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selenious acid

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Description

Selenious Acid: A selenium compound with the molecular formula H2SO3. It used as a source of SELENIUM, especially for patients that develop selenium deficiency following prolonged PARENTERAL NUTRITION. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

Cross-References

ID SourceID
PubMed CID1091
CHEMBL ID2009089
CHEBI ID26642
MeSH IDM0328356

Synonyms (59)

Synonym
selenium dioxide, monohydrated
selenious acid (h2seo3)
ccris 5530
hsdb 6065
einecs 231-974-7
monohydrated selenium dioxide
selenous acid
NCI60_003085
NCIMECH_000026
[seo(oh)2]
selenige saeure
selenious acid
CHEBI:26642 ,
dihydroxidooxidoselenium
7783-00-8
selenious acid (usp)
D05814
selenous acid, 99.999% trace metals basis
selenous acid, 98%
NCGC00248596-01
selenious acid [usp]
ec 231-974-7
unii-f6a27p4q4r
f6a27p4q4r ,
dtxsid9024300 ,
tox21_200407
NCGC00257961-01
cas-7783-00-8
dtxcid004300
AKOS015960374
CCG-35433
MCAHWIHFGHIESP-UHFFFAOYSA-N
selenious acid [mart.]
selenious acid [hsdb]
selenious acid [orange book]
un 3283
selenious acid [vandf]
selenious acid [mi]
selenium (as selenious acid) [vandf]
selenious acid [usp monograph]
un-3283
selenious acid [who-dd]
selenium (as selenious acid)
CHEMBL2009089
acid, selenious
acid, selenous
mfcd00011331
acide selenieux
selenous acid (99.999%-se)
selenous acid, p.a., 95.0%
DB11127
Q413722
acido selenio
selenious acid(h2seo3)
acido selenioso
selenious acid (mart.)
selenige saure
selenious acid (usp monograph)
(seo(oh)2)

