Page last updated: 2024-12-05

proxyphylline

Description Research Excerpts Clinical Trials Roles Classes Pathways Study Profile Bioassays Related Drugs Related Conditions Protein Interactions Research Growth Market Indicators

Proxyphylline is a synthetic xanthine derivative with bronchodilator and anti-inflammatory properties. It is a phosphodiesterase inhibitor, which means it blocks the breakdown of cyclic adenosine monophosphate (cAMP), a messenger molecule that relaxes smooth muscles in the airways. Proxyphylline is used to treat asthma and other respiratory conditions. The synthesis of proxyphylline typically involves a multi-step process starting with theophylline, a naturally occurring xanthine. Proxyphylline has been studied extensively for its potential therapeutic benefits in treating respiratory diseases. Researchers have investigated its efficacy in various conditions, including asthma, chronic obstructive pulmonary disease (COPD), and acute bronchitis. The compound's effects on airway inflammation, bronchodilation, and mucus secretion have been the focus of numerous studies. However, concerns about its potential side effects, such as gastrointestinal upset and insomnia, have limited its widespread use in clinical practice. Despite these limitations, proxyphylline continues to be of interest in research for its potential benefits in treating respiratory diseases.'

Cross-References

ID SourceID
PubMed CID4977
CHEMBL ID37390
CHEBI ID32070
SCHEMBL ID35569
MeSH IDM0044223

Synonyms (131)

Synonym
BRD-A28887267-001-03-7
1h-purine-2,6-dione, 3,7-dihydro-7-(2-hydroxypropyl)-1,3-dimethyl-
PRESTWICK3_000890
MLS000069521 ,
7-(2-hydroxypropyl)-1,3-dimethyl-3,7-dihydro-1h-purine-2,6-dione
cas-603-00-9
NCGC00016521-01
PDSP1_001132
NCGC00179479-01
BSPBIO_000680
PDSP2_001116
BPBIO1_000748
AB00513948
1h-purine-2, 3,7-dihydro-1,3-dimethyl-7-(2-hydroxypropyl)-
monophylline
7-(.beta.-hydroxypropyl)-1,3-dimethylxanthine
nsc-163343
theophylline, 7-(2-hydroxypropyl)-
proxyphylline
7-(.beta.-hydroxypropyl)theophylline
purophyllin
proxiphylline
2-hydroxypropyl-7-theophylline
spasmolysin
theoden
1h-purine-2, 3,7-dihydro-7-(2-hydroxypropyl)-1,3-dimethyl-
brontyl
oxypropyltheophylline
theon
nsc163343
603-00-9
proxy-retardoral
.beta.-hydroxypropyltheophylline
sigophyl
thean
sanwaphyllin
7-(2-hydroxypropyl)theophylline
hydroxypropyltheophylline
3,3-dimethyl-1h-purine-2,6-dione
1,3-dimethyl-7-(2-hydroxypropyl)xanthine
proxyphylline (jan/inn)
monophyllin (tn)
D01771
proxifilina [inn-spanish]
einecs 210-028-7
proxyphyllinum [inn-latin]
proxyphylline [inn:ban:jan]
7-(beta-hydroxypropyl)theophylline
1h-purine-2,6-dione, 3,7-dihydro-1,3-dimethyl-7-(2-hydroxypropyl)-
beta-oxypropyltheophyllin
7-(beta-hydroxypropyl)-1,3-dimethylxanthine
proxiphyllinum
3,7-dihydro-7-(2-hydroxypropyl)-1,3-dimethyl-1h-purine-2,6-dione
nsc 163343
smr000058629
1,3-dimethyl-7-(2-hydroxypropyl)-2,6-dioxopurine
SPBIO_002899
PRESTWICK1_000890
PRESTWICK0_000890
PRESTWICK2_000890
CHEMBL37390 ,
HMS1570B22
7-(2-hydroxypropyl)-1,3-dimethylpurine-2,6-dione
proxyfylline
7-(2-hydroxy-propyl)-1,3-dimethyl-3,7-dihydro-purine-2,6-dione(proxyphylline)
bdbm50028190
7-(2-hydroxy-propyl)-1,3-dimethyl-3,7-dihydro-purine-2,6-dione
NCGC00018121-03
NCGC00018121-02
HMS2097B22
nsc-759279
pharmakon1600-01505915
nsc759279
tox21_110471
dtxsid5023536 ,
dtxcid603536
HMS2233E08
AKOS015967318
proxylphylline
13g1dmn4p0 ,
proxyphyllinum
unii-13g1dmn4p0
proxifilina
FT-0603485
S4932
HMS3371A07
(+/-)-proxyphyllin
7-.beta.-hydroxypropyl theophylline
r03da03
spantin
86480-51-5
proxyphylline [jan]
proxyphylline [mart.]
diprophylline impurity d [ep impurity]
proxyphylline [inn]
proxyphylline [mi]
monophyllin
7 beta-hydroxypropyl theophylline
proxyphylline [ep monograph]
proxyphylline [who-dd]
CCG-213993
7-(2-hydroxypropyl)-1,3-dimethyl-1h-purine-2,6(3h,7h)-dione
SCHEMBL35569
tox21_110471_1
NCGC00018121-07
H1430
W-105265
CS-7727
7-(2-hydroxypropyl)-1,3-dimethyl-3,7-dihydro-1h-purine-2,6-dione #
KYHQZNGJUGFTGR-UHFFFAOYSA-N
7-(2-hydroxypropyl)-1,3-dimethylxanthine
OPERA_ID_1170
AB00384297_13
mfcd00022833
SR-01000003009-2
sr-01000003009
proxyphylline, european pharmacopoeia (ep) reference standard
proxyphylline; 7-[(2rs)-2-hydroxypropyl]-1,3-dimethyl-3,7-dihydro-1h-purine-2,6-dione; diprophylline imp. d (ep); diprophylline impurity d
CHEBI:32070
SBI-0207057.P001
7-(b-hydroxypropyl)theophylline
HY-B1742
DB13449
AS-11774
Q7252904
HMS3886C07
AMY31757
proxyphylline; monophylline, spasmolysin
H10429
A914517
7-(?-hydroxypropyl)theophylline

