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butyric acid

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Description

Butyric Acid: A four carbon acid, CH3CH2CH2COOH, with an unpleasant odor that occurs in butter and animal fat as the glycerol ester. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

butyrate : A short-chain fatty acid anion that is the conjugate base of butyric acid, obtained by deprotonation of the carboxy group. [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]

butyric acid : A straight-chain saturated fatty acid that is butane in which one of the terminal methyl groups has been oxidised to a carboxy group. [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]

Cross-References

ID SourceID
PubMed CID264
CHEMBL ID14227
CHEBI ID30772
MeSH IDM0029881

Synonyms (131)

Synonym
bdbm26109
butanoic acid, 4
gtpl1059
n-butanoic acid
n-butyric acid
buttersaeure
nsc8415 ,
butanic acid
1-butyric acid
wln: qv3
nsc-8415
CHEBI:30772 ,
butoic acid
acide butyrique
c4:0
ch3-[ch2]2-cooh
butanate
1-propanecarboxylate
1-butanoic acid
propanecarboxylate
1-butyrate
propanecarboxylic acid
acide butanoique
1-butanoate
butyrate, sodium salt
NCIMECH_000707
NCI60_001424
brn 0906770
nsc 8415
einecs 203-532-3
kyselina maselna [czech]
buttersaeure [german]
BIO1_000444
BIO1_001422
BIO1_000933
acid, butyric
acid, butanoic
BUA ,
inchi=1/c4h8o2/c1-2-3-4(5)6/h2-3h2,1h3,(h,5,6
un2820
ccris 6552
fema number 2221
hsdb 940
fema no. 2221
ai3-15306
2-butanoate
butyric acid [un2820] [corrosive]
butyric acid (natural)
107-92-6
butanoate
1-propanecarboxylic acid
butyric acid
ethylacetic acid
C00246
propylformic acid
BUTYRIC_ACID ,
butanoic acid
butyrate
butyric acid, >=99%
butyric acid, >=99%, fg
butyric acid, natural, >=99%, fcc, fg
DB03568
1UGP
butyrate sodium
sodium n-butyrate
LMFA01010004
9B27B3D0-9643-40EC-9A5F-7CA1A6ED7F9F
B0754
BMSE000402
butyric acid [un2820] [corrosive]
CHEMBL14227
butyricum acidum
normal butyric acid
AKOS000118961
NCGC00247914-02
NCGC00247914-01
40uir9q29h ,
4-02-00-00779 (beilstein handbook reference)
kyselina maselna
ec 203-532-3
unii-40uir9q29h
67254-79-9
tox21_300164
cas-107-92-6
NCGC00253919-01
tox21_202382
NCGC00259931-01
dtxcid401515
dtxsid8021515 ,
STL169349
CCG-35836
FT-0686717
FT-0623295
butyric acid [who-dd]
butyric acid [mi]
n-butyric acid [fhfi]
butyricum acidum [hpus]
butyric acid [inci]
butyric acid [vandf]
butyric acid [fcc]
butyric acid [hsdb]
3UMQ
BP-21420
ethyl acetic acid
tnfa + nabut
tnfa + sodium butyrate
un 2820
n-c3h7cooh
W-108732
mfcd00002814
F2191-0094
butyric acid, analytical standard
butyric acid, saj special grade, >=99.5%
butyric acid (normal)
fa 4:0
honey robber
1219794-99-6
butyric acid 1000 microg/ml in acetonitrile
Q193213
BRD-K05878375-236-02-4
STR06290
sodium-butyrate
NCGC00247914-05
fattyacids
butyric acid (d8)
butyric--d4 acid
EN300-21334
ch3-(ch2)2-cooh
tetranoic acid
Z104495380
715 - chocolate

Research Excerpts

Overview

Butyric acid (BA) is a short-chain fatty acid (SCFA) produced by gut bacteria in the colon. It exerts salutary effects on alleviating nonalcoholic fatty liver disease (NAFLD) It is an important platform chemical, which is widely used in the fields of food, pharmaceutical, energy, etc.

