small cell lung cancer cell lines.
Bando, T; Fujimura, M; Kasahara, K; Matsuda, T; Nakatsumi, Y; Numata, Y; Shibata, K,
)
0.13
" In the presence of the inhibitory protein fraction, ethanol stimulated Na+, K(+)-ATPase activity in EGTA-treated membranes with a dose-response like that observed with the crude (no EGTA) synaptosomes."( Stimulation of synaptosomal Na+,K(+)-ATPase by ethanol: possible involvement of an isozyme-specific inhibitor of Na+,K(+)-ATPase.
Foley, TD; Rhoads, DE, 1994
)
0.29
" A second set of measurements was performed with administration of the threefold dosage of either substance."( Characterization of the inotropic and arrhythmogenic action of the sodium channel activator BDF 9148: a comparison to its S-enantiomer BDF 9196, to its congener DPI 201-106, to norepinephrine, and to ouabain.
Baumgart, D; Ehring, T; Heusch, G; Krajcar, M; Skyschally, A,
)
0.13
"Muscle respiration experiments on inhibitor dosage (experiment 1), muscle preparation (tendons removed vs."( Energy metabolism in isolated chick (Gallus domesticus) gastrocnemius and tilapia (Tilapia mossambica) epaxial muscle at various temperatures in vitro.
Early, RJ; Patterson, PH; Suzuki, EY, 1994
)
0.29
" PE shifted the ouabain dose-response curve toward lower ouabain concentrations; conversely, ouabain shifted the PE dose-response curve toward lower PE concentrations."( Nanomolar ouabain augments caffeine-evoked contractions in rat arteries.
Blaustein, MP; Heidrich, J; Podberesky, DJ; Weiss, DN, 1993
)
0.29
" Eight runs were conducted using six constant dosage levels."( Testing for circadian differences in lethality for intravenous ouabain in male mice.
Forrest, AB; Hawley, JC; Malone, MH, 1993
)
0.29
" Rats dosed orally (100 mg/kg) were fully protected from VF."( Efficacy of the class III antiarrhythmic agent azimilide in rodent models of ventricular arrhythmia.
Brooks, RR; Carpenter, JF; Maynard, AE; Miller, KE, 1996
)
0.29
" The dose-response curves were both bell-shaped types with a peak at 10(-3) M for thymidine incorporation and 2 x 10(-3) M for uridine incorporation."( Ouabain-induced cell proliferation in cultured rat astrocytes.
Asano, S; Baba, A; Hosoi, R; Matsuda, T; Murata, Y; Takuma, K; Tamada, K; Tanaka, K, 1996
)
0.29
"Ouabain-sensitive [86Rb] uptake and degranulation increased in parallel and in a dose-response fashion with increasing Fc receptor cross-linking."( A role for the sodium, potassium adenosine triphosphatase (Na+,K+ ATPase) enzyme in degranulation of rat basophilic leukaemia cells.
Gentile, DA; Skoner, DP, 1996
)
0.29
" However, inhibition reached the maximal level only at 50 mM sodium, and typical sigmoidal dose-response curves were obtained only in the presence of 118 mM sodium."( Regulation of mu-opioid receptor in neural cells by extracellular sodium.
Medzihradsky, F; Yabaluri, N, 1997
)
0.3
" Area under the methacholine dose-response curve (AUC) was expressed as percent baseline FEV1 x log concentration of methacholine (log [mg/ml]) and plotted as a function of the difference in postfreezing and prefreezing platelet membrane Na+,K+ ATPase activities (reflective of membrane-bound inhibitor), which was expressed as nanomoles per microgram of protein per minute (nmol/microg protein/min)."( The relationship between airway hyperreactivity (AHR) and sodium, potassium adenosine triphosphatase (Na+,K+ ATPase) enzyme inhibition.
Gentile, DA; Skoner, DP, 1997
)
0.3
" Additionally, dose-response inhibitory effects of glycosides on PBMNC Na+,K+ ATPase enzyme activity and interleukin-2 (IL-2) secretion by PHA-stimulated PBMNC were also noted."( Inhibition of peripheral blood mononuclear cell proliferation by cardiac glycosides.
Gentile, DA; Henry, J; Katz, AJ; Skoner, DP, 1997
)
0.3
" Theophylline, an antagonist of P1 adenosine receptor, completely reversed the effect of adenosine on the furosemide-sensitive ATPase activity in a dose-response manner."( Effect of adenosine on the ouabain-insensitive Na+-ATPase activity from basolateral membrane of the proximal tubule.
Caruso-Neves, C; Chagas, C; Francisco-Pedro, LG; Lopes, AG; Souza, LP, 1997
)
0.3
" An increase of [K+] (3-20 mmol/l) prolonged the half-lives of Na+/K+-ATPase inhibition and caused a rightward shift of the cardiac glycoside's dose-response curves by the same factor, almost maximal (4 fold) at 14 mmol/l K+."( Influence of extracellular K+ concentration on the time-course of Na+/K+-ATPase inhibition by cardiac glycosides with fast and low binding kinetics.
Gleitz, J; Peters, M, 1997
)
0.3
" Ouabain at 3 nM changed the shape of the overall dose-response curve for glucose from sigmoidal to hyperbolic and displaced the optimal insulinotropic glucose concentration from 8 to 2 mM."( Effect of ouabain on insulin secretion in the amphibian pancreas.
Francini, F; Gagliardino, JJ; Rodríguez, P, 1997
)
0.3
" In the sham group, the dose-response curves for ouabain disclosed three inhibitory states which contribute, respectively, 24."( Changes in ouabain affinity of Na+, K+-ATPase during focal cerebral ischaemia in the mouse.
Gerbi, A; Jamme, I; MacKenzie, ET; Maixent, JM; Nouvelot, A; Petit, E, 1997
)
0.3
"In plotting the dose-response curves for Na,K-ATPase activity in response to ouabain we assumed the existence of two independent sites exhibiting different affinities for ouabain (in the micromol/l and the nmol/l ranges)."( Evidence that human endothelial cells express different isoforms of Na,K-ATPase.
Dignat-George, F; Gerbi, A; Lesaule, G; Maixent, JM; Martin-Vasallo, P; Mayol, V; Sampol, J, 1998
)
0.3
" Two inhibitors extracted from hypothalamus or hypothalamus-hypophysis have been compared to ouabain with regard to the shape of the dose-response curves and species-dependence."( Two brain inhibitors inhibit renal Na,K-ATPases without recognizing the species-dependent variation of their ouabain-sensitivity.
Anner, BM,
)
0.13
" It differs from ouabain by three criteria: a preincubation with the membranes is required for full activity, no effect on the rat cerebral alpha3 isoform and a steep dose-response curve with the same apparent potency for rat alpha2 and alpha1 isoforms of high (10(-7) M) and low affinity (3 x 10(-5) M) for ouabain."( Inhibition of rat Na+/K+-ATPase isoforms by endogenous digitalis extracts from neonatal human plasma.
Balzan, S; Crambert, G; Decollogne, S; Ghione, S; Lelièvre, LG; Montali, U; Paci, A,
)
0.13
" The dose-response curves of Na, K-ATPase activity were all biphasic assuming the presence of two independent sites exhibiting different affinities for ouabain of nM and microM respectively."( Cholesterol and omega-3 fatty acids inhibit Na, K-ATPase activity in human endothelial cells.
Dignat-George, F; Duran, MJ; Gerbi, A; Lévy, S; Maixent, JM; Mayol, V; Sampol, J, 1999
)
0.3
" In the sham group, the dose-response curves for ouabain disclosed three inhibitory sites of low (LA), high (HA) and very high (VHA) affinity."( Focal cerebral ischaemia induces a decrease in activity and a shift in ouabain affinity of Na+, K+-ATPase isoforms without modifications in mRNA and protein expression.
Barbey, O; Charlemagne, D; Jamme, I; MacKenzie, ET; Maixent, JM; Nouvelot, A; Pellerin, L; Trouvé, P, 1999
)
0.3
" The dose-response curve for the positive inotropic and inhibitory effects on rat cardiac isoenzymes produced by LND-623 were clearly biphasic."( Mechanism underlying the strong positive inotropic effects of LND-623: specific inhibition of Na, K-ATPase isoforms and exclusion of cellular sites of contractile control.
Berrebi-Bertrand, I; Lelièvre, L; Maixent, JM, 1998
)
0.3
" In separate groups of animals, dose-response curves for increases in diastolic pressure produced by phenylephrine were generated after the administration of saline (control), ouabain (18 microg/kg), L-omega-N-nitro arginine methyl ester (L-NAME, 3 micromol/kg) and angiotensin II (15 ng/kg per min)."( Acute pressor actions of ouabain do not enhance the actions of phenylephrine or norepinephrine in anesthetized rats.
Barker, LA; Rossoni, LV; Vassallo, DV, 2001
)
0.31
"), which produced a significant shift to the right of the morphine dose-response curve."( Role of Na(+), K(+)-ATPase in morphine-induced antinociception.
Agil, A; Baeyens, JM; Del Pozo, E; Horvath, G; Masocha, W; Ocana, M; Szikszay, M, 2003
)
0.32
" Na+,K+-ATPase activity was determined by constructing dose-response curves for the ouabain inhibition of Na+,K+-ATPase activity in human corneal endothelial cells."( Human corneal endothelial cell expression of Na+,K+-adenosine triphosphatase isoforms.
Blanco, G; Fleming, T; Huang, B; Mercer, RW; Pepose, JS, 2003
)
0.32
" Ouabain shifted the NE dose-response curve to the left without changing in the maxium response."( [Effect of ouabain on the aortic rings of guinea pig and its interactions with Ca2+, norepinephrine].
Cheng, L; Gong, XR; Wang, F; Yao, WX; Zhou, HY, 2003
)
0.32
" A very low concentration of ouabain (10 nmol/L) did not increase the peak of NO production, but decreased the decay of NO release and, accordingly, increased integral NO production by the maximal dose-response concentration induced by bradykinin."( Nanomolar level of ouabain increases intracellular calcium to produce nitric oxide in rat aortic endothelial cells.
Dong, XH; Komiyama, Y; Masuda, M; Nishimura, N; Takahashi, H,
)
0.13
" The dose-response curve showed that concentrations of ouabain above 100 micromol/L evoked smaller contractions."( Mechanism of ouabain-induced contractions in guinea-pig tracheal rings.
Espinosa-Tanguma, R; Navarro-Huerta, MP; Pecina, C; Sánchez-Armass, S; Valle-Aguilera, JR; Zarazúa-Garcia, O, 2004
)
0.32
" We propose that a pharmacogenomic approach, as applied in an ongoing Phase II dosage study of rostafuroxin, will be a critical step in moving the adducin hypothesis from experimental and observational studies to clinical application."( Adducin and hypertension.
Bianchi, G; Staessen, JA, 2005
)
0.33
" Dose-response curves for ouabain, a specific Na(+),K(+)-ATPase inhibitor, were obtained to ascertain which Na(+),K(+)-ATPase isoform(s) is involved."( On the functional interaction between nicotinic acetylcholine receptor and Na+,K+-ATPase.
Drabkina, TM; Eaton, MJ; Kravtsova, VV; Krivoi, II; Mandel, F; Skatchkov, SN; Vasiliev, AN, 2006
)
0.33
" Angiotensin II decreased Na(+)-K(+)-ATPase activity by an AT1-R dependent mechanism, and inhibition of Na(+)-K(+)-ATPase activity decreased system A activity in a dose-response fashion."( Angiotensin II decreases system A amino acid transporter activity in human placental villous fragments through AT1 receptor activation.
Gallaher, MJ; Hubel, CA; Lykins, DL; Powers, RW; Rajakumar, A; Roberts, JM; Shibata, E; von Versen-Höynck, F, 2006
)
0.33
" The analysis of ouabain-resting membrane potential dose-response relationships in the presence and absence of hyperpolarizing concentration of acetylcholine (100 nM) suggests the existence of two pools of alpha 2 Na+, K(+)-ATPase with different affinities for ouabain."( [Role of the alpha2-isoform of Na+, K(+)-ATPase in the positive inotropic effect of ouabain and marinobufagenin in the rat diaphragm].
Drabkina, TM; Kravtsova, VV; Krivoĭ, II; Kubasov, IV; Prokof'ev, AV; Vashchinkina, EV; Vasil'ev, AN,
)
0.13
" In contrast to NHK cells, the dose-response curve for ouabain inhibition of Na,K-ATPase activity indicated that approximately 20% of the enzyme in ADPKD cells exhibits a higher affinity for ouabain."( Ouabain binds with high affinity to the Na,K-ATPase in human polycystic kidney cells and induces extracellular signal-regulated kinase activation and cell proliferation.
Blanco, G; Nguyen, AN; Wallace, DP, 2007
)
0.34
"Dose-dependent inhibition on the commercial Na( +),K( +)-ATPase equivalent to that for ouabain was observed for MLB of approximately half dosage by weight."( Magnesium lithospermate B possesses inhibitory activity on Na+,K+-ATPase and neuroprotective effects against ischemic stroke.
Chen, BC; Chen, YC; Cheng, FC; Hsieh, V; Jinn, TR; Li, FY; She, HKh; Shi, LS; Tu, ML; Tzen, JT, 2007
)
0.34
" Interestingly, Ba(2+) did shift the K(+) dose-response curve."( Divalent cation interactions with Na,K-ATPase cytoplasmic cation sites: implications for the para-nitrophenyl phosphatase reaction mechanism.