Research Excerpts

Pharmacokinetics

ExcerptReferenceRelevance
" The pharmacokinetic parameters of the two drugs were estimated by model-independent methods."( Pharmacokinetic characteristics of N7-substituted theophylline derivatives and their interaction with quinolone in rats.
Apichartpichean, R; Hasegawa, T; Muraoka, I; Nabeshima, T; Nadai, M; Takagi, K, 1991
)
0.28
" A two-compartment open model was found to describe the decline in the serum concentrations, giving a mean distribution half-life of 6 min."( Pharmacokinetics of proxyphylline in adults after intravenous and oral administration.
Selvig, K, 1981
)
0.59

Bioavailability

ExcerptReferenceRelevance
"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

ExcerptRelevanceReference
" Hence it might not be always necessary to take into consideration changes in the surface area as a function of dissolution rate, and the 1n W infinity/(W infinity) versus time plot devised by Kitazawa & others might be a useful and simple means of obtaining the dissolution rate constant of an active ingredient from a dosage form such as compressed tablet."( Interpretation of dissolution rate data from in vitro testing of compressed tablets.
Johno, I; Kitazawa, S; Minouchi, T; Okada, J, 1977
)
0.26
"The bronchospasmolytic action of proxyphylline given intravenously in a dosage of 16 mg/kg body weight was assessed by spirometry and bodyplethysmography in 12 patients with chronic obstructive pulmonary disease."( [Effectiveness of proxyphylline in chronic obstructive pulmonary disease (author's transl)].
Förster, OB; Geisler, LS; Rohner, HG; Thiel, H, 1980
)
0.88
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Drug Classes (1)