Research Excerpts

Toxicity

ExcerptReferenceRelevance
" concentration of the SH-groups, activity of glutathione reductase and glutathione-S-transferase, carminomycin antitumor and toxic effects was studied under conditions of tumor growth and carminomycin therapy with the use of prophylactic rations (PR) aimed at stimulating the cell thiol-dependent and antioxidant systems for decreasing the drug toxic action."( [Thiol-dependent protective systems in alimentary prevention of the toxic effect of carminomycin].
Alekseeva, NR; Karsybekova, NM; Lenskaia, EG; Monakhov, BV; Sarbaev, BT; Sisemalieva, ZhS; Tazhibaev, ShS, 1990
)
0.28
" The sensitization to higher doses of selenite by GSH could be explained by the generation of toxic oxygen species."( Mechanisms of mutagenicity and toxicity of sodium selenite (Na2SeO3) in Salmonella typhimurium.
Ames, BN; Kramer, GF, 1988
)
0.27
" In the BZ 34 strain, the presence of glutathione (GSH) during selenite treatment greatly enhanced the convertogenic and toxic effects of selenite."( Genotoxicity of selenite in diploid yeast.
Anjaria, KB; Madhvanath, U, 1988
)
0.27
" LD50 values indicate that SS, NAP, and PNP were more toxic (8."( Developmental toxicity of nine selected compounds following prenatal exposure in the mouse: naphthalene, p-nitrophenol, sodium selenite, dimethyl phthalate, ethylenethiourea, and four glycol ether derivatives.
Booth, GM; Bradshaw, WS; Carter, MW; Hardin, BD; Plasterer, MR; Schuler, RL, 1985
)
0.27
" Since the selenium has been known to reduce the renal toxicity of mercury, the effect of selenium on the adverse action of CDDP was examined in mice."( [Suppression of CDDP-induced renal toxicity by sodium selenite].
Imura, N; Naganuma, A; Yokoyama, M, 1985
)
0.27
"06 microgram Se/g dry weight were found to be more sensitive to the toxic action of selenite than female rats of corresponding age."( Protection against selenite toxicity by previous administration of selenium compounds.
Kalousková, J; Pavlík, L, 1982
)
0.26
" This results suggest that selenium compounds are useful for prevention of the toxic side effects of CDDP."( Effect of selenite on renal toxicity and antitumor activity of cis-diamminedichloroplatinum in mice inoculated with Ehrlich ascites tumor cell.
Imura, N; Naganuma, A; Satoh, M, 1984
)
0.27
" Biochemical investigation also demonstrated a significant suppression of amino acid uptake (protein synthesis) in the CNS under the toxic influence of MeHg."( Protective effects of selenium against methylmercury neurotoxicity: a morphological and biochemical study.
Chang, LW, 1983
)
0.27
"Effect of selenium on toxic side effects of cis-diamminedichloroplatinum (Cisplatin; CDDP) which is a potent anticancer drug containing platinum was examined."( Selenium efficiently depressed toxic side effect of cis-diamminedichloroplatinum.
Imura, N; Naganuma, A; Satoh, M; Yokoyama, M, 1983
)
0.27
" p-Tert-butylbenzoic acid, an inhibitor of gluconeogenesis, decreased selenite dependent O2 consumption and potentiated the effect on NADPH levels as well as the toxic effect."( Effects of selenite on O2 consumption, glutathione oxidation and NADPH levels in isolated hepatocytes and the role of redox changes in selenite toxicity.
Anundi, I; Högberg, J; Ståhl, A, 1984
)
0.27
" The results suggest that dietary Se, fed as SS, becomes toxic for Syrian hamsters at levels of 10 ppm and above."( Toxic effects of dietary selenium in the Syrian hamster.
Birt, DF; Davies, MH; Julius, AD, 1983
)
0.27
" The results indicate that this was the major metabolic pathway for toxic concentrations of selenite in isolated hepatocytes."( Involvement of glutathione reductase in selenite metabolism and toxicity, studied in isolated rat hepatocytes.
Anundi, I; Högberg, J; Ståhl, A, 1982
)
0.26
" Selenite was 43-fold more toxic than selenomethionine on the basis of LD50 determination."( Acute toxicity of sodium selenite and selenomethionine in mice after ICV or IV administration.
Ammar, EM; Couri, D, 1981
)
0.26
" Thus, toxic selective media enriched a resistant population."( Evaluation of the toxicity of Salmonella selective media for shortening the enrichment period.
Chen, H; Fraser, AD; Yamazaki, H, 1993
)
0.29
" Mayfly survival, secondary production, and time to emergence were similar in both SeO3 and SeO4 treated periphyton exposures with significant adverse effects at 12."( Bioconcentration and biotransformation of selenite versus selenate exposed periphyton and subsequent toxicity to the Mayfly Centroptilum triangulifer.
Buchwalter, DB; Conley, JM; Funk, DH; Hesterberg, DH; Hsu, LC; Kan, J; Liu, YT, 2013
)
0.39
" elegans, and selenite is a substrate for thioredoxin reductase, so TRXR-1 may play a role in metabolism of selenium (Se) to toxic forms."( Deletion of thioredoxin reductase and effects of selenite and selenate toxicity in Caenorhabditis elegans.
Boehler, CJ; Raines, AM; Sunde, RA, 2013
)
0.39
" By comparing the sensitivity to selenomethionine of mutants impaired in the sulfur amino acid pathway, we excluded a toxic effect of Se-adenosylmethionine, Se-adenosylhomocysteine, or of any compound in the methionine salvage pathway."( Trans-sulfuration Pathway Seleno-amino Acids Are Mediators of Selenomethionine Toxicity in Saccharomyces cerevisiae.
Blanquet, S; Dauplais, M; Lazard, M; Plateau, P, 2015
)
0.42
"Selenite can enhance the selenium nutrition level of crops, but excessive selenite may be toxic to plant growth."( Germinating Peanut (Arachis hypogaea L.) Seedlings Attenuated Selenite-Induced Toxicity by Activating the Antioxidant Enzymes and Mediating the Ascorbate-Glutathione Cycle.
Lai, F; Wang, G; Wu, H; Zhang, H, 2016
)
0.43
"As an essential element, selenium (Se) is beneficial at low levels yet toxic at high levels."( A low level of dietary selenium has both beneficial and toxic effects and is protective against Cd-toxicity in the least killifish Heterandria formosa.
Cazan, AM; Chen, H; Dong, W; Klerks, PL; Wu, X; Xie, L, 2016
)
0.43
" Since the either adverse or beneficial health effects strongly depend on the ingested Se species, five low molecular weight species were investigated regarding their toxicological effects, cellular bioavailability and species-specific metabolism in human cells."( Differing cytotoxicity and bioavailability of selenite, methylselenocysteine, selenomethionine, selenosugar 1 and trimethylselenonium ion and their underlying metabolic transformations in human cells.
Bornhorst, J; Kuehnelt, D; Marschall, TA; Schwerdtle, T, 2016
)
0.43
" There was no correlation between the potencies of the respective toxic effects and the measured cellular Se concentrations."( Differing cytotoxicity and bioavailability of selenite, methylselenocysteine, selenomethionine, selenosugar 1 and trimethylselenonium ion and their underlying metabolic transformations in human cells.
Bornhorst, J; Kuehnelt, D; Marschall, TA; Schwerdtle, T, 2016
)
0.43
"The essential micronutrient selenium (Se) is required for various systemic functions, but its beneficial range is narrow and overexposure may result in adverse health effects."( Selenium species-dependent toxicity, bioavailability and metabolic transformations in Caenorhabditis elegans.
Aschner, M; Bornhorst, J; Jensen, KB; Kroepfl, N; Kuehnelt, D; Marschall, TA; Rohn, I; Schwerdtle, T; Tuck, S, 2018
)
0.48
"Selenium (Se) is an essential element for humans, animals, and certain lower plants, but can be toxic at high concentration."( Acute toxicity of selenate and selenite and their impacts on oxidative status, efflux pump activity, cellular and genetic parameters in earthworm Eisenia andrei.
Bodó, K; Bošnjaković, R; Ečimović, S; Engelmann, P; Erk, M; Filipović-Marijić, V; Grgić, M; Ivanković, D; Lončarić, Z; Mijošek, T; Petek, A; Štolfa Čamagajevac, I; Velki, M; Vuković, R, 2018
)
0.48
"Understanding the impact of microorganisms on the mobility of selenium (Se) is important for predicting the fate of toxic Se in the environment and improving wastewater treatment technologies."( Bacillus safensis JG-B5T affects the fate of selenium by extracellular production of colloidally less stable selenium nanoparticles.
Firkala, T; Fischer, S; Hübner, R; Jain, R; Jordan, N; Krause, T; Lederer, F; Merroun, ML; Shevchenko, A; Stumpf, T, 2020
)
0.56
"Cadmium (Cd) as a ubiquitous toxic heavy metal in the environment, causes severe hazards to human health, such as cellular stress and organ injury."( Selenite Ameliorates Cadmium-induced Cytotoxicity Through Downregulation of ROS Levels and Upregulation of Selenoprotein Thioredoxin Reductase 1 in SH-SY5Y Cells.
Guan, S; Guo, J; Ren, Y; Sun, S; Wang, H; Xu, J; Xu, W; Yang, R; Zhang, Q; Zhang, W; Zhao, J; Zong, Y, 2023
)
0.91
" Most studies have attached considerable attention to the adverse effects of Se on parental fish."( Parental exposure to waterborne selenite induces transgenerational development toxicity in zebrafish offspring.
Cheng, R; He, Y; Liao, C; Wang, L; Zhang, J; Zhang, X, 2022
)
0.72
" The adverse effects of Se on the reproduction of zebrafish have been investigated, however, the effects of Se on the maturation and apoptosis of zebrafish oocytes remain unclear."( Environmentally relevant concentrations of selenite trigger reproductive toxicity by affecting oocyte development and promoting larval apoptosis.
Cheng, R; Qin, T; Wang, L; Zhan, C; Zhang, X; Zhang, Z, 2023
)
0.91
"To protect from toxicity at supra-essential doses of selenium, it is important to determine dose levels at which adverse effects occur."( Toxicity of repeated oral intake of organic selenium, inorganic selenium, and selenium nanoparticles: A review.
Hadrup, N; Ravn-Haren, G, 2023
)
0.91