Arnett, KL; Gatto, C; Milanick, MA, 2007
)
0.34
" The cardiotonic steroids ouabain, digoxin, and marinobufagenin all show an inverted U-shaped dose-response curve with inhibition of pumping at concentrations near their IC(50), while increasing Na/K ATPase activity at doses below their IC(50)."( Low-dose cardiotonic steroids increase sodium-potassium ATPase activity that protects hippocampal slice cultures from experimental ischemia.
Bergold, PJ; Oselkin, M; Tian, D, 2010
)
0.36
" In the present study, a digoxin dose-response curve was conducted to observe the effects on naloxone-precipitated withdrawal and locomotor activity in mice."( A comparison of the effects of digoxin, ouabain and milrinone on naloxone-precipitated withdrawal syndrome in mice.
Bai, YL; Chen, YY; Chu, QJ; Li, J; Li, WJ; Zhang, Q, 2012
)
0.38
" The selected compounds differed by the slopes of their dose-response curve: compounds with a slope of 1 (GCV) representing one target or noncooperativity and compounds with high slopes indicating positive cooperativity."( In vitro combination of anti-cytomegalovirus compounds acting through different targets: role of the slope parameter and insights into mechanisms of Action.
Arav-Boger, R; Cai, H; Forman, M; He, R; Kapoor, A; Posner, GH; Venkatadri, R, 2014
)
0.4
" They show an inverted U-shaped dose-response curve with inhibition of pumping at high concentrations while increasing NKA activity at low concentrations."( Why Whip the Starving Horse When There Are Oats for the Starving Myocardium?
Fürstenwerth, H,
)
0.13
" It is concluded that the glycosides oleandrin, ouabain, and digoxin in the used dosage do not present therapeutic potential for the treatment of congestive heart failure caused by doxorubicin."( Comparative Therapeutic Potential of Cardioactive Glycosides in Doxorubicin Model of Heart Failure.
Botelho, AFM; Canta, GN; da Cruz, JPO; da Silva Ferreira, R; Fernandes, PBU; Lempek, MR; Mantovani, MM; Melo, MM; Silva, FLA; Veado, JCC, 2022
)
0.72
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Roles (8)

RoleDescription
cardiotonic drugA drug that has a strengthening effect on the heart or that can increase cardiac output.
ion transport inhibitorA compound which inhibits the movement of an ion across an energy-transducing cell membrane.
anti-arrhythmia drugA drug used for the treatment or prevention of cardiac arrhythmias. Anti-arrhythmia drugs may affect the polarisation-repolarisation phase of the action potential, its excitability or refractoriness, or impulse conduction or membrane responsiveness within cardiac fibres.
EC 3.6.3.9 (Na(+)/K(+)-transporting ATPase) inhibitorAn EC 3.6.3.* (acid anhydride hydrolase catalysing transmembrane movement of substances) inhibitor that interferes with the action of Na(+)/K(+)-transporting ATPase (EC 3.6.3.9).
EC 3.6.3.10 (H(+)/K(+)-exchanging ATPase) inhibitorAn EC 3.6.3.* (acid anhydride hydrolase catalysing transmembrane movement of substances) inhibitor that inhibits H(+)/K(+)-exchanging ATPase, EC 3.6.3.10. Such compounds are also known as proton pump inhibitors.
EC 2.3.3.1 [citrate (Si)-synthase] inhibitorAn EC 2.3.3.* (acyltransferase converting acyl to alkyl group on transfer) inhibitor that interferes with the action of citrate (Si)-synthase, EC 2.3.3.1.
EC 3.1.3.41 (4-nitrophenylphosphatase) inhibitorAn EC 3.1.3.* (phosphoric monoester hydrolase) inhibitor that interferes with the action of 4-nitrophenylphosphatase (EC 3.1.3.41).
plant metaboliteAny eukaryotic metabolite produced during a metabolic reaction in plants, the kingdom that include flowering plants, conifers and other gymnosperms.
[role information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Drug Classes (6)

ClassDescription
cardenolide glycosideAny member of the class of cardenolides with glycosyl residues attached to position 3.
steroid hormoneAny steroid that acts as hormone.
alpha-L-rhamnoside
14beta-hydroxy steroidA 14-hydroxy steroid in which the hydroxy group has a beta-configuration.
5beta-hydroxy steroid
11alpha-hydroxy steroid
cardenolide glycosideAny member of the class of cardenolides with glycosyl residues attached to position 3.
[compound class information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Protein Targets (75)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
TDP1 proteinHomo sapiens (human)Potency2.18530.000811.382244.6684AID686978; AID686979
Smad3Homo sapiens (human)Potency1.33920.00527.809829.0929AID588855; AID720534; AID720536; AID720537
67.9K proteinVaccinia virusPotency0.09460.00018.4406100.0000AID720579; AID720580
IDH1Homo sapiens (human)Potency0.13000.005210.865235.4813AID686970
nuclear factor erythroid 2-related factor 2 isoform 2Homo sapiens (human)Potency0.04530.00419.984825.9290AID504444; AID720524
gemininHomo sapiens (human)Potency3.98560.004611.374133.4983AID624296; AID624297
Guanine nucleotide-binding protein GHomo sapiens (human)Potency4.46681.995325.532750.1187AID624287
Chain A, Beta-lactamaseEscherichia coli K-12Potency25.11890.044717.8581100.0000AID485294
thioredoxin reductaseRattus norvegicus (Norway rat)Potency37.68580.100020.879379.4328AID588453
RAR-related orphan receptor gammaMus musculus (house mouse)Potency40.92740.006038.004119,952.5996AID1159521
SMAD family member 2Homo sapiens (human)Potency0.09360.173734.304761.8120AID1346859; AID1346924
ATAD5 protein, partialHomo sapiens (human)Potency0.10690.004110.890331.5287AID493106; AID493107; AID504467
PPM1D proteinHomo sapiens (human)Potency0.03700.00529.466132.9993AID1347411
SMAD family member 3Homo sapiens (human)Potency0.09360.173734.304761.8120AID1346859; AID1346924
TDP1 proteinHomo sapiens (human)Potency0.78160.000811.382244.6684AID686978; AID686979
AR proteinHomo sapiens (human)Potency0.29700.000221.22318,912.5098AID1259247; AID1259381; AID743035; AID743036; AID743040; AID743042; AID743053; AID743054; AID743063
estrogen receptor 2 (ER beta)Homo sapiens (human)Potency1.01710.000657.913322,387.1992AID1259377; AID1259378
nuclear receptor subfamily 1, group I, member 3Homo sapiens (human)Potency0.14930.001022.650876.6163AID1224838; AID1224839; AID1224893
progesterone receptorHomo sapiens (human)Potency0.31780.000417.946075.1148AID1346784; AID1346795
glucocorticoid receptor [Homo sapiens]Homo sapiens (human)Potency0.21180.000214.376460.0339AID720691; AID720692
retinoid X nuclear receptor alphaHomo sapiens (human)Potency0.29070.000817.505159.3239AID1159527; AID1159531
estrogen-related nuclear receptor alphaHomo sapiens (human)Potency0.12400.001530.607315,848.9004AID1224819; AID1224820; AID1224821; AID1224823; AID1224841; AID1224842; AID1224848; AID1224849; AID1259401; AID1259403
farnesoid X nuclear receptorHomo sapiens (human)Potency3.28590.375827.485161.6524AID743217; AID743220
pregnane X nuclear receptorHomo sapiens (human)Potency0.57050.005428.02631,258.9301AID1346982
estrogen nuclear receptor alphaHomo sapiens (human)Potency0.24590.000229.305416,493.5996AID1259244; AID1259248; AID743069; AID743075; AID743078; AID743079; AID743080; AID743091
peroxisome proliferator-activated receptor deltaHomo sapiens (human)Potency1.10220.001024.504861.6448AID743212; AID743215; AID743227
peroxisome proliferator activated receptor gammaHomo sapiens (human)Potency0.40900.001019.414170.9645AID743094; AID743140; AID743191
vitamin D (1,25- dihydroxyvitamin D3) receptorHomo sapiens (human)Potency0.57950.023723.228263.5986AID743222; AID743223; AID743241
euchromatic histone-lysine N-methyltransferase 2Homo sapiens (human)Potency22.38720.035520.977089.1251AID504332
cytochrome P450, family 19, subfamily A, polypeptide 1, isoform CRA_aHomo sapiens (human)Potency0.95830.001723.839378.1014AID743083
thyroid stimulating hormone receptorHomo sapiens (human)Potency1.60700.001628.015177.1139AID1224895; AID1259385; AID1259395
activating transcription factor 6Homo sapiens (human)Potency0.11570.143427.612159.8106AID1159516
nuclear factor of kappa light polypeptide gene enhancer in B-cells 1 (p105), isoform CRA_aHomo sapiens (human)Potency0.029019.739145.978464.9432AID1159509
v-jun sarcoma virus 17 oncogene homolog (avian)Homo sapiens (human)Potency0.32910.057821.109761.2679AID1159526
NPC intracellular cholesterol transporter 1 precursorHomo sapiens (human)Potency77.26680.01262.451825.0177AID485313
peripheral myelin protein 22 isoform 1Homo sapiens (human)Potency84.921423.934123.934123.9341AID1967
ras-related protein Rab-9AHomo sapiens (human)Potency14.60940.00022.621531.4954AID485297
nuclear factor erythroid 2-related factor 2 isoform 1Homo sapiens (human)Potency1.42530.000627.21521,122.0200AID743202; AID743219
gemininHomo sapiens (human)Potency0.17560.004611.374133.4983AID624296; AID624297
survival motor neuron protein isoform dHomo sapiens (human)Potency0.22390.125912.234435.4813AID1458
lamin isoform A-delta10Homo sapiens (human)Potency0.79430.891312.067628.1838AID1487
Voltage-dependent calcium channel gamma-2 subunitMus musculus (house mouse)Potency0.04970.001557.789015,848.9004AID1259244
Interferon betaHomo sapiens (human)Potency0.04100.00339.158239.8107AID1347407; AID1347411
Cellular tumor antigen p53Homo sapiens (human)Potency0.09360.002319.595674.0614AID651631
Glutamate receptor 2Rattus norvegicus (Norway rat)Potency0.04970.001551.739315,848.9004AID1259244
ATPase family AAA domain-containing protein 5Homo sapiens (human)Potency1.74150.011917.942071.5630AID651632; AID720516
Ataxin-2Homo sapiens (human)Potency0.04250.011912.222168.7989AID651632
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Inhibition Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain H, Igg2b-kappa 40-50 Fab (heavy Chain)Mus musculus (house mouse)Ki0.00280.00280.00280.0028AID977610
Chain L, Igg2b-kappa 40-50 Fab (light Chain)Mus musculus (house mouse)Ki0.00280.00280.00280.0028AID977610
STAT3, partialHomo sapiens (human)IC50 (µMol)1.15400.07604.07588.6430AID1399
Kruppel-like factor 5Homo sapiens (human)IC50 (µMol)0.08320.02970.88853.8540AID1973; AID2750; AID485336
signal transducer and activator of transcription 1-alpha/beta isoform alphaHomo sapiens (human)IC50 (µMol)55.70009.25409.25409.2540AID1411
Bile salt export pumpHomo sapiens (human)IC50 (µMol)1,000.00000.11007.190310.0000AID1449628
Sodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)IC50 (µMol)6.00000.00480.78076.0000AID614150
Sodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)Ki0.09350.05500.12120.1960AID1802889
Sodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)Ki0.09350.05500.12120.1960AID1802889
Sodium/potassium-transporting ATPase subunit alpha-1 Rattus norvegicus (Norway rat)IC50 (µMol)4.30004.30004.30004.3000AID1455003
Sodium/potassium-transporting ATPase subunit alpha-2Rattus norvegicus (Norway rat)IC50 (µMol)0.17000.17000.19500.2200AID1455005
Sodium/potassium-transporting ATPase subunit alpha-3 Rattus norvegicus (Norway rat)IC50 (µMol)0.03100.03100.12550.2200AID1455006
Sodium/potassium-transporting ATPase subunit beta-1 Rattus norvegicus (Norway rat)IC50 (µMol)1.12630.00240.64654.3000AID1455003; AID1455005; AID1455006; AID1455007
Muscarinic acetylcholine receptor M1Rattus norvegicus (Norway rat)IC50 (µMol)0.16460.00052.773925.1700AID1973
Replicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2IC50 (µMol)0.09700.00022.45859.9600AID1804171
Sodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)Ki0.09350.05500.12120.1960AID1802889
Sodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Potassium voltage-gated channel subfamily H member 2Homo sapiens (human)IC50 (µMol)5.80000.00091.901410.0000AID1455030
Sodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)IC50 (µMol)6.00000.00480.81346.0000AID614150
Sodium/potassium-transporting ATPase subunit beta-3Rattus norvegicus (Norway rat)IC50 (µMol)0.00180.00180.00180.0018AID1455008
Sodium/potassium-transporting ATPase subunit alpha-4Rattus norvegicus (Norway rat)IC50 (µMol)0.00310.00180.00520.0120AID1455007; AID1455008
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Activation Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, Na, K-ATPase alpha subunitSqualus acanthias (spiny dogfish)Kd0.00070.00070.00070.0007AID977611
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Other Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
cystic fibrosis transmembrane conductance regulator ATP-binding cassette sub-family C member 7Homo sapiens (human)AC503.38000.039815.002550.0000AID743267
Solute carrier organic anion transporter family member 1A4Rattus norvegicus (Norway rat)Km470.00000.24003.28416.5300AID678788
Solute carrier organic anion transporter family member 1A5Rattus norvegicus (Norway rat)Km1,571.00004.30006.39608.8000AID681149
Sodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Solute carrier organic anion transporter family member 1A1Rattus norvegicus (Norway rat)Km2,350.00000.01503.49967.0000AID681606; AID682135
Solute carrier organic anion transporter family member 1A2Homo sapiens (human)Km5,500.00006.40007.42009.6000AID679953
Sodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)LC509.40009.40009.40009.4000AID761691
Sodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)LC509.40009.40009.40009.4000AID761691
Solute carrier organic anion transporter family member 4C1Homo sapiens (human)Km0.38000.38004.69337.8000AID679306
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (306)

Processvia Protein(s)Taxonomy
negative regulation of inflammatory response to antigenic stimulusGuanine nucleotide-binding protein GHomo sapiens (human)
renal water homeostasisGuanine nucleotide-binding protein GHomo sapiens (human)
G protein-coupled receptor signaling pathwayGuanine nucleotide-binding protein GHomo sapiens (human)
regulation of insulin secretionGuanine nucleotide-binding protein GHomo sapiens (human)
cellular response to glucagon stimulusGuanine nucleotide-binding protein GHomo sapiens (human)
fatty acid metabolic processBile salt export pumpHomo sapiens (human)
bile acid biosynthetic processBile salt export pumpHomo sapiens (human)
xenobiotic metabolic processBile salt export pumpHomo sapiens (human)
xenobiotic transmembrane transportBile salt export pumpHomo sapiens (human)
response to oxidative stressBile salt export pumpHomo sapiens (human)
bile acid metabolic processBile salt export pumpHomo sapiens (human)
response to organic cyclic compoundBile salt export pumpHomo sapiens (human)
bile acid and bile salt transportBile salt export pumpHomo sapiens (human)
canalicular bile acid transportBile salt export pumpHomo sapiens (human)
protein ubiquitinationBile salt export pumpHomo sapiens (human)
regulation of fatty acid beta-oxidationBile salt export pumpHomo sapiens (human)
carbohydrate transmembrane transportBile salt export pumpHomo sapiens (human)
bile acid signaling pathwayBile salt export pumpHomo sapiens (human)
cholesterol homeostasisBile salt export pumpHomo sapiens (human)
response to estrogenBile salt export pumpHomo sapiens (human)
response to ethanolBile salt export pumpHomo sapiens (human)
xenobiotic export from cellBile salt export pumpHomo sapiens (human)
lipid homeostasisBile salt export pumpHomo sapiens (human)
phospholipid homeostasisBile salt export pumpHomo sapiens (human)
positive regulation of bile acid secretionBile salt export pumpHomo sapiens (human)
regulation of bile acid metabolic processBile salt export pumpHomo sapiens (human)
transmembrane transportBile salt export pumpHomo sapiens (human)
cell surface receptor signaling pathway via JAK-STATInterferon betaHomo sapiens (human)
response to exogenous dsRNAInterferon betaHomo sapiens (human)
B cell activation involved in immune responseInterferon betaHomo sapiens (human)
cell surface receptor signaling pathwayInterferon betaHomo sapiens (human)
cell surface receptor signaling pathway via JAK-STATInterferon betaHomo sapiens (human)
response to virusInterferon betaHomo sapiens (human)
positive regulation of autophagyInterferon betaHomo sapiens (human)
cytokine-mediated signaling pathwayInterferon betaHomo sapiens (human)
natural killer cell activationInterferon betaHomo sapiens (human)
positive regulation of peptidyl-serine phosphorylation of STAT proteinInterferon betaHomo sapiens (human)
cellular response to interferon-betaInterferon betaHomo sapiens (human)
B cell proliferationInterferon betaHomo sapiens (human)
negative regulation of viral genome replicationInterferon betaHomo sapiens (human)
innate immune responseInterferon betaHomo sapiens (human)
positive regulation of innate immune responseInterferon betaHomo sapiens (human)
regulation of MHC class I biosynthetic processInterferon betaHomo sapiens (human)
negative regulation of T cell differentiationInterferon betaHomo sapiens (human)
positive regulation of transcription by RNA polymerase IIInterferon betaHomo sapiens (human)
defense response to virusInterferon betaHomo sapiens (human)
type I interferon-mediated signaling pathwayInterferon betaHomo sapiens (human)
neuron cellular homeostasisInterferon betaHomo sapiens (human)
cellular response to exogenous dsRNAInterferon betaHomo sapiens (human)
cellular response to virusInterferon betaHomo sapiens (human)
negative regulation of Lewy body formationInterferon betaHomo sapiens (human)
negative regulation of T-helper 2 cell cytokine productionInterferon betaHomo sapiens (human)
positive regulation of apoptotic signaling pathwayInterferon betaHomo sapiens (human)
response to exogenous dsRNAInterferon betaHomo sapiens (human)
B cell differentiationInterferon betaHomo sapiens (human)
natural killer cell activation involved in immune responseInterferon betaHomo sapiens (human)
adaptive immune responseInterferon betaHomo sapiens (human)
T cell activation involved in immune responseInterferon betaHomo sapiens (human)
humoral immune responseInterferon betaHomo sapiens (human)
negative regulation of cell population proliferationCellular tumor antigen p53Homo sapiens (human)
regulation of cell cycleCellular tumor antigen p53Homo sapiens (human)
regulation of cell cycle G2/M phase transitionCellular tumor antigen p53Homo sapiens (human)