ClassDescription
oxopurine
[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 (13)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, Beta-lactamaseEscherichia coli K-12Potency100.00000.044717.8581100.0000AID485294
RAR-related orphan receptor gammaMus musculus (house mouse)Potency0.42160.006038.004119,952.5996AID1159521
GLI family zinc finger 3Homo sapiens (human)Potency30.73370.000714.592883.7951AID1259369; AID1259392
retinoic acid nuclear receptor alpha variant 1Homo sapiens (human)Potency0.00070.003041.611522,387.1992AID1159552
chromobox protein homolog 1Homo sapiens (human)Potency79.43280.006026.168889.1251AID540317
DNA polymerase iota isoform a (long)Homo sapiens (human)Potency39.81070.050127.073689.1251AID588590
gemininHomo sapiens (human)Potency0.09200.004611.374133.4983AID624296
survival motor neuron protein isoform dHomo sapiens (human)Potency1.00000.125912.234435.4813AID1458
lamin isoform A-delta10Homo sapiens (human)Potency2.51190.891312.067628.1838AID1487
[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)
cGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)Ki600.00001.00001.90002.8000AID220158
cGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)Ki600.00000.00071.07978.5000AID220157
cGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)Ki1,000.00000.00500.33811.4000AID219848
cGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)Ki1,000.00000.00500.32091.4000AID219848
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (48)

Processvia Protein(s)Taxonomy
heart valve developmentcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
ventricular septum developmentcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
aorta developmentcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of transcription by RNA polymerase IIcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled receptor signaling pathwaycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
regulation of cGMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cAMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to macrophage colony-stimulating factor stimuluscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of vascular permeabilitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
positive regulation of vascular permeabilitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
regulation of cAMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP catabolic processcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
positive regulation of inflammatory responsecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
establishment of endothelial barriercGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to mechanical stimuluscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to cAMPcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to cGMPcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to transforming growth factor beta stimuluscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of adenylate cyclase-activating G protein-coupled receptor signaling pathwaycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular response to 2,3,7,8-tetrachlorodibenzodioxinecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
positive regulation of gene expressioncGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of cGMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of cAMP-mediated signalingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
regulation of mitochondrion organizationcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
positive regulation of cardiac muscle hypertrophycGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
regulation of nitric oxide mediated signal transductioncGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
T cell proliferationcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of T cell proliferationcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP catabolic processcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
oocyte developmentcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
negative regulation of cardiac muscle contractioncGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
relaxation of cardiac musclecGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
positive regulation of oocyte developmentcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cAMP-mediated signalingcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
angiogenesiscGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
negative regulation of cell adhesioncGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
G protein-coupled receptor signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
negative regulation of angiogenesiscGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
cellular response to insulin stimuluscGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
negative regulation of cell adhesion mediated by integrincGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
negative regulation of lipid catabolic processcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
negative regulation of adenylate cyclase-activating G protein-coupled receptor signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
cAMP-mediated signalingcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
oocyte maturationcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
lipid metabolic processcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
G protein-coupled receptor signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
response to xenobiotic stimuluscGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cAMP-mediated signalingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cGMP-mediated signalingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
regulation of meiotic nuclear divisioncGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
negative regulation of apoptotic processcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
negative regulation of vascular permeabilitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
positive regulation of vascular permeabilitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
steroid hormone mediated signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
negative regulation of cAMP-mediated signalingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
positive regulation of oocyte developmentcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
regulation of ribonuclease activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cellular response to cGMPcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cellular response to transforming growth factor beta stimuluscGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
apoptotic signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
negative regulation of adenylate cyclase-activating G protein-coupled receptor signaling pathwaycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (17)

Processvia Protein(s)Taxonomy
magnesium ion bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-AMP phosphodiesterase activitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP-stimulated cyclic-nucleotide phosphodiesterase activitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
protein bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
zinc ion bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cAMP bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
TPR domain bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
phosphate ion bindingcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
protein homodimerization activitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-GMP phosphodiesterase activitycGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-nucleotide phosphodiesterase activitycGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
protein bindingcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cGMP bindingcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
metal ion bindingcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-GMP phosphodiesterase activitycGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-AMP phosphodiesterase activitycGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
3',5'-cyclic-nucleotide phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
3',5'-cyclic-AMP phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
cGMP-inhibited cyclic-nucleotide phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
protein bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
protein kinase B bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
metal ion bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
3',5'-cyclic-GMP phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
3',5'-cyclic-nucleotide phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
3',5'-cyclic-AMP phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cGMP-inhibited cyclic-nucleotide phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
protein bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
nuclear estrogen receptor activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
metal ion bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
3',5'-cyclic-GMP phosphodiesterase activitycGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
estrogen bindingcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (15)