Pharmacokinetics

ExcerptReferenceRelevance
"5 mg), a population pharmacokinetic model was constructed using NONMEM."( Clinical Pharmacokinetics of Oral Sodium Selenite and Dosing Implications in the Treatment of Patients with Metastatic Cancer.
Garcia-Cremades, M; Jayachandran, P; Knox, SJ; Savić, RM, 2021
)
0.62
"The population model described the pharmacokinetic data well."( Clinical Pharmacokinetics of Oral Sodium Selenite and Dosing Implications in the Treatment of Patients with Metastatic Cancer.
Garcia-Cremades, M; Jayachandran, P; Knox, SJ; Savić, RM, 2021
)
0.62

Compound-Compound Interactions

ExcerptReferenceRelevance
" Inoculation of remantadine in combination with nontoxic concentrations of sodium selenite was found to be a promising combination for inhibition of experimental influenza infection."( [Antiviral action of sodium selenite and its combination with remantadine].
Abdullaev, FI; Abdullaev, II; Lazymova, ZA; Sycheva, IV; Veselovskaia, TV,
)
0.13
"The results showed that increasing the P application rate enhanced photosynthesis and then increased the dry matter weight of shoots with selenite and SeMet treatment, and an appropriate amount of P combined with selenite treatment increased the dry matter weight of roots by enhancing root growth."( Selenium uptake, translocation, subcellular distribution and speciation in winter wheat in response to phosphorus application combined with three types of selenium fertilizer.
Hu, C; Li, C; Li, G; Liu, H; Nie, Z; Peng, H; Shi, H, 2023
)
0.91
"Compared with selenate or SeMet treatment, treatment with an appropriate amount of P combined with selenite could promote plant growth, reduce Se uptake, alter Se subcellular distribution and speciation, and affect Se bioavailability in wheat."( Selenium uptake, translocation, subcellular distribution and speciation in winter wheat in response to phosphorus application combined with three types of selenium fertilizer.
Hu, C; Li, C; Li, G; Liu, H; Nie, Z; Peng, H; Shi, H, 2023
)
0.91