DNA damage responseCellular tumor antigen p53Homo sapiens (human)
ER overload responseCellular tumor antigen p53Homo sapiens (human)
cellular response to glucose starvationCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
regulation of apoptotic processCellular tumor antigen p53Homo sapiens (human)
positive regulation of transcription by RNA polymerase IICellular tumor antigen p53Homo sapiens (human)
positive regulation of miRNA transcriptionCellular tumor antigen p53Homo sapiens (human)
negative regulation of transcription by RNA polymerase IICellular tumor antigen p53Homo sapiens (human)
mitophagyCellular tumor antigen p53Homo sapiens (human)
in utero embryonic developmentCellular tumor antigen p53Homo sapiens (human)
somitogenesisCellular tumor antigen p53Homo sapiens (human)
release of cytochrome c from mitochondriaCellular tumor antigen p53Homo sapiens (human)
hematopoietic progenitor cell differentiationCellular tumor antigen p53Homo sapiens (human)
T cell proliferation involved in immune responseCellular tumor antigen p53Homo sapiens (human)
B cell lineage commitmentCellular tumor antigen p53Homo sapiens (human)
T cell lineage commitmentCellular tumor antigen p53Homo sapiens (human)
response to ischemiaCellular tumor antigen p53Homo sapiens (human)
nucleotide-excision repairCellular tumor antigen p53Homo sapiens (human)
double-strand break repairCellular tumor antigen p53Homo sapiens (human)
regulation of DNA-templated transcriptionCellular tumor antigen p53Homo sapiens (human)
regulation of transcription by RNA polymerase IICellular tumor antigen p53Homo sapiens (human)
protein import into nucleusCellular tumor antigen p53Homo sapiens (human)
autophagyCellular tumor antigen p53Homo sapiens (human)
DNA damage responseCellular tumor antigen p53Homo sapiens (human)
DNA damage response, signal transduction by p53 class mediator resulting in cell cycle arrestCellular tumor antigen p53Homo sapiens (human)
DNA damage response, signal transduction by p53 class mediator resulting in transcription of p21 class mediatorCellular tumor antigen p53Homo sapiens (human)
transforming growth factor beta receptor signaling pathwayCellular tumor antigen p53Homo sapiens (human)
Ras protein signal transductionCellular tumor antigen p53Homo sapiens (human)
gastrulationCellular tumor antigen p53Homo sapiens (human)
neuroblast proliferationCellular tumor antigen p53Homo sapiens (human)
negative regulation of neuroblast proliferationCellular tumor antigen p53Homo sapiens (human)
protein localizationCellular tumor antigen p53Homo sapiens (human)
negative regulation of DNA replicationCellular tumor antigen p53Homo sapiens (human)
negative regulation of cell population proliferationCellular tumor antigen p53Homo sapiens (human)
determination of adult lifespanCellular tumor antigen p53Homo sapiens (human)
mRNA transcriptionCellular tumor antigen p53Homo sapiens (human)
rRNA transcriptionCellular tumor antigen p53Homo sapiens (human)
response to salt stressCellular tumor antigen p53Homo sapiens (human)
response to inorganic substanceCellular tumor antigen p53Homo sapiens (human)
response to X-rayCellular tumor antigen p53Homo sapiens (human)
response to gamma radiationCellular tumor antigen p53Homo sapiens (human)
positive regulation of gene expressionCellular tumor antigen p53Homo sapiens (human)
cardiac muscle cell apoptotic processCellular tumor antigen p53Homo sapiens (human)
positive regulation of cardiac muscle cell apoptotic processCellular tumor antigen p53Homo sapiens (human)
glial cell proliferationCellular tumor antigen p53Homo sapiens (human)
viral processCellular tumor antigen p53Homo sapiens (human)
glucose catabolic process to lactate via pyruvateCellular tumor antigen p53Homo sapiens (human)
cerebellum developmentCellular tumor antigen p53Homo sapiens (human)
negative regulation of cell growthCellular tumor antigen p53Homo sapiens (human)
DNA damage response, signal transduction by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
negative regulation of transforming growth factor beta receptor signaling pathwayCellular tumor antigen p53Homo sapiens (human)
mitotic G1 DNA damage checkpoint signalingCellular tumor antigen p53Homo sapiens (human)
negative regulation of telomere maintenance via telomeraseCellular tumor antigen p53Homo sapiens (human)
T cell differentiation in thymusCellular tumor antigen p53Homo sapiens (human)
tumor necrosis factor-mediated signaling pathwayCellular tumor antigen p53Homo sapiens (human)
regulation of tissue remodelingCellular tumor antigen p53Homo sapiens (human)
cellular response to UVCellular tumor antigen p53Homo sapiens (human)
multicellular organism growthCellular tumor antigen p53Homo sapiens (human)
positive regulation of mitochondrial membrane permeabilityCellular tumor antigen p53Homo sapiens (human)
cellular response to glucose starvationCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
positive regulation of apoptotic processCellular tumor antigen p53Homo sapiens (human)
negative regulation of apoptotic processCellular tumor antigen p53Homo sapiens (human)
entrainment of circadian clock by photoperiodCellular tumor antigen p53Homo sapiens (human)
mitochondrial DNA repairCellular tumor antigen p53Homo sapiens (human)
regulation of DNA damage response, signal transduction by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
positive regulation of neuron apoptotic processCellular tumor antigen p53Homo sapiens (human)
transcription initiation-coupled chromatin remodelingCellular tumor antigen p53Homo sapiens (human)
negative regulation of proteolysisCellular tumor antigen p53Homo sapiens (human)
negative regulation of DNA-templated transcriptionCellular tumor antigen p53Homo sapiens (human)
positive regulation of DNA-templated transcriptionCellular tumor antigen p53Homo sapiens (human)
positive regulation of RNA polymerase II transcription preinitiation complex assemblyCellular tumor antigen p53Homo sapiens (human)
positive regulation of transcription by RNA polymerase IICellular tumor antigen p53Homo sapiens (human)
response to antibioticCellular tumor antigen p53Homo sapiens (human)
fibroblast proliferationCellular tumor antigen p53Homo sapiens (human)
negative regulation of fibroblast proliferationCellular tumor antigen p53Homo sapiens (human)
circadian behaviorCellular tumor antigen p53Homo sapiens (human)
bone marrow developmentCellular tumor antigen p53Homo sapiens (human)
embryonic organ developmentCellular tumor antigen p53Homo sapiens (human)
positive regulation of peptidyl-tyrosine phosphorylationCellular tumor antigen p53Homo sapiens (human)
protein stabilizationCellular tumor antigen p53Homo sapiens (human)
negative regulation of helicase activityCellular tumor antigen p53Homo sapiens (human)
protein tetramerizationCellular tumor antigen p53Homo sapiens (human)
chromosome organizationCellular tumor antigen p53Homo sapiens (human)
neuron apoptotic processCellular tumor antigen p53Homo sapiens (human)
regulation of cell cycleCellular tumor antigen p53Homo sapiens (human)
hematopoietic stem cell differentiationCellular tumor antigen p53Homo sapiens (human)
negative regulation of glial cell proliferationCellular tumor antigen p53Homo sapiens (human)
type II interferon-mediated signaling pathwayCellular tumor antigen p53Homo sapiens (human)
cardiac septum morphogenesisCellular tumor antigen p53Homo sapiens (human)
positive regulation of programmed necrotic cell deathCellular tumor antigen p53Homo sapiens (human)
protein-containing complex assemblyCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to endoplasmic reticulum stressCellular tumor antigen p53Homo sapiens (human)
thymocyte apoptotic processCellular tumor antigen p53Homo sapiens (human)
positive regulation of thymocyte apoptotic processCellular tumor antigen p53Homo sapiens (human)
necroptotic processCellular tumor antigen p53Homo sapiens (human)
cellular response to hypoxiaCellular tumor antigen p53Homo sapiens (human)
cellular response to xenobiotic stimulusCellular tumor antigen p53Homo sapiens (human)
cellular response to ionizing radiationCellular tumor antigen p53Homo sapiens (human)
cellular response to gamma radiationCellular tumor antigen p53Homo sapiens (human)
cellular response to UV-CCellular tumor antigen p53Homo sapiens (human)
stem cell proliferationCellular tumor antigen p53Homo sapiens (human)
signal transduction by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathway by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
reactive oxygen species metabolic processCellular tumor antigen p53Homo sapiens (human)
cellular response to actinomycin DCellular tumor antigen p53Homo sapiens (human)
positive regulation of release of cytochrome c from mitochondriaCellular tumor antigen p53Homo sapiens (human)
cellular senescenceCellular tumor antigen p53Homo sapiens (human)
replicative senescenceCellular tumor antigen p53Homo sapiens (human)
oxidative stress-induced premature senescenceCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathwayCellular tumor antigen p53Homo sapiens (human)
oligodendrocyte apoptotic processCellular tumor antigen p53Homo sapiens (human)
positive regulation of execution phase of apoptosisCellular tumor antigen p53Homo sapiens (human)
negative regulation of mitophagyCellular tumor antigen p53Homo sapiens (human)
regulation of mitochondrial membrane permeability involved in apoptotic processCellular tumor antigen p53Homo sapiens (human)
regulation of intrinsic apoptotic signaling pathway by p53 class mediatorCellular tumor antigen p53Homo sapiens (human)
positive regulation of miRNA transcriptionCellular tumor antigen p53Homo sapiens (human)
negative regulation of G1 to G0 transitionCellular tumor antigen p53Homo sapiens (human)
negative regulation of miRNA processingCellular tumor antigen p53Homo sapiens (human)
negative regulation of glucose catabolic process to lactate via pyruvateCellular tumor antigen p53Homo sapiens (human)
negative regulation of pentose-phosphate shuntCellular tumor antigen p53Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to hypoxiaCellular tumor antigen p53Homo sapiens (human)
regulation of fibroblast apoptotic processCellular tumor antigen p53Homo sapiens (human)
negative regulation of reactive oxygen species metabolic processCellular tumor antigen p53Homo sapiens (human)
positive regulation of reactive oxygen species metabolic processCellular tumor antigen p53Homo sapiens (human)
negative regulation of stem cell proliferationCellular tumor antigen p53Homo sapiens (human)
positive regulation of cellular senescenceCellular tumor antigen p53Homo sapiens (human)
positive regulation of intrinsic apoptotic signaling pathwayCellular tumor antigen p53Homo sapiens (human)
regulation of the force of heart contractionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
regulation of sodium ion transportSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
osmosensory signaling pathwaySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
regulation of blood pressureSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
response to xenobiotic stimulusSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
negative regulation of glucocorticoid biosynthetic processSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
negative regulation of heart contractionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
positive regulation of heart contractionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
positive regulation of striated muscle contractionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
relaxation of cardiac muscleSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
cellular response to steroid hormone stimulusSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
cardiac muscle cell action potential involved in contractionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
membrane repolarizationSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
membrane repolarization during cardiac muscle cell action potentialSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
cell communication by electrical coupling involved in cardiac conductionSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
response to glycosideSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
intracellular calcium ion homeostasisSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
cell adhesionSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
regulation of gene expressionSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
regulation of cardiac muscle contraction by calcium ion signalingSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of ATP-dependent activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
sodium ion transmembrane transportSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein transport into plasma membrane raftSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
innate immune responseSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
ATP metabolic processSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein stabilizationSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
relaxation of cardiac muscleSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
cardiac muscle contractionSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein localization to plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
membrane repolarizationSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
membrane repolarization during cardiac muscle cell action potentialSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
cell communication by electrical coupling involved in cardiac conductionSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
monoatomic cation transmembrane transportSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of potassium ion transmembrane transporter activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of calcium:sodium antiporter activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
positive regulation of P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
regulation of resting membrane potentialSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
cellular response to steroid hormone stimulusSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
cell communication by electrical coupling involved in cardiac conductionSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
response to glycosideSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
cellular response to amyloid-betaSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
neuron projection maintenanceSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
retina homeostasisSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
lateral ventricle developmentSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
third ventricle developmentSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
neuronal-glial interaction involved in hindbrain glial-mediated radial cell migrationSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
photoreceptor cell maintenanceSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
motor behaviorSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
plasma membrane bounded cell projection organizationSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
positive regulation of neuron projection developmentSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cell-substrate adhesionSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
positive regulation of ATP-dependent activitySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
protein stabilizationSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
membrane repolarizationSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cell communication by electrical coupling involved in cardiac conductionSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
transport across blood-brain barrierSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
positive regulation of potassium ion transmembrane transporter activitySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
positive regulation of sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
positive regulation of potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
negative regulation of glial cell migrationSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
xenobiotic metabolic processSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
monoatomic ion transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
organic cation transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
organic anion transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
bile acid and bile salt transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
sodium-independent organic anion transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
transmembrane transportSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
behavioral fear responseSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of the force of heart contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of respiratory gaseous exchange by nervous system processSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of muscle contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
amygdala developmentSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
olfactory cortex developmentSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
locomotionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
negative regulation of heart contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
positive regulation of heart contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
negative regulation of cytosolic calcium ion concentrationSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
neurotransmitter uptakeSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
potassium ion transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
sodium ion transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of smooth muscle contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of striated muscle contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of blood pressureSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