Processvia Protein(s)Taxonomy
plasma membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
nucleuscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cytoplasmcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
mitochondrial outer membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
mitochondrial inner membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
endoplasmic reticulumcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
Golgi apparatuscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cytosolcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
plasma membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
presynaptic membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
perinuclear region of cytoplasmcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
nucleuscGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
mitochondrial inner membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
perinuclear region of cytoplasmcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
mitochondrial outer membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
synaptic membranecGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cytosolcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
mitochondrial matrixcGMP-dependent 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cellular_componentcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
cytosolcGMP-specific 3',5'-cyclic phosphodiesteraseHomo sapiens (human)
endoplasmic reticulumcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
Golgi apparatuscGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
cytosolcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
membranecGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
guanyl-nucleotide exchange factor complexcGMP-inhibited 3',5'-cyclic phosphodiesterase BHomo sapiens (human)
cytosolcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
membranecGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
cytosolcGMP-inhibited 3',5'-cyclic phosphodiesterase AHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (63)

Assay IDTitleYearJournalArticle
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.
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.
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
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.
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.
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.
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.
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.
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.
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.
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.
AID1745845Primary qHTS for Inhibitors of ATXN expression
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
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.
AID219847Inhibition of human lung high-affinity cAMP phosphodiesterases (0.5-2 uM/L)1983Journal of medicinal chemistry, Oct, Volume: 26, Issue:10
Optical resolution, absolute configuration, and activity of the enantiomers of proxyphylline.
AID220158Inhibition of human lung low-affinity cGMP phosphodiesterases (10-50 uM/L)1983Journal of medicinal chemistry, Oct, Volume: 26, Issue:10
Optical resolution, absolute configuration, and activity of the enantiomers of proxyphylline.
AID156500Calcium release in PC12 cells at 2 mM as percent of 1 mM caffeine effect1999Journal of medicinal chemistry, Jul-15, Volume: 42, Issue:14
Potentiation of cADPR-induced Ca(2+)-release by methylxanthine analogues.
AID588220Literature-mined public compounds from Kruhlak et al phospholipidosis modelling dataset2008Toxicology mechanisms and methods, , Volume: 18, Issue:2-3
Development of a phospholipidosis database and predictive quantitative structure-activity relationship (QSAR) models.
AID219848Inhibition of human lung low-affinity cAMP phosphodiesterases (10-50 uM/L)1983Journal of medicinal chemistry, Oct, Volume: 26, Issue:10
Optical resolution, absolute configuration, and activity of the enantiomers of proxyphylline.
AID220157Inhibition of human lung high-affinity cGMP phosphodiesterases (0.5-2 uM/L)1983Journal of medicinal chemistry, Oct, Volume: 26, Issue:10
Optical resolution, absolute configuration, and activity of the enantiomers of proxyphylline.
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.
AID540299A screen for compounds that inhibit the MenB enzyme of Mycobacterium tuberculosis2010Bioorganic & medicinal chemistry letters, Nov-01, Volume: 20, Issue:21
Synthesis and SAR studies of 1,4-benzoxazine MenB inhibitors: novel antibacterial agents against Mycobacterium tuberculosis.
AID588519A screen for compounds that inhibit viral RNA polymerase binding and polymerization activities2011Antiviral research, Sep, Volume: 91, Issue:3
High-throughput screening identification of poliovirus RNA-dependent RNA polymerase 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.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (69)

TimeframeStudies, This Drug (%)All Drugs %
pre-199025 (36.23)18.7374
1990's13 (18.84)18.2507
2000's7 (10.14)29.6817
2010's16 (23.19)24.3611
2020's8 (11.59)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 27.38

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 moderate demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index27.38 (24.57)
Research Supply Index4.38 (2.92)
Research Growth Index4.58 (4.65)
Search Engine Demand Index34.37 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (27.38)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials7 (9.72%)5.53%
Reviews1 (1.39%)6.00%
Case Studies1 (1.39%)4.05%
Observational0 (0.00%)0.25%
Other63 (87.50%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]