Bioavailability

ExcerptReferenceRelevance
" Since GSH occurs in the intestinal lumen under physiological conditions, it may contribute to the high bioavailability of Se from selenite."( Effects of glutathione and of cysteine on intestinal absorption of selenium from selenite.
Scharrer, E; Senn, E; Wolffram, S,
)
0.13
" The high bioavailability of Se from selenite found by others might thus be the result of the presence of thiols in the gastrointestinal tract."( Stimulation of mucosal uptake of selenium from selenite by some thiols at various sites of rat intestine.
Scharrer, E; Senn, E; Wolffram, S,
)
0.13
" We also undertook a separate bioavailability study using Se-methylselenocysteine, dimethyl selenoxide, and trimethylselenonium as the starting compounds for delivering selenium with one, two, or three methyl groups, and measured the ability of these compounds to restore glutathione peroxidase activity in selenium-depleted animals."( Chemical form of selenium, critical metabolites, and cancer prevention.
Budnick, RM; Ganther, HE; Hayes, C; Ip, C, 1991
)
0.28
"An experiment was conducted to estimate the relative bioavailability of inorganic Se sources based on tissue Se deposition following supplementation at high dietary levels."( Estimation of the relative biological availability of inorganic selenium sources for ruminants using tissue uptake of selenium.
Ammerman, CB; Echevarria, MG; Henry, PR; Rao, PV, 1988
)
0.27
" These results indicate that the chemical forms of dietary Se can have a marked influence on biological responses, including bioavailability of dietary Se."( Effects of various dietary levels of selenium as selenite or selenomethionine on tissue selenium levels and glutathione peroxidase activity in rats.
Butler, JA; Whanger, PD, 1988
)
0.27
" The bioavailability of Se was calculated with the slope-ratio method."( Bioavailability to rats of selenium in milk of cows fed sodium selenite or selenited barley.
Aspila, P; Mutanen, M; Mykkänen, HM, 1986
)
0.27
" Stable isotopes of selenium are safe and potentially useful tools for examining its bioavailability in the diets of young children."( Absorption of selenium from milk protein and isolated soy protein formulas in preschool children: studies using stable isotope tracer 74Se.
Christensen, MJ; Janghorbani, M; Solomons, NW; Steinke, FH; Torun, B; Young, VR, 1986
)
0.27
" In this study, the triple-lumen perfusion method was used to measure the rate of absorption of trace quantities of selenium (50 micrograms/liter in a physiological electrolyte solution) from the jejunum when given as D,L-selenomethione, D,L-selenocystine, or sodium selenite to healthy dogs in vivo."( Selenium absorption by canine jejunum.
Barbezat, GO; Reasbeck, PG; Robinson, MF; Thomson, CD; Weber, FL, 1985
)
0.27
"Various aspects of selenium metabolism and nutrition in relation to the question of selenium bioavailability in foods and the diet of man are reviewed."( Selenium bioavailability with reference to human nutrition.
Janghorbani, M; Nahapetian, A; Young, VR, 1982
)
0.26
" Furthermore, selenium speciation analysis, in vitro gastrointestinal digestion and antioxidant assays were performed to evaluate the selenium bioaccessibility and bioavailability in selenium-enriched rice grains."( Generation of selenium-enriched rice with enhanced grain yield, selenium content and bioavailability through fertilisation with selenite.
Wang, X; Wang, YD; Wong, YS, 2013
)
0.39
" On the basis of the lower activation barrier and bioavailability of (RS)2AsOH, the reaction of H2Se with (RS)2AsOH is deemed the most favorable, consistent with previous experimental studies."( Thiol reduction of arsenite and selenite: DFT modeling of the pathways to an as-se bond.
Antony, S; Bayse, CA; Harper, LK, 2014
)
0.4
"Biosensors fabricated with whole-cell bacteria appear to be suitable for detecting bioavailability and toxicity effects of the chemical(s) of concern, but they are usually reported to have drawbacks like long response times (ranging from hours to days), narrow dynamic range and instability during long term storage."( A high-throughput oxidative stress biosensor based on Escherichia coli roGFP2 cells immobilized in a k-carrageenan matrix.
Heng, LY; Mori, IC; Ooi, L, 2015
)
0.42
"Quantification of selenium bioavailability from foods is a key challenge following the discovery of the antioxidant role of this micronutrient in human health."( Variations in the accumulation, localization and rate of metabolization of selenium in mature Zea mays plants supplied with selenite or selenate.
Bariac, T; Biron, P; Castrec-Rouelle, M; Longchamp, M, 2015
)
0.42
" Since the either adverse or beneficial health effects strongly depend on the ingested Se species, five low molecular weight species were investigated regarding their toxicological effects, cellular bioavailability and species-specific metabolism in human cells."( Differing cytotoxicity and bioavailability of selenite, methylselenocysteine, selenomethionine, selenosugar 1 and trimethylselenonium ion and their underlying metabolic transformations in human cells.
Bornhorst, J; Kuehnelt, D; Marschall, TA; Schwerdtle, T, 2016
)
0.43
" While small Se species play a major role in Se metabolism, their toxicological effects, bioavailability and metabolic transformations following elevated uptake are poorly understood."( Selenium species-dependent toxicity, bioavailability and metabolic transformations in Caenorhabditis elegans.
Aschner, M; Bornhorst, J; Jensen, KB; Kroepfl, N; Kuehnelt, D; Marschall, TA; Rohn, I; Schwerdtle, T; Tuck, S, 2018
)
0.48
" It was previously demonstrated that Niboshi and its water extract contained highly bioavailable selenium for selenium deficient mice."( In vitro assessment of bioavailability of selenium from a processed Japanese anchovy, Niboshi.
Fuchigami, T; Haratake, M; Iwataka, M; Nakayama, M; Yoshida, S, 2018
)
0.48