adult locomotory behaviorSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
visual learningSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of cardiac muscle contraction by regulation of the release of sequestered calcium ionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
response to auditory stimulusSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
neuronal action potential propagationSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of vasoconstrictionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
L-ascorbic acid metabolic processSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
response to nicotineSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
locomotory exploration behaviorSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
sodium ion transmembrane transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
response to potassium ionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
negative regulation of striated muscle contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
ATP metabolic processSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of glutamate uptake involved in transmission of nerve impulseSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of synaptic transmission, glutamatergicSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
relaxation of cardiac muscleSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cardiac muscle contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cellular response to mechanical stimulusSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cellular response to steroid hormone stimulusSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
potassium ion transmembrane transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
regulation of cardiac muscle cell contractionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
membrane repolarizationSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
membrane depolarization during cardiac muscle cell action potentialSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cell communication by electrical coupling involved in cardiac conductionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
monoatomic cation transmembrane transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
transport across blood-brain barrierSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
negative regulation of calcium ion transmembrane transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
negative regulation of calcium:sodium antiporter activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
response to glycosideSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
positive regulation of ATP-dependent activitySodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
sodium ion transmembrane transportSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
protein stabilizationSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
potassium ion transmembrane transportSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
protein localization to plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
membrane repolarizationSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
positive regulation of potassium ion transmembrane transporter activitySodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
positive regulation of sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
positive regulation of potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
transmembrane transportSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
positive regulation of P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
regulation of sodium ion transmembrane transporter activitySodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
regulation of heart rate by cardiac conductionPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of heart rate by hormonePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of membrane potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
positive regulation of DNA-templated transcriptionPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
potassium ion homeostasisPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
cardiac muscle contractionPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of membrane repolarizationPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of ventricular cardiac muscle cell membrane repolarizationPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
cellular response to xenobiotic stimulusPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
potassium ion transmembrane transportPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
ventricular cardiac muscle cell action potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
membrane repolarizationPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
membrane depolarization during action potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
membrane repolarization during action potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
membrane repolarization during cardiac muscle cell action potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of heart rate by cardiac conductionPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
potassium ion export across plasma membranePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
membrane repolarization during ventricular cardiac muscle cell action potentialPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
regulation of potassium ion transmembrane transportPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
negative regulation of potassium ion transmembrane transportPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
positive regulation of potassium ion transmembrane transportPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
negative regulation of potassium ion export across plasma membranePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
potassium ion import across plasma membranePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
monoatomic ion transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
potassium ion transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
sodium ion transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
cell surface receptor signaling pathwaySodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
spermatogenesisSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
fertilizationSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
establishment or maintenance of transmembrane electrochemical gradientSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
flagellated sperm motilitySodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
regulation of cellular pHSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
sodium ion transmembrane transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
regulation of membrane potentialSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
establishment of localization in cellSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
potassium ion transmembrane transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
transport across blood-brain barrierSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
proton transmembrane transportSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
sodium ion export across plasma membraneSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
potassium ion import across plasma membraneSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
intracellular potassium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
intracellular sodium ion homeostasisSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
monoatomic ion transportSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
spermatogenesisSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
cell differentiationSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
sodium-independent organic anion transportSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
transmembrane transportSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
cell population proliferationATPase family AAA domain-containing protein 5Homo sapiens (human)
positive regulation of B cell proliferationATPase family AAA domain-containing protein 5Homo sapiens (human)
nuclear DNA replicationATPase family AAA domain-containing protein 5Homo sapiens (human)
signal transduction in response to DNA damageATPase family AAA domain-containing protein 5Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorATPase family AAA domain-containing protein 5Homo sapiens (human)
isotype switchingATPase family AAA domain-containing protein 5Homo sapiens (human)
positive regulation of DNA replicationATPase family AAA domain-containing protein 5Homo sapiens (human)
positive regulation of isotype switching to IgG isotypesATPase family AAA domain-containing protein 5Homo sapiens (human)
DNA clamp unloadingATPase family AAA domain-containing protein 5Homo sapiens (human)
regulation of mitotic cell cycle phase transitionATPase family AAA domain-containing protein 5Homo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorATPase family AAA domain-containing protein 5Homo sapiens (human)
positive regulation of cell cycle G2/M phase transitionATPase family AAA domain-containing protein 5Homo sapiens (human)
negative regulation of receptor internalizationAtaxin-2Homo sapiens (human)
regulation of translationAtaxin-2Homo sapiens (human)
RNA metabolic processAtaxin-2Homo sapiens (human)
P-body assemblyAtaxin-2Homo sapiens (human)
stress granule assemblyAtaxin-2Homo sapiens (human)
RNA transportAtaxin-2Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (90)

Processvia Protein(s)Taxonomy
G protein activityGuanine nucleotide-binding protein GHomo sapiens (human)
adenylate cyclase activator activityGuanine nucleotide-binding protein GHomo sapiens (human)
protein bindingBile salt export pumpHomo sapiens (human)
ATP bindingBile salt export pumpHomo sapiens (human)
ABC-type xenobiotic transporter activityBile salt export pumpHomo sapiens (human)
bile acid transmembrane transporter activityBile salt export pumpHomo sapiens (human)
canalicular bile acid transmembrane transporter activityBile salt export pumpHomo sapiens (human)
carbohydrate transmembrane transporter activityBile salt export pumpHomo sapiens (human)
ABC-type bile acid transporter activityBile salt export pumpHomo sapiens (human)
ATP hydrolysis activityBile salt export pumpHomo sapiens (human)
cytokine activityInterferon betaHomo sapiens (human)
cytokine receptor bindingInterferon betaHomo sapiens (human)
type I interferon receptor bindingInterferon betaHomo sapiens (human)
protein bindingInterferon betaHomo sapiens (human)
chloramphenicol O-acetyltransferase activityInterferon betaHomo sapiens (human)
transcription cis-regulatory region bindingCellular tumor antigen p53Homo sapiens (human)
RNA polymerase II cis-regulatory region sequence-specific DNA bindingCellular tumor antigen p53Homo sapiens (human)
DNA-binding transcription factor activity, RNA polymerase II-specificCellular tumor antigen p53Homo sapiens (human)
cis-regulatory region sequence-specific DNA bindingCellular tumor antigen p53Homo sapiens (human)
core promoter sequence-specific DNA bindingCellular tumor antigen p53Homo sapiens (human)
TFIID-class transcription factor complex bindingCellular tumor antigen p53Homo sapiens (human)
DNA-binding transcription repressor activity, RNA polymerase II-specificCellular tumor antigen p53Homo sapiens (human)
DNA-binding transcription activator activity, RNA polymerase II-specificCellular tumor antigen p53Homo sapiens (human)
protease bindingCellular tumor antigen p53Homo sapiens (human)
p53 bindingCellular tumor antigen p53Homo sapiens (human)
DNA bindingCellular tumor antigen p53Homo sapiens (human)
chromatin bindingCellular tumor antigen p53Homo sapiens (human)
DNA-binding transcription factor activityCellular tumor antigen p53Homo sapiens (human)
mRNA 3'-UTR bindingCellular tumor antigen p53Homo sapiens (human)
copper ion bindingCellular tumor antigen p53Homo sapiens (human)
protein bindingCellular tumor antigen p53Homo sapiens (human)
zinc ion bindingCellular tumor antigen p53Homo sapiens (human)
enzyme bindingCellular tumor antigen p53Homo sapiens (human)
receptor tyrosine kinase bindingCellular tumor antigen p53Homo sapiens (human)
ubiquitin protein ligase bindingCellular tumor antigen p53Homo sapiens (human)
histone deacetylase regulator activityCellular tumor antigen p53Homo sapiens (human)
ATP-dependent DNA/DNA annealing activityCellular tumor antigen p53Homo sapiens (human)
identical protein bindingCellular tumor antigen p53Homo sapiens (human)
histone deacetylase bindingCellular tumor antigen p53Homo sapiens (human)
protein heterodimerization activityCellular tumor antigen p53Homo sapiens (human)
protein-folding chaperone bindingCellular tumor antigen p53Homo sapiens (human)
protein phosphatase 2A bindingCellular tumor antigen p53Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingCellular tumor antigen p53Homo sapiens (human)
14-3-3 protein bindingCellular tumor antigen p53Homo sapiens (human)
MDM2/MDM4 family protein bindingCellular tumor antigen p53Homo sapiens (human)
disordered domain specific bindingCellular tumor antigen p53Homo sapiens (human)
general transcription initiation factor bindingCellular tumor antigen p53Homo sapiens (human)
molecular function activator activityCellular tumor antigen p53Homo sapiens (human)
promoter-specific chromatin bindingCellular tumor antigen p53Homo sapiens (human)
P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
ATP bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
phosphatase activitySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
ATP hydrolysis activitySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
potassium ion bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sodium ion bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
transmembrane transporter bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
protein heterodimerization activitySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
protein-folding chaperone bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
steroid hormone bindingSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
ATPase activator activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein kinase bindingSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
MHC class II protein complex bindingSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein-macromolecule adaptor activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
protein heterodimerization activitySodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
ATPase bindingSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
3'-5'-RNA exonuclease activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA-dependent RNA polymerase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
cysteine-type endopeptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA 5'-cap (guanine-N7-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA (nucleoside-2'-O-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA endonuclease activity, producing 3'-phosphomonoestersReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
ISG15-specific peptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
5'-3' RNA helicase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
protein guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
amyloid-beta bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
ATP bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
ATP hydrolysis activitySodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
metal ion bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
protein-folding chaperone bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
steroid hormone bindingSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
ATPase activator activitySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
protein-macromolecule adaptor activitySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
protein heterodimerization activitySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
ATPase bindingSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
organic anion transmembrane transporter activitySolute carrier organic anion transporter family member 1A2Homo sapiens (human)
organic cation transmembrane transporter activitySolute carrier organic anion transporter family member 1A2Homo sapiens (human)
bile acid transmembrane transporter activitySolute carrier organic anion transporter family member 1A2Homo sapiens (human)
transmembrane transporter activitySolute carrier organic anion transporter family member 1A2Homo sapiens (human)
sodium-independent organic anion transmembrane transporter activitySolute carrier organic anion transporter family member 1A2Homo sapiens (human)
P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
steroid bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
ATP bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
phosphatase activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
ATP hydrolysis activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
ATPase-coupled monoatomic cation transmembrane transporter activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
potassium ion bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
sodium ion bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
protein heterodimerization activitySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
protein-folding chaperone bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
steroid hormone bindingSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
ATPase activator activitySodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
protein-macromolecule adaptor activitySodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
ATPase bindingSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