ExcerptReferenceRelevance
"Butyric acid (BA) is a kind of HDAC inhibitor and thus shows tumor suppression to colon cancer."( A novel dual-prodrug carried by cyclodextrin inclusion complex for the targeting treatment of colon cancer.
Bai, X; Chen, L; Lin, Y; Liu, Z; Luo, Z; Yang, R; Zhang, Z; Zhong, Z; Zhou, M, 2021
)
1.34
"Butyric acid is a potential target in treating hypertension."( Engineered probiotics Clostridium butyricum-pMTL007-GLP-1 improves blood pressure via producing GLP-1 and modulating gut microbiota in spontaneous hypertension rat models.
Chen, TT; Chen, WJ; Huang, H; Jin, R; Tang, YH; Wang, XL; Wei, J; Xu, X; Zou, CW, 2023
)
1.63
"Butyric acid (BA) is a short-chain fatty acid (SCFA) produced by gut bacteria in the colon. "( Butyric acid, a gut bacteria metabolite, lowers arterial blood pressure via colon-vagus nerve signaling and GPR41/43 receptors.
Aleksandrowicz, M; Gawrys-Kopczynska, M; Konopelski, P; Koźniewska, E; Onyszkiewicz, M; Samborowska, E; Sawicka, A; Ufnal, M, 2019
)
3.4
"Butyric acid is a short-chain fatty acid (SCFA) produced by the fermentation of carbohydrates, such as dietary fibre in the large bowel."( Physiological activity of E. coli engineered to produce butyric acid.
Choi, J; Choi, SI; Ham, J; Kim, N; Kim, T; Kim, YR; Lee, HS; Park, YT; Seok, YJ; Yeon, YJ, 2022
)
1.69
"Butyric acid is an intestinal microbiota-produced short-chain fatty acid, which exerts salutary effects on alleviating nonalcoholic fatty liver disease (NAFLD). "( Sodium Butyrate Supplementation Inhibits Hepatic Steatosis by Stimulating Liver Kinase B1 and Insulin-Induced Gene.
Bai, J; Cai, G; Cui, A; Dai, X; Fan, JG; Han, Y; Hu, Z; Li, Y; Liu, XL; Liu, Y; Liu, Z; Ma, F; Pan, Q; Ren, TY; Shen, F; Su, W; Wang, ZX; Xin, FZ; Xue, Y; Zhang, F; Zhao, ZH; Zhou, D, 2021
)
2.06
"Butyric acid is an important platform chemical, which is widely used in the fields of food, pharmaceutical, energy, etc. "( Recent advances and strategies in process and strain engineering for the production of butyric acid by microbial fermentation.
Huang, M; Liu, Z; Luo, H; Wang, Z; Yang, R; Zeng, Q; Zhao, Y, 2018
)
2.15
"Butyric acid is an important C4 organic acid with broad applications. "( Butyric acid: Applications and recent advances in its bioproduction.
Fu, H; Jiang, L; Wang, J; Xu, W; Yang, HK; Yang, ST, 2018
)
3.37
"Butyric acid is a beneficial feed additive used in animal production, including poultry production. "( Effects of sodium butyrate on intestinal health and gut microbiota composition during intestinal inflammation progression in broilers.
Ji, J; Li, Y; Liu, TF; Luo, CL; Qu, H; Shu, DM; Wang, J; Wang, Y; Zou, X, 2019
)
1.96
"Butyric acid (BA) is a common secondary metabolite by-product produced by oral pathogenic bacteria and is detected in high amounts in the gingival tissue of patients with periodontal disease. "( High butyric acid amounts induce oxidative stress, alter calcium homeostasis, and cause neurite retraction in nerve growth factor-treated PC12 cells.
Cueno, ME; Kamio, N; Kurita-Ochiai, T; Ochiai, K; Seki, K, 2015
)
2.37
"Butyric acid is a valuable building-block for the production of chemicals and materials and nowadays it is produced exclusively from petroleum. "( Butyric acid fermentation from pretreated and hydrolysed wheat straw by an adapted Clostridium tyrobutyricum strain.
Baroi, GN; Baumann, I; Gavala, HN; Westermann, P, 2015
)
3.3
"Butyric acid is an important short-chain fatty acid for intestinal health and has been shown to improve certain intestinal disease states. "( Volatile Retention and Morphological Properties of Microencapsulated Tributyrin Varied by Wall Material and Drying Method.
Cadwallader, KR; Donovan, JD; Lee, Y, 2016
)
1.88
"Butyric acid (BA) is a periodontopathic metabolite that activates several stress-related signals and, likewise, induce neurite retraction."( Varying butyric acid amounts induce different stress- and cell death-related signals in nerve growth factor-treated PC12 cells: implications in neuropathic pain absence during periodontal disease progression.
Cueno, ME; Kamimoto, A; Kamio, N; Kurita-Ochiai, T; Ochiai, K; Saito, Y; Seki, K, 2016
)
1.59
"Butyric acid is an important specialty chemical with wide industrial applications. "( Efficient production of butyric acid from Jerusalem artichoke by immobilized Clostridium tyrobutyricum in a fibrous-bed bioreactor.
Cai, J; Huang, J; Huang, L; Wang, J; Xu, Z; Yang, ST; Zhu, X, 2011
)
2.12
"Butyric acid (BA) is a major extracellular metabolite produced by anaerobic periodontopathic bacteria and is commonly deposited in the gingival tissue. "( Butyric acid retention in gingival tissue induces oxidative stress in jugular blood mitochondria.
Cueno, ME; Imai, K; Kurita-Ochiai, T; Matsukawa, N; Ochiai, K; Tsukahara, T, 2013
)
3.28
"Butyric acid is a potent cell growth inhibitor and differentiation inducer (1-4). "( Butyric acid and its monosaccharide ester induce apoptosis in the HL-60 cell line.
Belpomme, D; Calabresse, C; Chomienne, C; Ronco, G; Venturini, L; Villa, P, 1993
)
3.17
"Butyric acid also acts as a competitive inhibitor of nitrile-hydratase-catalyzed hydration of acrylonitrile with a Ki value of 0.9 mM."( Key role of alkanoic acids on the spectral properties, activity, and active-site stability of iron-containing nitrile hydratase from Brevibacterium R312.
Artaud, I; Bonnet, D; Kopf, MA; Mansuy, D; Pétré, D, 1996
)
1.02

Effects

Butyric acid (BA) has received special attention as a short-chain fatty acid. Its role in protecting the intestinal barrier is poorly characterized. It has many applications in chemical, food, and pharmaceutical industries.