"Selenoneine is likely to pass the intestinal barrier via transcellular, carrier-mediated transport, is highly bioavailable to Caco-2 cells and undergoes metabolic transformations."( Side-Directed Transfer and Presystemic Metabolism of Selenoneine in a Human Intestinal Barrier Model.
Bornhorst, J; Kroepfl, N; Kuehnelt, D; Rohn, I; Schwerdtle, T, 2019
)
0.51
" Recently, a mixture of selenitriglycerides, obtained by the reaction of selenite with sunflower oil at high temperature, referred to as Selol, was proposed as a novel non-toxic, highly bioavailable and active antioxidant and antineoplastic agent."( Selenized Plant Oil Is an Efficient Source of Selenium for Selenoprotein Biosynthesis in Human Cell Lines.
Anuszewska, E; Bierla, K; Bulteau, AL; Chavatte, L; Flis-Borsuk, A; Ksiazek, I; Lobinski, R; Modzelewska, K; Mosca, M; Sonet, J; Suchocki, P; Szpunar, J, 2019
)
0.51
"Cu, Fe, Mn, Mo, Selenium (Se), and Zn bioavailability from selenate- and selenite-enriched lettuce plants was studied by in vitro gastrointestinal digestion followed by an assay with Caco-2 cells."( Bioavailability Assessment of Copper, Iron, Manganese, Molybdenum, Selenium, and Zinc from Selenium-Enriched Lettuce.
Cadore, S; do Nascimento da Silva, E, 2019
)
0.51
"The accurate assessment of soil selenium (Se) bioavailability is crucial for Se biofortification in Se-deficient areas and risk assessment in selenosis areas."( Prediction of selenium uptake by pak choi in several agricultural soils based on diffusive gradients in thin-films technique and single extraction.
Liang, D; Liu, Y; Peng, Q; Wang, D; Wang, M; Yang, W; Zhou, F, 2020
)
0.56
" As this microorganism decreases Se mobility, it will affect Se bioavailability in the environment and decreases its toxicity."( Bacillus safensis JG-B5T affects the fate of selenium by extracellular production of colloidally less stable selenium nanoparticles.
Firkala, T; Fischer, S; Hübner, R; Jain, R; Jordan, N; Krause, T; Lederer, F; Merroun, ML; Shevchenko, A; Stumpf, T, 2020
)
0.56
"Knowledge of the Se fractionation and the role of dissolved organic matter (DOM) in soil is the key to understanding Se mobility and its bioavailability in the soil-plant system."( Assessing the potential availability of selenium in the soil-plant system with manure application using diffusive gradients in thin-films technique (DGT) and DOM-Se fractions extracted by selective extractions.
Chen, H; Dinh, QT; Liang, D; Peng, Q; Qi, M; Tran, TAT; Wang, M; Zhou, F, 2021
)
0.62
" Although bioavailability rate of total selenium in selenate fortified leeks was found to be higher, lower amount of inorganic selenium and higher amount of MeSeCys were found to be bioavailable in Se(IV) fortified."( Bioaccessibility and bioavailability of selenium species in Se-enriched leeks (Allium Porrum) cultivated by hydroponically.
Arı, B; Bakırdere, S; Can, SZ; Öz, E, 2022
)
0.72
"Selenium engineered nanomaterials (Se ENMs)-enabled agriculture has developed rapidly, however, the roles of surface charge in the bioavailability and enrichment efficiency of Se ENMs are still unknown."( Selenium content and nutritional quality of Brassica chinensis L enhanced by selenium engineered nanomaterials: The role of surface charge.
Cao, X; Chen, F; Cheng, B; Li, J; Liu, X; Wang, C; Wang, Z; Xing, B; Yue, L, 2022
)
0.72
"Elemental selenium nanosphere is considered to exhibit high bioavailability compared to its salts."( Reduction of selenite to selenium nanospheres by Se(IV)-resistant Lactobacillus paralimentarius JZ07.
Dai, F; Li, H; Li, Z; Wang, Q, 2022
)
0.72
" Therefore, this study investigated differences in Se concentration and bioavailability between paddy and dryland soils using data collected from literatures and field sampling."( Differences in selenium concentration and bioavailability between paddy and dryland soils of China: A study based on literature collection and field sampling.
Li, Y; Liang, D; Lyu, L; Ma, Y; Man, YB; Wu, F; Xue, M; Yang, J; Zhang, N; Zhao, H; Zhou, F, 2023
)
0.91
" This review will summarize (1) Se concentration in soils and its sources, (2) Se bioavailability in soils and influencing factors, (3) mechanisms on Se uptake and translocation in plants, (4) toxicity and detoxification of Se in plants and (5) strategies to remediate Se pollution."( Selenium in soil-plant system: Transport, detoxification and bioremediation.
Dai, Z; Dang, B; Elyamine, AM; Han, D; Huang, W; Jia, W; Qu, L; Xu, J; Xu, Z, 2023
)
0.91
" The correlation analysis also indicates that Saccharimonadales, Bacillus, Arthrobacter, and other bacteria with the function of reducing the bioavailability of cadmium in soil reveal a considerable positive correlation with the variations of physical and chemical properties."( Influences of biochar with selenite on bacterial community in soil and Cd in peanut.
Ai, L; Chen, S; Ma, B; Shao, S; Zhang, L, 2023
)
0.91
"Compared with selenate or SeMet treatment, treatment with an appropriate amount of P combined with selenite could promote plant growth, reduce Se uptake, alter Se subcellular distribution and speciation, and affect Se bioavailability in wheat."( Selenium uptake, translocation, subcellular distribution and speciation in winter wheat in response to phosphorus application combined with three types of selenium fertilizer.
Hu, C; Li, C; Li, G; Liu, H; Nie, Z; Peng, H; Shi, H, 2023
)
0.91
" The present study highlights the importance of employing selenium speciation analysis with an element-selective technique to examine the metabolic products following mushroom fortification for nutritional purposes due to the different toxicological profile and bioavailability of different selenium biotransformation products."( Comparative investigation of selenium-enriched Pleurotus ostreatus and Ganoderma lucidum as natural sources of selenium supplementation.
Chillon, TS; Goessler, W; Hackler, J; Lajin, B; Milovanovic, I; Schomburg, L, 2024
)
1.44