ATPase activator activitySodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
protein-macromolecule adaptor activitySodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
sodium channel regulator activitySodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
transcription cis-regulatory region bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
inward rectifier potassium channel activityPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
voltage-gated potassium channel activityPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
delayed rectifier potassium channel activityPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
protein bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
ubiquitin protein ligase bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
identical protein bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
protein homodimerization activityPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
C3HC4-type RING finger domain bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
voltage-gated potassium channel activity involved in cardiac muscle cell action potential repolarizationPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
scaffold protein bindingPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
voltage-gated potassium channel activity involved in ventricular cardiac muscle cell action potential repolarizationPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
P-type sodium:potassium-exchanging transporter activitySodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
protein bindingSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
ATP bindingSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
ATP hydrolysis activitySodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
ATPase-coupled monoatomic cation transmembrane transporter activitySodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
kinase bindingSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
metal ion bindingSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
organic anion transmembrane transporter activitySolute carrier organic anion transporter family member 4C1Homo sapiens (human)
sodium-independent organic anion transmembrane transporter activitySolute carrier organic anion transporter family member 4C1Homo sapiens (human)
protein bindingATPase family AAA domain-containing protein 5Homo sapiens (human)
ATP bindingATPase family AAA domain-containing protein 5Homo sapiens (human)
ATP hydrolysis activityATPase family AAA domain-containing protein 5Homo sapiens (human)
DNA clamp unloader activityATPase family AAA domain-containing protein 5Homo sapiens (human)
DNA bindingATPase family AAA domain-containing protein 5Homo sapiens (human)
RNA bindingAtaxin-2Homo sapiens (human)
epidermal growth factor receptor bindingAtaxin-2Homo sapiens (human)
protein bindingAtaxin-2Homo sapiens (human)
mRNA bindingAtaxin-2Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (75)

Processvia Protein(s)Taxonomy
plasma membraneGuanine nucleotide-binding protein GHomo sapiens (human)
basolateral plasma membraneBile salt export pumpHomo sapiens (human)
Golgi membraneBile salt export pumpHomo sapiens (human)
endosomeBile salt export pumpHomo sapiens (human)
plasma membraneBile salt export pumpHomo sapiens (human)
cell surfaceBile salt export pumpHomo sapiens (human)
apical plasma membraneBile salt export pumpHomo sapiens (human)
intercellular canaliculusBile salt export pumpHomo sapiens (human)
intracellular canaliculusBile salt export pumpHomo sapiens (human)
recycling endosomeBile salt export pumpHomo sapiens (human)
recycling endosome membraneBile salt export pumpHomo sapiens (human)
extracellular exosomeBile salt export pumpHomo sapiens (human)
membraneBile salt export pumpHomo sapiens (human)
extracellular spaceInterferon betaHomo sapiens (human)
extracellular regionInterferon betaHomo sapiens (human)
nuclear bodyCellular tumor antigen p53Homo sapiens (human)
nucleusCellular tumor antigen p53Homo sapiens (human)
nucleoplasmCellular tumor antigen p53Homo sapiens (human)
replication forkCellular tumor antigen p53Homo sapiens (human)
nucleolusCellular tumor antigen p53Homo sapiens (human)
cytoplasmCellular tumor antigen p53Homo sapiens (human)
mitochondrionCellular tumor antigen p53Homo sapiens (human)
mitochondrial matrixCellular tumor antigen p53Homo sapiens (human)
endoplasmic reticulumCellular tumor antigen p53Homo sapiens (human)
centrosomeCellular tumor antigen p53Homo sapiens (human)
cytosolCellular tumor antigen p53Homo sapiens (human)
nuclear matrixCellular tumor antigen p53Homo sapiens (human)
PML bodyCellular tumor antigen p53Homo sapiens (human)
transcription repressor complexCellular tumor antigen p53Homo sapiens (human)
site of double-strand breakCellular tumor antigen p53Homo sapiens (human)
germ cell nucleusCellular tumor antigen p53Homo sapiens (human)
chromatinCellular tumor antigen p53Homo sapiens (human)
transcription regulator complexCellular tumor antigen p53Homo sapiens (human)
protein-containing complexCellular tumor antigen p53Homo sapiens (human)
endoplasmic reticulumSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
Golgi apparatusSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
postsynaptic densitySodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
basolateral plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
apical plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
lateral plasma membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
T-tubuleSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
axonSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
organelle membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sperm flagellumSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sarcolemmaSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
melanosomeSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
membrane raftSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
photoreceptor inner segment membraneSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
extracellular exosomeSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
extracellular vesicleSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
protein-containing complexSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
sarcolemmaSodium/potassium-transporting ATPase subunit alpha-1 Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
intercalated discSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
basolateral plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
apical plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
lateral plasma membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
T-tubuleSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
organelle membraneSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
sperm flagellumSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
sarcolemmaSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
extracellular exosomeSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
extracellular vesicleSodium/potassium-transporting ATPase subunit beta-1Homo sapiens (human)
double membrane vesicle viral factory outer membraneReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
photoreceptor inner segmentSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
endoplasmic reticulumSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
Golgi apparatusSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
axonSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
organelle membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
neuronal cell body membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
neuronal cell bodySodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
synapseSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
photoreceptor inner segment membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
neuron to neuron synapseSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
extracellular vesicleSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-3Homo sapiens (human)
photoreceptor inner segmentSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cytoplasmSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
external side of plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
apical plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
lateral plasma membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cell projection membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cell body membraneSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
cell peripherySodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
astrocyte projectionSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
astrocyte end-footSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
neuron to neuron synapseSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit beta-2Homo sapiens (human)
plasma membraneGlutamate receptor 2Rattus norvegicus (Norway rat)
plasma membraneSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
basal plasma membraneSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
apical plasma membraneSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
basolateral plasma membraneSolute carrier organic anion transporter family member 1A2Homo sapiens (human)
cytoplasmSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
endosomeSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
endoplasmic reticulumSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
caveolaSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cell surfaceSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
intercalated discSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
T-tubuleSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
organelle membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cell projectionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
neuronal cell bodySodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
dendritic spineSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
extracellular vesicleSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
cell projectionSodium/potassium-transporting ATPase subunit alpha-2Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
basolateral plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
apical plasma membraneSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
sperm flagellumSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
melanosomeSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
extracellular exosomeSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit beta-3Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
extracellular exosomeSodium/potassium-transporting ATPase subunit gammaHomo sapiens (human)
plasma membranePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
cell surfacePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
perinuclear region of cytoplasmPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
voltage-gated potassium channel complexPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
inward rectifier potassium channel complexPotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
plasma membranePotassium voltage-gated channel subfamily H member 2Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
membrane raftSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
sperm midpieceSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
photoreceptor cell ciliumSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
rod photoreceptor outer segmentSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
sodium:potassium-exchanging ATPase complexSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
plasma membraneSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
cell projectionSodium/potassium-transporting ATPase subunit alpha-4Homo sapiens (human)
plasma membraneSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
azurophil granule membraneSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
specific granule membraneSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
extracellular exosomeSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
basolateral plasma membraneSolute carrier organic anion transporter family member 4C1Homo sapiens (human)
Elg1 RFC-like complexATPase family AAA domain-containing protein 5Homo sapiens (human)
nucleusATPase family AAA domain-containing protein 5Homo sapiens (human)
cytoplasmAtaxin-2Homo sapiens (human)
Golgi apparatusAtaxin-2Homo sapiens (human)
trans-Golgi networkAtaxin-2Homo sapiens (human)
cytosolAtaxin-2Homo sapiens (human)
cytoplasmic stress granuleAtaxin-2Homo sapiens (human)
membraneAtaxin-2Homo sapiens (human)
perinuclear region of cytoplasmAtaxin-2Homo sapiens (human)
ribonucleoprotein complexAtaxin-2Homo sapiens (human)
cytoplasmic stress granuleAtaxin-2Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (244)

Assay IDTitleYearJournalArticle
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID1347082qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: LASV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1745845Primary qHTS for Inhibitors of ATXN expression
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID1347083qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: Viability assay - alamar blue signal for LASV Primary Screen2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
AID1347086qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lymphocytic Choriomeningitis Arenaviruses (LCMV): LCMV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347410qHTS for inhibitors of adenylyl cyclases using a fission yeast platform: a pilot screen against the NCATS LOPAC library2019Cellular signalling, 08, Volume: 60A fission yeast platform for heterologous expression of mammalian adenylyl cyclases and high throughput screening.
AID1347405qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS LOPAC collection2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1347059CD47-SIRPalpha protein protein interaction - Alpha assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347057CD47-SIRPalpha protein protein interaction - LANCE assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347151Optimization of GU AMC qHTS for Zika virus inhibitors: Unlinked NS2B-NS3 protease assay2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347058CD47-SIRPalpha protein protein interaction - HTRF assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1159607Screen for inhibitors of RMI FANCM (MM2) intereaction2016Journal of biomolecular screening, Jul, Volume: 21, Issue:6
A High-Throughput Screening Strategy to Identify Protein-Protein Interaction Inhibitors That Block the Fanconi Anemia DNA Repair Pathway.
AID1296008Cytotoxic Profiling of Annotated Libraries Using Quantitative High-Throughput Screening2020SLAS discovery : advancing life sciences R & D, 01, Volume: 25, Issue:1
Cytotoxic Profiling of Annotated and Diverse Chemical Libraries Using Quantitative High-Throughput Screening.
AID1346986P-glycoprotein substrates identified in KB-3-1 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID1346987P-glycoprotein substrates identified in KB-8-5-11 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID1347160Primary screen NINDS Rhodamine qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347159Primary screen GU Rhodamine qHTS for Zika virus inhibitors: Unlinked NS2B-NS3 protease assay2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID588459High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, Validation compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588459High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, Validation compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588459High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, Validation compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID504810Antagonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID588460High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, Validation Compound Set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588460High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, Validation Compound Set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588460High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, Validation Compound Set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID504812Inverse Agonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID588461High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, Validation compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588461High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, Validation compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588461High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, Validation compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID1347050Natriuretic polypeptide receptor (hNpr2) antagonism - Pilot subtype selectivity assay2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID588349qHTS for Inhibitors of ATXN expression: Validation of Cytotoxic Assay
AID1347045Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot counterscreen GloSensor control cell line2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID1347083qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: Viability assay - alamar blue signal for LASV Primary Screen2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID588378qHTS for Inhibitors of ATXN expression: Validation
AID1347082qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: LASV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347049Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot screen2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID1508630Primary qHTS for small molecule stabilizers of the endoplasmic reticulum resident proteome: Secreted ER Calcium Modulated Protein (SERCaMP) assay2021Cell reports, 04-27, Volume: 35, Issue:4
A target-agnostic screen identifies approved drugs to stabilize the endoplasmic reticulum-resident proteome.