Dosage Studied

ExcerptRelevanceReference
" As a first step toward the elucidation of the postulated pathway for selenocysteine formation from an L-serine residue esterified to tRNA, we have examined whether an increase in the selC gene dosage allows the demonstration of selenocysteyl-tRNA formation in vivo."( Occurrence in vivo of selenocysteyl-tRNA(SERUCA) in Escherichia coli. Effect of sel mutations.
Böck, A; Leinfelder, W; Stadtman, TC, 1989
)
0.28
" Similarly, dose-response studies indicated that the 58-kd protein increased greater than 20-fold, whereas the 26- and 23-kd proteins increased only 5-fold."( Intracellular 58-kd selenoprotein levels correlate with inhibition of DNA synthesis in mammary epithelial cells.
Dishart, MK; Medina, D; Morrison, DG, 1988
)
0.27
" In the chronic treatments the dosage of lead acetate was kept constant and that of sodium selenite varied while in the acute treatments the ratio of the two salts was kept constant."( Antagonistic and synergistic effects of lead and selenium in Rattus norvegicus.
Chakraborty, I; Sharma, A; Talukder, G, 1987
)
0.27
" It was shown that the liver selenium cannot be used as an indicator of the efficiency of selenium absorption in short-term studies, since after dosing the liver accumulates sodium selenite more efficiently than selenomethionine, in spite of the greater percentage absorption of the latter compound."( Intestinal absorption of 75Se-labeled sodium selenite and selenomethionine in chicks: effects of time, segment, selenium concentration and method of measurement.
Humaloja, T; Mykkänen, HM, 1986
)
0.27
" Dosage per injection was ."( Maternal transfer and retention of supplemental selenium in neonatal calves.
Colenbrander, VF; Cunningham, MD; Weiss, WP, 1984
)
0.27
" Dose-dependent elevation of maternal death rates was observed for both treatments, and the slope of the dose-response curve was significantly steeper following GSSeSG treatment."( Toxic effects of selenodiglutathione on pregnant mice.
Hongo, T; Imura, N; Naganuma, A; Suzuki, T; Yonemoto, J, 1984
)
0.27
" Three dosing trials, two of them double blind trials, using physiological daily supplements (100 micrograms Se) of sodium selenite or selenomethionine and a placebo have been carried out."( Effect of daily supplements of selenium on patients with muscular complaints in Otago and Canterbury.
Campbell, DR; Rea, HM; Robinson, MF; Snow, PG; Squires, IH; Stewart, RD; Thomson, CD, 1981
)
0.26
" After dosing ceased, GSH-Px activities for most subjects returned to predosing values in 17 to 40 wk, but in some subjects activities remained high."( Effect of prolonged supplementation with daily supplements of selenomethionine and sodium selenite on glutathione peroxidase activity in blood of New Zealand residents.
Campbell, DR; Rea, HM; Robinson, MF; Thomson, CD, 1982
)
0.26
" At low dosage rates (5 microgram) Se is more readily incorporated into tissues from SeO3(2-) than from SeO4(2-)."( The excretion of selenium in bile and urine of steers: the influence of form and amount of Se salt.
Mather, DL; Symonds, HW; Vagg, MJ, 1981
)
0.26
" In the present study, the toxicity of 4 compounds (selenate, selenite, methylselenocysteine, and selenocystine) to honeybee adult foragers and larvae was assessed using dose-response bioassays."( Effects of selenium on development, survival, and accumulation in the honeybee (Apis mellifera L.).
Hladun, KR; Kaftanoglu, O; Parker, DR; Tran, KD; Trumble, JT, 2013
)
0.39
" Se(IV) dosed at 40."( Weak magnetic field significantly enhances selenite removal kinetics by zero valent iron.
Bao, H; Choi, W; Guan, X; Huang, Y; Jiang, Z; Li, L; Liang, L; Sun, W, 2014
)
0.4
" Both dosage forms of Se were bioavailable as demonstrated by the blood biomarker selenoprotein P, which was equally up-regulated in the high-dose animals for both dosage forms of Se."( Absorption, distribution, metabolism and excretion of selenium following oral administration of elemental selenium nanoparticles or selenite in rats.
Gammelgaard, B; Hadrup, N; Hansen, M; Lam, HR; Larsen, EH; Loeschner, K; Mortensen, A; Møller, LH; Pereira, SA, 2014
)
0.4
" Compared with selenite single treatment, dosage of selenite could be remarkably reduced in combination therapy to gain the same inhibitory effect on cell proliferation."( Synergistic effect of ethaselen and selenite treatment against A549 human non-small cell lung cancer cells.
Ma, WW; Xu, W; Zeng, HH, 2014
)
0.4
"All these results indicate that the combination treatment of BBSKE and selenite showed synergism to inhibit A549 cell proliferation in vitro, and also reduced the selenite dosage to mitigate its toxicity which is very meaningful for combination chemotherapy of lung cancer."( Synergistic effect of ethaselen and selenite treatment against A549 human non-small cell lung cancer cells.
Ma, WW; Xu, W; Zeng, HH, 2014
)
0.4
" Recent emerging evidence has also shown that selenium at supranutritional dosage has a preferential cytotoxicity in cancer cells and chemotherapeutic drug-resistant cells, but the underlying mechanisms remain largely unknown."( Reduction of selenium-binding protein 1 sensitizes cancer cells to selenite via elevating extracellular glutathione: a novel mechanism of cancer-specific cytotoxicity of selenite.
Fang, W; Hu, F; Huang, Y; Wang, Y; Xiong, B; Yang, W; Ying, Q, 2015
)
0.42
"The aim of this work was to characterize the pharmacokinetics of selenite to suggest dosing strategies and to propose a study design for further investigation."( Clinical Pharmacokinetics of Oral Sodium Selenite and Dosing Implications in the Treatment of Patients with Metastatic Cancer.
Garcia-Cremades, M; Jayachandran, P; Knox, SJ; Savić, RM, 2021
)
0.62
"With selenium plasma concentrations obtained from five dosing cohorts (5."( Clinical Pharmacokinetics of Oral Sodium Selenite and Dosing Implications in the Treatment of Patients with Metastatic Cancer.
Garcia-Cremades, M; Jayachandran, P; Knox, SJ; Savić, RM, 2021
)
0.62
" High dosage of selenite exhibits a great potential in treating leukemia."( ATM/IKK alpha axis regulates the crosstalk between autophagy and apoptosis in selenite-treated Jurkat cells.
An, J; Meng, D; Shi, K; Tian, W; Wang, Y; Zhang, Y, 2022
)
0.72
"Selenite at high dosage exhibits great potential in curing tumors."( Cytosolic JNK-dependent microtubule reassembly protects Jurkat leukemia cells from selenite-induced apoptosis.
An, J; Meng, D; Shi, K; Wang, Y; Zhang, Y, 2023
)
0.91
"We identified relevant literature on the repeated dosage of selenium and extracted dose descriptors on reported endpoints, except on genotoxicity/carcinogenicity."( Toxicity of repeated oral intake of organic selenium, inorganic selenium, and selenium nanoparticles: A review.
Hadrup, N; Ravn-Haren, G, 2023
)
0.91
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Drug Classes (1)

ClassDescription
selenium oxoacid
[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]

Pathways (3)

PathwayProteinsCompounds
superpathway of seleno-compound metabolism339
selenate reduction115
Selenium metabolism and selenoproteins04

Protein Targets (19)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
RAR-related orphan receptor gammaMus musculus (house mouse)Potency32.51650.006038.004119,952.5996AID1159521; AID1159523
SMAD family member 2Homo sapiens (human)Potency2.77590.173734.304761.8120AID1346859; AID1346924
SMAD family member 3Homo sapiens (human)Potency2.77590.173734.304761.8120AID1346859; AID1346924
AR proteinHomo sapiens (human)Potency16.39580.000221.22318,912.5098AID1259243; AID1259247; AID743036; AID743042; AID743054
caspase 7, apoptosis-related cysteine proteaseHomo sapiens (human)Potency4.33210.013326.981070.7614AID1346978
nuclear receptor subfamily 1, group I, member 3Homo sapiens (human)Potency53.58230.001022.650876.6163AID1224838; AID1224839; AID1224893
retinoic acid nuclear receptor alpha variant 1Homo sapiens (human)Potency26.56930.003041.611522,387.1992AID1159552; AID1159555
retinoid X nuclear receptor alphaHomo sapiens (human)Potency55.02170.000817.505159.3239AID1159527; AID1159531
estrogen-related nuclear receptor alphaHomo sapiens (human)Potency36.02220.001530.607315,848.9004AID1224841; AID1224842; AID1224848; AID1224849; AID1259401; AID1259403
estrogen nuclear receptor alphaHomo sapiens (human)Potency31.46590.000229.305416,493.5996AID1259244; AID1259248; AID743069; AID743078; AID743079; AID743080; AID743091
peroxisome proliferator activated receptor gammaHomo sapiens (human)Potency36.07450.001019.414170.9645AID743140
caspase-3Homo sapiens (human)Potency4.33210.013326.981070.7614AID1346978
thyroid hormone receptor beta isoform 2Rattus norvegicus (Norway rat)Potency17.66150.000323.4451159.6830AID743065; AID743067
nuclear factor erythroid 2-related factor 2 isoform 1Homo sapiens (human)Potency7.80540.000627.21521,122.0200AID743202; AID743219
Voltage-dependent calcium channel gamma-2 subunitMus musculus (house mouse)Potency68.65940.001557.789015,848.9004AID1259244
Cellular tumor antigen p53Homo sapiens (human)Potency25.84750.002319.595674.0614AID651631; AID720552
Glutamate receptor 2Rattus norvegicus (Norway rat)Potency68.65940.001551.739315,848.9004AID1259244
ATPase family AAA domain-containing protein 5Homo sapiens (human)Potency0.42690.011917.942071.5630AID651632; AID720516
Ataxin-2Homo sapiens (human)Potency0.38610.011912.222168.7989AID651632
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (141)

Processvia Protein(s)Taxonomy
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)
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 (40)

Processvia Protein(s)Taxonomy
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)
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 (27)

Processvia Protein(s)Taxonomy
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)
plasma membraneGlutamate receptor 2Rattus norvegicus (Norway rat)
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]

Research

Studies (968)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990422 (43.60)18.7374
1990's50 (5.17)18.2507
2000's10 (1.03)29.6817
2010's305 (31.51)24.3611
2020's181 (18.70)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 52.01

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 very strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index52.01 (24.57)
Research Supply Index6.93 (2.92)
Research Growth Index6.65 (4.65)
Search Engine Demand Index82.18 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (52.01)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials8 (0.79%)5.53%
Reviews22 (2.17%)6.00%
Case Studies10 (0.98%)4.05%
Observational0 (0.00%)0.25%
Other976 (96.06%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Clinical Trials (18)