AID504836Inducers of the Endoplasmic Reticulum Stress Response (ERSR) in human glioma: Validation2002The Journal of biological chemistry, Apr-19, Volume: 277, Issue:16
Sustained ER Ca2+ depletion suppresses protein synthesis and induces activation-enhanced cell death in mast cells.
AID1347086qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lymphocytic Choriomeningitis Arenaviruses (LCMV): LCMV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347411qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS Mechanism Interrogation Plate v5.0 (MIPE) Libary2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1347412qHTS assay to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: Counter screen cell viability and HiBit confirmation2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1347115qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for NB-EBc1 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347123qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh41 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347096qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for U-2 OS cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347113qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for LAN-5 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
AID1347110qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for A673 cells)2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347128qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for OHS-50 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347094qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for BT-37 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347092qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for A673 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347098qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SK-N-SH cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347093qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SK-N-MC cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347108qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh41 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347424RapidFire Mass Spectrometry qHTS Assay for Modulators of WT P53-Induced Phosphatase 1 (WIP1)2019The Journal of biological chemistry, 11-15, Volume: 294, Issue:46
Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens.
AID1347105qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for MG 63 (6-TG R) cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347124qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for RD cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347101qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for BT-12 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347125qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh18 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347099qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for NB1643 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347121qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for control Hh wild type fibroblast cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347127qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Saos-2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347104qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for RD cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347407qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS Pharmaceutical Collection2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1745845Primary qHTS for Inhibitors of ATXN expression
AID1347100qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for LAN-5 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347091qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for SJ-GBM2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347425Rhodamine-PBP qHTS Assay for Modulators of WT P53-Induced Phosphatase 1 (WIP1)2019The Journal of biological chemistry, 11-15, Volume: 294, Issue:46
Physiologically relevant orthogonal assays for the discovery of small-molecule modulators of WIP1 phosphatase in high-throughput screens.
AID1347102qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh18 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347116qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SJ-GBM2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347119qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for MG 63 (6-TG R) cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347095qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for NB-EBc1 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347122qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for U-2 OS cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347089qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for TC32 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347107qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Rh30 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347109qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for NB1643 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347112qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for BT-12 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347106qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for control Hh wild type fibroblast cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347114qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for DAOY cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347154Primary screen GU AMC qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347103qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for OHS-50 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347126qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for Rh30 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347111qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SK-N-MC cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347129qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for SK-N-SH cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347118qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for TC32 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347097qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for Saos-2 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347090qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Primary screen for DAOY cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347117qHTS of pediatric cancer cell lines to identify multiple opportunities for drug repurposing: Confirmatory screen for BT-37 cells2018Oncotarget, Jan-12, Volume: 9, Issue:4
Quantitative high-throughput phenotypic screening of pediatric cancer cell lines identifies multiple opportunities for drug repurposing.
AID1347155Optimization screen NINDS Rhodamine qHTS for Zika virus inhibitors: Linked NS2B-NS3 protease assay2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347169Tertiary RLuc qRT-PCR qHTS assay for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347167Vero cells viability qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347168HepG2 cells viability qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347149Furin counterscreen qHTS for Zika virus inhibitors2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID1347150Optimization screen NINDS AMC qHTS for Zika virus inhibitors: Linked NS2B-NS3 protease assay2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID325355Growth inhibition of Trypanosoma cruzi epimastigotes after 72 hrs by Alamar blue assay2007Antimicrobial agents and chemotherapy, May, Volume: 51, Issue:5
Artemisinins inhibit Trypanosoma cruzi and Trypanosoma brucei rhodesiense in vitro growth.
AID492118Safety index, ratio of arrhythmogenic concentration to minimum positive inotropic effective concentration causing myocardial contraction in guinea pig left atrial muscles2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID227718Binding energy by using the equation deltaG obsd = -RT ln KD1984Journal of medicinal chemistry, Dec, Volume: 27, Issue:12
Functional group contributions to drug-receptor interactions.
AID681606TP_TRANSPORTER: uptake in Xenopus laevis oocytes1996The Journal of pharmacology and experimental therapeutics, Mar, Volume: 276, Issue:3
Polyspecific drug and steroid clearance by an organic anion transporter of mammalian liver.
AID127349Binding affinity against human monoclonal antibody (mAb)-11E62002Journal of medicinal chemistry, Jul-18, Volume: 45, Issue:15
Three-dimensional quantitative structure-activity relationship analysis of ligand binding to human sequence antidigoxin monoclonal antibodies using comparative molecular field analysis.
AID977602Inhibition of sodium fluorescein uptake in OATP1B3-transfected CHO cells at an equimolar substrate-inhibitor concentration of 10 uM2013Molecular pharmacology, Jun, Volume: 83, Issue:6
Structure-based identification of OATP1B1/3 inhibitors.
AID750873Cytotoxicity against mouse B16F10 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID1157887Inhibition of Na+/K+-ATPase (unknown origin) by fluorescence assay2014Journal of natural products, Jun-27, Volume: 77, Issue:6
Suvanine sesterterpenes and deacyl irciniasulfonic acids from a tropical Coscinoderma sp. sponge.
AID590290Antifungal activity against Trichophyton rubrum IFO 9185 at 100 ug/ml after 2 weeks2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID492115Cardiotonic activity in guinea pig right ventricular muscles assessed as minimum positive inotropic effective concentration causing myocardial contraction2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID567091Drug absorption in human assessed as human intestinal absorption rate2011European journal of medicinal chemistry, Jan, Volume: 46, Issue:1
Prediction of drug intestinal absorption by new linear and non-linear QSPR.
AID590286Antifungal activity against Candida albicans ATCC 10231 at 100 ug/ml after 2 weeks2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID325356Growth inhibition of Trypanosoma brucei rhodesiense trypomastigotes after 72 hrs by Alamar blue assay2007Antimicrobial agents and chemotherapy, May, Volume: 51, Issue:5
Artemisinins inhibit Trypanosoma cruzi and Trypanosoma brucei rhodesiense in vitro growth.
AID357577Binding affinity to mouse Monoclonal antibody DIG 64.2B.5 by ELISA relative to digoxin
AID1455030Displacement of Tracer Red from human ERG expressed in cell membranes by fluorescence polarization assay2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID1135188Positive inotropic activity in cat heart papillary muscle assessed as increase in contractile force at 2 ug/mL measured for 5 to 30 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID1491085Inhibition of KCl-stimulated Na+/K+-ATPase in human placental membrane vesicles measured for 60 secs by 3-O-methylfluorescein phosphate dye based fluorometric method2017Journal of natural products, 05-26, Volume: 80, Issue:5
Manzamine Alkaloids from an Acanthostrongylophora sp. Sponge.
AID679491TP_TRANSPORTER: inhibition of Rocuronium uptake in Xenopus laevis oocytes2001The Journal of pharmacology and experimental therapeutics, Jul, Volume: 298, Issue:1
Comparison of "type I" and "type II" organic cation transport by organic cation transporters and organic anion-transporting polypeptides.
AID537735Binding affinity to Candida albicans CaMdr1p expressed in yeast AD1-8u2010European journal of medicinal chemistry, Nov, Volume: 45, Issue:11
Analysis of physico-chemical properties of substrates of ABC and MFS multidrug transporters of pathogenic Candida albicans.
AID681051TP_TRANSPORTER: inhibition of E1S uptake (E1S: 0.05 uM, Ouabain: 5 uM) in Xenopus laevis oocytes2001Molecular pharmacology, May, Volume: 59, Issue:5
Identification and characterization of human organic anion transporter 3 expressing predominantly in the kidney.
AID678788TP_TRANSPORTER: uptake in Xenopus laevis oocytes1997Proceedings of the National Academy of Sciences of the United States of America, Sep-16, Volume: 94, Issue:19
Isolation of a multispecific organic anion and cardiac glycoside transporter from rat brain.
AID336478Inhibition of COX2 at 100 uM by scintillation proximity assay2002Journal of natural products, Nov, Volume: 65, Issue:11
Screening of ubiquitous plant constituents for COX-2 inhibition with a scintillation proximity based assay.
AID537733Binding affinity to Candida albicans CaCdr1p expressed in yeast AD1-8u2010European journal of medicinal chemistry, Nov, Volume: 45, Issue:11
Analysis of physico-chemical properties of substrates of ABC and MFS multidrug transporters of pathogenic Candida albicans.
AID471510Cytotoxicity against human HT-29 cells assessed as survival index at 10 uM after 72 hrs by FMCA method2009Journal of natural products, Nov, Volume: 72, Issue:11
Cytotoxic effects of cardiac glycosides in colon cancer cells, alone and in combination with standard chemotherapeutic drugs.
AID657868Cytotoxicity against human MCF7 cells after 72 hrs by CellTiter-Glo assay2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID340329Inhibition of Na+/K+ ATPase2008Journal of medicinal chemistry, Jul-24, Volume: 51, Issue:14
Identification of a potent, selective, and orally active leukotriene a4 hydrolase inhibitor with anti-inflammatory activity.
AID24291The time required for onset of inotropy after addition of a single dose of delta F751982Journal of medicinal chemistry, Oct, Volume: 25, Issue:10
Cardenolide analogues. 14. Synthesis and biological activity of glucosides of C17 beta-modified derivatives of digitoxigenin.
AID397122Inhibition of HIV1 RT
AID699540Inhibition of human liver OATP1B3 expressed in HEK293 Flp-In cells assessed as reduction in [3H]E17-betaG uptake at 20 uM incubated for 5 mins by scintillation counting2012Journal of medicinal chemistry, May-24, Volume: 55, Issue:10
Classification of inhibitors of hepatic organic anion transporting polypeptides (OATPs): influence of protein expression on drug-drug interactions.
AID388320Inhibition of rat kidney Na(+)/K(+) ATPase assessed as enzyme activity at 1 mM after 2 hrs by Fiske and Subbarow method relative to control in presence of 1 mM cysteine2008Bioorganic & medicinal chemistry, Oct-01, Volume: 16, Issue:19
Insights into the mechanism of Na+,K+-ATPase inhibition by 2-methoxy-3,8,9-trihydroxy coumestan.
AID476929Human intestinal absorption in po dosed human2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Neural computational prediction of oral drug absorption based on CODES 2D descriptors.
AID1135209Positive inotropic activity in Beagle dog assessed as increase in left ventricular contractile force at 50 mg/kg, iv1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID1455006Inhibition of recombinant rat Na+/K+-ATPase alpha3/beta1 expressed in baculovirus infected insect Sf9 cell membranes using [gamma-32P]ATP as substrate preincubated for 20 mins followed by substrate addition measured after 30 mins by liquid scintillation c2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID697853Inhibition of horse BChE at 2 mg/ml by Ellman's method2012Bioorganic & medicinal chemistry, Nov-15, Volume: 20, Issue:22
Exploration of natural compounds as sources of new bifunctional scaffolds targeting cholinesterases and beta amyloid aggregation: the case of chelerythrine.
AID282344Inhibition of human AICAR Tfase2004Journal of medicinal chemistry, Dec-30, Volume: 47, Issue:27
Virtual screening of human 5-aminoimidazole-4-carboxamide ribonucleotide transformylase against the NCI diversity set by use of AutoDock to identify novel nonfolate inhibitors.
AID657869Cytotoxicity against human T47D cells after 72 hrs by CellTiter-Glo assay2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID750878Cytotoxicity against human PC3 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID590291Antifungal activity against Trichophyton mentagrophytes IFO 40996 at 100 ug/ml after 2 weeks2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID76484Binding to guinea pig atrial homogenate1980Journal of medicinal chemistry, May, Volume: 23, Issue:5
Accumulation of drugs by guinea pig isolated atria. Quantitative correlations.
AID680624TP_TRANSPORTER: inhibition of DNP-SG uptake (DNP-SG: 50 uM, Ouabain: 500 uM) in Xenopus laevis oocytes1998The Journal of biological chemistry, Jun-26, Volume: 273, Issue:26
Identification of glutathione as a driving force and leukotriene C4 as a substrate for oatp1, the hepatic sinusoidal organic solute transporter.
AID750879Cytotoxicity against human MCF7 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID537734Antifungal activity against yeast AD1-8u expressing Candida albicans CaMdr1p by agar disk diffusion assay2010European journal of medicinal chemistry, Nov, Volume: 45, Issue:11
Analysis of physico-chemical properties of substrates of ABC and MFS multidrug transporters of pathogenic Candida albicans.
AID127479Binding affinity against murine monoclonal antibody (mAb)-40-502002Journal of medicinal chemistry, Jul-18, Volume: 45, Issue:15
Three-dimensional quantitative structure-activity relationship analysis of ligand binding to human sequence antidigoxin monoclonal antibodies using comparative molecular field analysis.
AID471509Cytotoxicity against human HCT116 cells assessed as survival index at 10 uM after 72 hrs by FMCA method2009Journal of natural products, Nov, Volume: 72, Issue:11
Cytotoxic effects of cardiac glycosides in colon cancer cells, alone and in combination with standard chemotherapeutic drugs.
AID471508Cytotoxicity against human CC20 cells assessed as survival index at 10 uM after 72 hrs by FMCA method2009Journal of natural products, Nov, Volume: 72, Issue:11
Cytotoxic effects of cardiac glycosides in colon cancer cells, alone and in combination with standard chemotherapeutic drugs.
AID657871Cytotoxicity against human Hs578T cells after 72 hrs by CellTiter-Glo assay2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID1113018Nematicidal activity against second-stage juveniles of Meloidogyne incognita (root-knot nematode) after 1 hr by inverted microscopic analysis2013Journal of agricultural and food chemistry, Feb-27, Volume: 61, Issue:8
Potent nematicidal activity of phthalaldehyde, salicylaldehyde, and cinnamic aldehyde against Meloidogyne incognita.
AID679953TP_TRANSPORTER: uptake in Xenopus laevis oocytes1996Journal of hepatology, Nov, Volume: 25, Issue:5
Multispecific amphipathic substrate transport by an organic anion transporter of human liver.
AID590287Antifungal activity against Aspergillus fumigatus HIC 6094 at 100 ug/ml after 2 weeks2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID614150Inhibition of human Na(+)/K(+) ATPase assessed as reduction in ouabain-sensitive and K(+)-dependent cleavage of fluorescent pseudosubstrate 3-O-methylfluorescein phosphate by fluorometric method2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Sesterterpenes from the tropical sponge Coscinoderma sp.
AID1455007Inhibition of recombinant rat Na+/K+-ATPase alpha4/beta1 expressed in baculovirus infected insect Sf9 cell membranes using [gamma-32P]ATP as substrate preincubated for 10 mins followed by substrate addition measured after 30 mins in presence of Na+, K+ an2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID311367Permeability coefficient in human skin2007Bioorganic & medicinal chemistry, Nov-15, Volume: 15, Issue:22
Transdermal penetration behaviour of drugs: CART-clustering, QSPR and selection of model compounds.
AID492117Cardiotonic activity in guinea pig right ventricular muscles assessed as maximum positive inotropic effective concentration causing myocardial contraction relative to basal level2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID1135211Inhibition of guinea pig kidney Na+-K+ dependent ATPase after 10 to 20 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID657873Cytotoxicity against human Hs578T cells at 40 uM after 72 hrs by CellTiter-Glo assay relative to untreated control2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID335137DNA damaging activity against DNA repair-deficient Saccharomyces cerevisiae W303-1A RS188N mutant assessed as drug concentration required to produce 12 mm zone of inhibition up to 800 ug/well by agar diffusion assay1993Journal of natural products, Sep, Volume: 56, Issue:9
A screen for inhibitors of DNA recombination: identification of two new spirostanol glycosides from Chamaedorea linearis.
AID750880Cytotoxicity against human Hs683 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID681149TP_TRANSPORTER: uptake in Xenopus laevis oocytes2001Pflugers Archiv : European journal of physiology, Nov, Volume: 443, Issue:2
Localization of organic anion transporting polypeptide 4 (Oatp4) in rat liver and comparison of its substrate specificity with Oatp1, Oatp2 and Oatp3.
AID588967Substrates of transporters of clinical importance in the absorption and disposition of drugs, OATP1A22010Nature reviews. Drug discovery, Mar, Volume: 9, Issue:3
Membrane transporters in drug development.
AID1455005Inhibition of recombinant rat Na+/K+-ATPase alpha2/beta1 expressed in baculovirus infected insect Sf9 cell membranes using [gamma-32P]ATP as substrate preincubated for 20 mins followed by substrate addition measured after 30 mins by liquid scintillation c2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID657870Cytotoxicity against human SK-BR-3 cells after 72 hrs by CellTiter-Glo assay2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID524790Antiplasmodial activity against Plasmodium falciparum 3D7 after 72 hrs by SYBR green assay2009Nature chemical biology, Oct, Volume: 5, Issue:10
Genetic mapping of targets mediating differential chemical phenotypes in Plasmodium falciparum.
AID537736Antifungal activity against yeast AD1-8u expressing Candida albicans CaCdr1p by agar disk diffusion assay2010European journal of medicinal chemistry, Nov, Volume: 45, Issue:11
Analysis of physico-chemical properties of substrates of ABC and MFS multidrug transporters of pathogenic Candida albicans.
AID340945Cellular uptake in methicillin-sensitive Staphylococcus aureus ATCC 25923 phagocytized in human mdr1 siRNAs- induced MDR1 deficient human THP1 cells assessed as increase accumulation at 250 mg/liter after 24 hrs by Western blot analysis2007Antimicrobial agents and chemotherapy, Aug, Volume: 51, Issue:8
Modulation of the cellular accumulation and intracellular activity of daptomycin towards phagocytized Staphylococcus aureus by the P-glycoprotein (MDR1) efflux transporter in human THP-1 macrophages and madin-darby canine kidney cells.
AID681151TP_TRANSPORTER: uptake in Xenopus laevis oocytes2001Gastroenterology, Feb, Volume: 120, Issue:2
Organic anion-transporting polypeptide B (OATP-B) and its functional comparison with three other OATPs of human liver.
AID1135214Inhibition of calf heart Na+-K+ dependent ATPase preincubated for 30 mins measured after 10 to 20 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID681150TP_TRANSPORTER: uptake in Xenopus laevis oocytes2001Pflugers Archiv : European journal of physiology, Nov, Volume: 443, Issue:2
Localization of organic anion transporting polypeptide 4 (Oatp4) in rat liver and comparison of its substrate specificity with Oatp1, Oatp2 and Oatp3.
AID640586Inhibition of Na+/K+ ATPase2012Bioorganic & medicinal chemistry letters, Jan-15, Volume: 22, Issue:2
Bioactive lipids from the sponge Spirastrella abata.
AID1455008Inhibition of recombinant rat Na+/K+-ATPase alpha4/beta3 expressed in baculovirus infected Sf9 cell membranes using [gamma-32P]ATP as substrate preincubated for 20 mins followed by substrate addition measured after 30 mins by liquid scintillation counting2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID91480Ability to bind to human serum albumin (HSA)1980Journal of medicinal chemistry, May, Volume: 23, Issue:5
Accumulation of drugs by guinea pig isolated atria. Quantitative correlations.
AID717216Inhibition of Na+/K+-ATPase by fluorometric method2012Journal of natural products, Dec-28, Volume: 75, Issue:12
Brominated aromatic furanones and related esters from the ascidian Synoicum sp.
AID127352Binding affinity against human monoclonal antibody (mAb)-7F22002Journal of medicinal chemistry, Jul-18, Volume: 45, Issue:15
Three-dimensional quantitative structure-activity relationship analysis of ligand binding to human sequence antidigoxin monoclonal antibodies using comparative molecular field analysis.
AID682135TP_TRANSPORTER: uptake in Oatp1-expressing CHO-03 cell1999The American journal of physiology, 04, Volume: 276, Issue:4
Polyspecific substrate uptake by the hepatic organic anion transporter Oatp1 in stably transfected CHO cells.
AID1135213Inhibition of calf heart Na+-K+ dependent ATPase after 10 to 20 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID977599Inhibition of sodium fluorescein uptake in OATP1B1-transfected CHO cells at an equimolar substrate-inhibitor concentration of 10 uM2013Molecular pharmacology, Jun, Volume: 83, Issue:6
Structure-based identification of OATP1B1/3 inhibitors.
AID1227977Inhibition of porcine cerebral cortex Na+/K+ ATPase incubated at 37 degC for 30 mins using 3-O-methylfluorescein phosphate and creatinine phosphate by fluorometry2015Journal of natural products, Apr-24, Volume: 78, Issue:4
Salternamides A-D from a Halophilic Streptomyces sp. Actinobacterium.
AID325357Growth inhibition of Leishmania donovani promastigotes after 72 hrs by Alamar blue assay2007Antimicrobial agents and chemotherapy, May, Volume: 51, Issue:5
Artemisinins inhibit Trypanosoma cruzi and Trypanosoma brucei rhodesiense in vitro growth.
AID709979Inhibition of rabbit kidney Na+/K+ ATPase hydrolytic activity assessed as inorganic phosphate production at 10 uM by malachite green staining-based colorimetric assay2012Journal of medicinal chemistry, Dec-13, Volume: 55, Issue:23
Mimicking the intramolecular hydrogen bond: synthesis, biological evaluation, and molecular modeling of benzoxazines and quinazolines as potential antimalarial agents.
AID680456TP_TRANSPORTER: inhibition of LTC4 uptake (LTC4: 0.01uM, Ouabain: 500 uM) in Xenopus laevis oocytes1998The Journal of biological chemistry, Jun-26, Volume: 273, Issue:26
Identification of glutathione as a driving force and leukotriene C4 as a substrate for oatp1, the hepatic sinusoidal organic solute transporter.
AID750875Cytotoxicity against human SK-MEL-28 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID1145690Inhibition of rat brain sodium/potassium-transporting ATPase in presence of Mg2+ and Na+1977Journal of medicinal chemistry, Jun, Volume: 20, Issue:6
Cardenolide analogues. 2. 22-Methylenecard-14-enolides.
AID750874Cytotoxicity against mouse CT26.WT cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID507145Cytotoxicity against human HeLa cells assessed as inhibition of DNA replication by imaging analysis2008Nature chemical biology, Jan, Volume: 4, Issue:1
Integrating high-content screening and ligand-target prediction to identify mechanism of action.
AID1145691Inhibition of rat brain sodium/potassium-transporting ATPase after 10 mins in presence of Mg2+ and Na+1977Journal of medicinal chemistry, Jun, Volume: 20, Issue:6
Cardenolide analogues. 2. 22-Methylenecard-14-enolides.
AID1135192Positive inotropic activity in cat heart papillary muscle assessed as increase in contractile force at 1 ug/mL measured for 5 to 30 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID681136TP_TRANSPORTER: inhibition of Taurocholate uptake in OAT-K2-expressing MDCK cells1999Molecular pharmacology, Apr, Volume: 55, Issue:4
Cloning and functional characterization of a new multispecific organic anion transporter, OAT-K2, in rat kidney.
AID590280Inhibition of porcine cerebral cortex Na+/K+ ATPase by spectrophotometry2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID1137820Effect on lovastatin-induced cell cycle arrest in HFF infected with HCMV assessed as accumulation at G0/1 phase treated for 24 hrs after incubation with early G1 inhibitor lovastatin for 48 hrs by propidium iodide staining based flow cytometry2014ACS medicinal chemistry letters, Apr-10, Volume: 5, Issue:4
Digitoxin analogues with improved anticytomegalovirus activity.
AID492114Cardiotonic activity in guinea pig left atrial muscles assessed as minimum positive inotropic effective concentration causing myocardial contraction2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID1455037Selectivity ratio of IC50 for recombinant rat Na+/K+-ATPase alpha1/beta1 expressed in baculovirus infected insect Sf9 cell membranes to IC50 for recombinant rat Na+/K+-ATPase alpha4/beta3 expressed in baculovirus infected Sf9 cell membranes2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID699541Inhibition of human liver OATP2B1 expressed in HEK293 Flp-In cells assessed as reduction in [3H]E3S uptake at 20 uM incubated for 5 mins by scintillation counting2012Journal of medicinal chemistry, May-24, Volume: 55, Issue:10
Classification of inhibitors of hepatic organic anion transporting polypeptides (OATPs): influence of protein expression on drug-drug interactions.
AID507146Inhibition of mitosis in human HeLa cells by imaging analysis2008Nature chemical biology, Jan, Volume: 4, Issue:1
Integrating high-content screening and ligand-target prediction to identify mechanism of action.
AID388322Inhibition of rat kidney Na(+)/K(+) ATPase assessed as enzyme activity at 1 mM after 2 hrs by Fiske and Subbarow method relative to control in presence of 500 uM beta mercaptoethanol2008Bioorganic & medicinal chemistry, Oct-01, Volume: 16, Issue:19
Insights into the mechanism of Na+,K+-ATPase inhibition by 2-methoxy-3,8,9-trihydroxy coumestan.
AID681427TP_TRANSPORTER: inhibition of E1S uptake (E1S: 40 uM, Ouabain: 1000 uM) in Xenopus laevis oocytes1999The Journal of biological chemistry, May-07, Volume: 274, Issue:19
Molecular cloning and characterization of a new multispecific organic anion transporter from rat brain.
AID492119Safety index, ratio of arrhythmogenic concentration to minimum positive inotropic effective concentration causing myocardial contraction in guinea pig right ventricular muscles2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID697852Inhibition of electric eel AChE at 2 mg/ml by Ellman's method2012Bioorganic & medicinal chemistry, Nov-15, Volume: 20, Issue:22
Exploration of natural compounds as sources of new bifunctional scaffolds targeting cholinesterases and beta amyloid aggregation: the case of chelerythrine.
AID670282Inhibition of porcine cerebral cortex Na+/K+ ATPase assessed as formation of fluorescent 3-O-methylfluorescein from 3-O-methylfluorescein phosphate by fluorometry2012Bioorganic & medicinal chemistry, Jul-01, Volume: 20, Issue:13
Beta-carboline alkaloids derived from the ascidian Synoicum sp.