Trial Overview

TrialPhaseEnrollmentStudy TypeStart DateStatus
Perioperative High-dose Selenium Supplementation in Patients With Left Ventricular Assist Device - a Double Blinded Randomised Controlled Trial [NCT02530788]Phase 321 participants (Actual)Interventional2015-08-31Completed
Effect of Parenteral and Enteral Selenium Supplementation on Trace Mineral Antioxidant Enzyme and Amino Acid Metabolism in Low Birth Weight Infants [NCT02066610]47 participants (Actual)Interventional1991-03-31Completed
A Phase 1 Study Evaluating the Efficacy and Safety of Sodium Selenite in Combination With Abiraterone in Patients With Castrate Resistant Prostate Cancer Progressing on Abiraterone [NCT04296578]Phase 10 participants (Actual)Interventional2020-10-31Withdrawn(stopped due to Study did not start)
Prospective, Randomized Multicenter Trial of Adjunctive Intravenous Therapy With Sodium-selenite(Selenase®, Double-blinded) and a Procalcitonin Guided Causal Therapy (Open) of Severe Sepsis or Septic Shock. [NCT00832039]Phase 31,089 participants (Actual)Interventional2009-11-30Completed
A Phase I Study Evaluating the Efficacy and Safety of Sodium Selenite in Combination With Palliative Radiation Therapy in Patients With Metastatic Cancer [NCT02184533]Phase 115 participants (Actual)Interventional2014-07-31Completed
A Randomized, Single-blind, Trial of Tralement Versus a Fixed-dose Trace Element Combination Product of Zinc, Copper, and Selenious Acid to Evaluate Manganese Safety in Pediatric Patients Requiring Long-term Parenteral Nutrition [NCT05677126]Phase 480 participants (Anticipated)Interventional2023-09-30Not yet recruiting
A Randomized, Single-blind, Trial of Tralement Versus a Fixed-dose Trace Element Combination Product of Zinc, Copper, and Selenious Acid to Evaluate Manganese Safety in Adult Patients Requiring Long-term Parenteral Nutrition [NCT05661682]Phase 4108 participants (Anticipated)Interventional2023-09-30Not yet recruiting
Safety and Efficacy of High Dose Inorganic seLenium for Preventing Chemotherapy Induced pEripheral Neuropathy in platINUM Sensitive Recurrent Ovarian, Fallopian, Primary Peritoneal Cancer: Phase III Randomised Controlled Trial [NCT04201561]Phase 368 participants (Anticipated)Interventional2019-12-24Active, not recruiting
Effect of High Dose Selenium on Inflammation and Neurological Outcome After Cardiac Arrest: A Randomized, Double Blind Placebo Controlled Phase 2a Study [NCT01390506]Phase 20 participants (Actual)Interventional2017-01-31Withdrawn(stopped due to The company did not provide the study product)
Selenium and Arsenic Pharmacodynamics [NCT02377635]Phase 1/Phase 240 participants (Actual)Interventional2015-02-10Completed
Sodium Selenite as a Cytotoxic Agent in Advanced Carcinoma. A Phase I and Phase II Study. [NCT01959438]Phase 1/Phase 232 participants (Anticipated)Interventional2007-02-28Recruiting
SodiUm SeleniTe Adminstration IN Cardiac Surgery (SUSTAIN CSX®-Trial). A Multicentre Randomized Controlled Trial of High Dose Sodium-selenite Administration in High Risk Cardiac Surgical Patients [NCT02002247]Phase 31,400 participants (Anticipated)Interventional2015-01-31Active, not recruiting
Therapeutic Effect of Sodium Selenite on Oxidative Stress in Patients With Severe Sepsis [NCT02026856]4 participants (Actual)Observational2013-12-31Completed
A Randomized Phase II Placebo-controlled Double Blind Study of Using Selenium in the Treatment of Secondary Lymphedema in Breast Cancer Patients [NCT00188604]Phase 234 participants (Anticipated)Interventional2004-01-31Completed
Prospective, Multicenter, Randomized, Double-Blind, Placebo-Controlled Study Evaluating Efficacy and Safety of a Therapeutic Administration of Selenium, as Selenite, in Septic Shock Patients. [NCT00207844]Phase 260 participants Interventional2002-01-31Completed
Selenite in the Detoxification of Arsenic and the Prevention of Arsenical Melanosis and Cancers Amongst Bangladeshi Arsenicosis Patients: A 48-week, Randomized, Double-blinded, Placebo-controlled Phase III Trial [NCT01442727]Phase 3819 participants (Actual)Interventional2006-12-31Completed
Selenium as a Potential Treatment for Moderately-ill, Severely-ill, and Critically-ill COVID-19 Patients [NCT04869579]Phase 2100 participants (Anticipated)Interventional2021-08-15Not yet recruiting
Peripartum Cardiomyopathy in Nigeria (PEACE) A Registry to Study the Demographics, Social and Clinical Characteristics, Pathophysiology and Outcomes of Peripartum Cardiomyopathy in Nigeria [NCT03081949]Phase 4100 participants (Actual)Interventional2017-06-12Completed
[information is prepared from clinicaltrials.gov, extracted Sep-2024]