AID426224Inhibition of pig cerebral cortex Na+/K+ ATPase at 1 mM by colorimetric microplate-based assay2009Journal of natural products, Jun, Volume: 72, Issue:6
Cardenolides from Pergularia tomentosa display cytotoxic activity resulting from their potent inhibition of Na+/K+-ATPase.
AID1266807Inhibition of Na+/K+ -ATPase in human intrauterine growth restriction placental membrane using 3-O-methylfluorescein phosphate by fluorometric method in presence of Kcl2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Meroterpenoids from a Tropical Dysidea sp. Sponge.
AID1157888Inhibition of sortase A (unknown origin)2014Journal of natural products, Jun-27, Volume: 77, Issue:6
Suvanine sesterterpenes and deacyl irciniasulfonic acids from a tropical Coscinoderma sp. sponge.
AID678824TP_TRANSPORTER: uptake in Xenopus laevis oocytes2001Gastroenterology, Feb, Volume: 120, Issue:2
Organic anion-transporting polypeptide B (OATP-B) and its functional comparison with three other OATPs of human liver.
AID681592TP_TRANSPORTER: uptake in Xenopus laevis oocytes2000The Biochemical journal, Jan-01, Volume: 345 Pt 1Molecular cloning and functional characterization of the mouse organic-anion-transporting polypeptide 1 (Oatp1) and mapping of the gene to chromosome X.
AID679306TP_TRANSPORTER: cell accumulation in OATP4C1-expressing MDCK cells2004Proceedings of the National Academy of Sciences of the United States of America, Mar-09, Volume: 101, Issue:10
Isolation and characterization of a digoxin transporter and its rat homologue expressed in the kidney.
AID388325Inhibition of rat kidney Na(+)/K(+) ATPase at 1 mM after 2 hrs by Fiske and Subbarow method in presence of DTT2008Bioorganic & medicinal chemistry, Oct-01, Volume: 16, Issue:19
Insights into the mechanism of Na+,K+-ATPase inhibition by 2-methoxy-3,8,9-trihydroxy coumestan.
AID1137816Cell cycle arrest in HFF infected with HCMV assessed as accumulation at G0/1 phase after 24 hrs by propidium iodide staining based flow cytometry2014ACS medicinal chemistry letters, Apr-10, Volume: 5, Issue:4
Digitoxin analogues with improved anticytomegalovirus activity.
AID681135TP_TRANSPORTER: uptake in OATP-F-expressing CHO cells2002Molecular endocrinology (Baltimore, Md.), Oct, Volume: 16, Issue:10
Identification of a novel human organic anion transporting polypeptide as a high affinity thyroxine transporter.
AID1135191Positive inotropic activity in cat heart papillary muscle assessed as increase in contractile force at 0.5 ug/mL measured for 5 to 30 mins1978Journal of medicinal chemistry, Dec, Volume: 21, Issue:12
Trichloroacetamidines, a new class of positive inotropic agents.
AID750877Cytotoxicity against human A549 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID1225334Inhibition of porcine cerebral cortex Na+/K+ ATPase using 3-O-methylfluorescein phosphate and creatinine phosphate incubated for 30 mins by spectrophotometry2015Journal of natural products, Mar-27, Volume: 78, Issue:3
Alkaloidal metabolites from a marine-derived Aspergillus sp. fungus.
AID127350Binding affinity against human monoclonal antibody (mAb)-1B32002Journal of medicinal chemistry, Jul-18, Volume: 45, Issue:15
Three-dimensional quantitative structure-activity relationship analysis of ligand binding to human sequence antidigoxin monoclonal antibodies using comparative molecular field analysis.
AID524791Antiplasmodial activity against Plasmodium falciparum 7G8 after 72 hrs by SYBR green assay2009Nature chemical biology, Oct, Volume: 5, Issue:10
Genetic mapping of targets mediating differential chemical phenotypes in Plasmodium falciparum.
AID681595TP_TRANSPORTER: uptake in Xenopus laevis oocytes2002Biochimica et biophysica acta, Aug-19, Volume: 1564, Issue:1
Functional characterization of the mouse organic-anion-transporting polypeptide 2.
AID750876Cytotoxicity against human U373 cells after 3 days by MTT assay2013Journal of natural products, Jun-28, Volume: 76, Issue:6
Structure-activity relationship analysis of bufadienolide-induced in vitro growth inhibitory effects on mouse and human cancer cells.
AID1113017Nematicidal activity against second-stage juveniles of Meloidogyne incognita (root-knot nematode) after 1 day by inverted microscopic analysis2013Journal of agricultural and food chemistry, Feb-27, Volume: 61, Issue:8
Potent nematicidal activity of phthalaldehyde, salicylaldehyde, and cinnamic aldehyde against Meloidogyne incognita.
AID388326Inhibition of rat kidney Na(+)/K(+) ATPase assessed as enzyme activity at 1 mM after 2 hrs by Fiske and Subbarow method relative to control2008Bioorganic & medicinal chemistry, Oct-01, Volume: 16, Issue:19
Insights into the mechanism of Na+,K+-ATPase inhibition by 2-methoxy-3,8,9-trihydroxy coumestan.
AID399276Inhibition of Na+K+ATpase from pig cortex
AID521220Inhibition of neurosphere proliferation of mouse neural precursor cells by MTT assay2007Nature chemical biology, May, Volume: 3, Issue:5
Chemical genetics reveals a complex functional ground state of neural stem cells.
AID1455038Selectivity ratio of IC50 for human Na+/K+-ATPase alpha1 to IC50 for human Na+/K+-ATPase alpha42018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID23672Partition coefficient (logP)1980Journal of medicinal chemistry, May, Volume: 23, Issue:5
Accumulation of drugs by guinea pig isolated atria. Quantitative correlations.
AID24290The time required for offset of inotropy after addition of a single dose of delta F751982Journal of medicinal chemistry, Oct, Volume: 25, Issue:10
Cardenolide analogues. 14. Synthesis and biological activity of glucosides of C17 beta-modified derivatives of digitoxigenin.
AID657874Cytotoxicity against human Hs578Bst cells at 40 uM after 72 hrs by CellTiter-Glo assay relative to untreated control2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID657872Cytotoxicity against human Hs578Bst cells after 72 hrs by CellTiter-Glo assay2012Journal of natural products, Mar-23, Volume: 75, Issue:3
Cytotoxic cardiac glycosides and other compounds from Asclepias syriaca.
AID127351Binding affinity against human monoclonal antibody (mAb)-5C22002Journal of medicinal chemistry, Jul-18, Volume: 45, Issue:15
Three-dimensional quantitative structure-activity relationship analysis of ligand binding to human sequence antidigoxin monoclonal antibodies using comparative molecular field analysis.
AID761691Inhibition of Na+/K+ ATPase (unknown origin)2013Journal of natural products, Jul-26, Volume: 76, Issue:7
Gombamide A, a cyclic thiopeptide from the sponge Clathria gombawuiensis.
AID592681Apparent permeability across human Caco2 cell membrane after 2 hrs by LC-MS/MS analysis2011Bioorganic & medicinal chemistry, Apr-15, Volume: 19, Issue:8
QSAR-based permeability model for drug-like compounds.
AID80737The dose producing 75% increase in contractility in guinea pig arteria1982Journal of medicinal chemistry, Oct, Volume: 25, Issue:10
Cardenolide analogues. 14. Synthesis and biological activity of glucosides of C17 beta-modified derivatives of digitoxigenin.
AID590281Inhibition of Candida albicans ICL assessed as formation of glyoxylate phenylhydrazone by spectrophotometry2011Bioorganic & medicinal chemistry letters, Apr-01, Volume: 21, Issue:7
Sargachromanols as inhibitors of Na+/K+ ATPase and isocitrate lyase.
AID1449628Inhibition of human BSEP expressed in baculovirus transfected fall armyworm Sf21 cell membranes vesicles assessed as reduction in ATP-dependent [3H]-taurocholate transport into vesicles incubated for 5 mins by Topcount based rapid filtration method2012Drug metabolism and disposition: the biological fate of chemicals, Dec, Volume: 40, Issue:12
Mitigating the inhibition of human bile salt export pump by drugs: opportunities provided by physicochemical property modulation, in silico modeling, and structural modification.
AID1455003Inhibition of recombinant rat Na+/K+-ATPase alpha1/beta1 expressed in baculovirus infected insect Sf9 cell membranes using [gamma-32P]ATP as substrate preincubated for 20 mins followed by substrate addition measured after 30 mins by liquid scintillation c2018Journal of medicinal chemistry, 03-08, Volume: 61, Issue:5
Design, Synthesis, and in Vitro and in Vivo Evaluation of Ouabain Analogues as Potent and Selective Na,K-ATPase α4 Isoform Inhibitors for Male Contraception.
AID1137819Effect on mimosine-induced cell cycle arrest in HFF infected with HCMV assessed as accumulation at G0/1 phase treated for 1 day after incubation with mid-G1 inhibitor mimosine for 48 hrs by propidium iodide staining based flow cytometry2014ACS medicinal chemistry letters, Apr-10, Volume: 5, Issue:4
Digitoxin analogues with improved anticytomegalovirus activity.
AID492116Cardiotonic activity in guinea pig left atrial muscles assessed as maximum positive inotropic effective concentration causing myocardial contraction relative to basal level2010Journal of natural products, Jul-23, Volume: 73, Issue:7
Cardiac glycosides from Antiaris toxicaria with potent cardiotonic activity.
AID773797Inhibition of Na(+)/K(+) ATPase in pig cerebral cortex assessed as release of inorganic phosphate after 15 mins by colorimetric method2013Journal of natural products, Oct-25, Volume: 76, Issue:10
C23 steroids from the venom of Bufo bufo gargarizans.
AID699539Inhibition of human liver OATP1B1 expressed in HEK293 Flp-In cells assessed as reduction in E17-betaG uptake at 20 uM by scintillation counting2012Journal of medicinal chemistry, May-24, Volume: 55, Issue:10
Classification of inhibitors of hepatic organic anion transporting polypeptides (OATPs): influence of protein expression on drug-drug interactions.
AID1347415qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: tertiary screen by RT-qPCR2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1347414qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: Secondary screen by immunofluorescence2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID1159550Human Phosphogluconate dehydrogenase (6PGD) Inhibitor Screening2015Nature cell biology, Nov, Volume: 17, Issue:11
6-Phosphogluconate dehydrogenase links oxidative PPP, lipogenesis and tumour growth by inhibiting LKB1-AMPK signalling.
AID977611Experimentally measured binding affinity data (Kd) for protein-ligand complexes derived from PDB2009Proceedings of the National Academy of Sciences of the United States of America, Aug-18, Volume: 106, Issue:33
Crystal structure of the sodium-potassium pump (Na+,K+-ATPase) with bound potassium and ouabain.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).2014Journal of biomolecular screening, Jul, Volume: 19, Issue:6
A High-Throughput Assay to Identify Inhibitors of the Apicoplast DNA Polymerase from Plasmodium falciparum.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).
AID1804171DRC analysis by immunofluorescence from Article 10.1128/AAC.00819-20: \\Identification of Antiviral Drug Candidates against SARS-CoV-2 from FDA-Approved Drugs.\\2020Antimicrobial agents and chemotherapy, 06-23, Volume: 64, Issue:7
Identification of Antiviral Drug Candidates against SARS-CoV-2 from FDA-Approved Drugs.
AID1802889Na,K-ATPase Inhibition Assay from Article 10.1074/jbc.M114.557629: \\Digoxin derivatives with enhanced selectivity for the a2 isoform of Na,K-ATPase: effects on intraocular pressure in rabbits.\\2014The Journal of biological chemistry, Jul-25, Volume: 289, Issue:30
Digoxin derivatives with enhanced selectivity for the α2 isoform of Na,K-ATPase: effects on intraocular pressure in rabbits.
AID977610Experimentally measured binding affinity data (Ki) for protein-ligand complexes derived from PDB1995Journal of molecular biology, Apr-28, Volume: 248, Issue:2
Structure and specificity of the anti-digoxin antibody 40-50.
AID1224864HCS microscopy assay (F508del-CFTR)2016PloS one, , Volume: 11, Issue:10
Increasing the Endoplasmic Reticulum Pool of the F508del Allele of the Cystic Fibrosis Transmembrane Conductance Regulator Leads to Greater Folding Correction by Small Molecule Therapeutics.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (15,740)

TimeframeStudies, This Drug (%)All Drugs %
pre-199010432 (66.28)18.7374
1990's3034 (19.28)18.2507
2000's1398 (8.88)29.6817
2010's772 (4.90)24.3611
2020's104 (0.66)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 49.46

According to the monthly volume, diversity, and competition of internet searches for this compound, as well the volume and growth of publications, there is estimated to be strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index49.46 (24.57)
Research Supply Index1.79 (2.92)
Research Growth Index4.32 (4.65)
Search Engine Demand Index108.53 (26.88)
Search Engine Supply Index3.04 (0.95)

This Compound (49.46)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials0 (0.00%)5.53%
Trials72 (0.44%)5.53%
Reviews0 (0.00%)6.00%
Reviews420 (2.57%)6.00%
Case Studies0 (0.00%)4.05%
Case Studies18 (0.11%)4.05%
Observational0 (0.00%)0.25%
Observational1 (0.01%)0.25%
Other5 (100.00%)84.16%
Other15,846 (96.88%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]