ExcerptReferenceRelevance
"Butyric acid has received special attention as a short-chain fatty acid, but its role in protecting the intestinal barrier is poorly characterized."( Sodium Butyrate Attenuates Diarrhea in Weaned Piglets and Promotes Tight Junction Protein Expression in Colon in a GPR109A-Dependent Manner.
Chen, G; Feng, W; Fu, S; Huang, B; Li, B; Liu, J; Wang, D; Wang, W; Wu, Y, 2018
)
1.2
"Butyric acid (BA) has been reported to induce anticancer effects on hepatocellular carcinoma (HCC) cells both in vitro and in vivo. "( Chitosan-coated liposomes loaded with butyric acid demonstrate anticancer and anti-inflammatory activity in human hepatoma HepG2 cells.
Armenia, E; Barbarisi, A; Barbarisi, M; Caraglia, M; Giudice, A; Masarone, M; Persico, M; Quagliariello, V, 2019
)
2.23
"Butyric acid has been shown to reduce high-fat diet-related metabolic disturbances and to improve intestinal barrier function due to its potent anti-inflammatory capacity. "( Monobutyrin Reduces Liver Cholesterol and Improves Intestinal Barrier Function in Rats Fed High-Fat Diets.
Hållenius, FF; Nguyen, TD; Nyman, M; Prykhodko, O, 2019
)
1.96
"Butyric acid has many applications in chemical, food, and pharmaceutical industries. "( Production of butyric acid from glucose and xylose with immobilized cells of Clostridium tyrobutyricum in a fibrous-bed bioreactor.
Cen, P; Jiang, L; Liang, S; Wang, J; Wang, X; Xu, Z, 2010
)
2.16
"Butyric acid has been the subject of much attention last years due to its bioactivity. "( In vitro intestinal bioaccessibility of alkylglycerols versus triacylglycerols as vehicles of butyric acid.
Martín, D; Morán-Valero, MI; Reglero, G; Señoráns, FJ; Torres, CF, 2011
)
2.03
"Butyric acid (BA) has been shown to be angiogenic and to enhance transcriptional activity in tissue. "( Augmentation of tendon healing with butyric acid-impregnated sutures: biomechanical evaluation in a rabbit model.
Amiel, D; Chase, DE; Freemont, A; Healey, RM; Leek, BT; Linn, MS; Tasto, JP; Tibor, LM, 2012
)
2.1
"Butyric acid has been shown to sensitize A431 cells to Shiga toxin by increasing the proportion of cell-associated toxin that is transported to the Golgi apparatus and the endoplasmic reticulum."( Efficient endosome-to-Golgi transport of Shiga toxin is dependent on dynamin and clathrin.
Lauvrak, SU; Sandvig, K; Torgersen, ML, 2004
)
1.04
"Butyric acid has been viewed with skepticism because of less convenient for long-term chronic therapy."( Role of butyric acid and its derivatives in the treatment of colorectal cancer and hemoglobinopathies.
Pouillart, PR, 1998
)
1.46
"Butyric acid has been known to inhibit growth and to induce differentiation of a variety of tumor cells. "( Antitumor activity of tributyrin in murine melanoma model.
Basak, G; Czajka, A; Giermasz, A; Hoser, G; Jakóbisiak, M; Jalili, A; Lewandowski, S; Makowski, M; Marczak, M; Młynarczuk, I; Nowis, D; Stok osa, T, 2001
)
1.75
"Butyric acid has been shown to inhibit the growth of several established tumor cell lines and to induce either granulocytic or erythroid differentiation in different human and murine leukemic cell lines. "( Butyric acid: inhibition of non-leukemic and chronic myeloid leukemia granulocyte macrophage clonal growth.
Januszewicz, E; Novogrodsky, A; Rabizadah, E; Shaklai, M, 1988
)
3.16

Actions

ExcerptReferenceRelevance
"Butyric acid plays an important role in maintaining intestinal health. "( Sodium Butyrate Attenuates Diarrhea in Weaned Piglets and Promotes Tight Junction Protein Expression in Colon in a GPR109A-Dependent Manner.
Chen, G; Feng, W; Fu, S; Huang, B; Li, B; Liu, J; Wang, D; Wang, W; Wu, Y, 2018
)
1.92

Treatment

Butyric acid treatment increased HuR expression in both cytoplasm and nucleus and decreased the level of p-AMPK and p-ACC. Transfection of AMPK activator or HuR-siRNA would down-regulate HuRexpression. In butyric Acid-treated groups, the only detectable changes were mild cell swelling, few apoptosis, and rare necrosis.

ExcerptReferenceRelevance
"Butyric acid treatment increased HuR expression in both cytoplasm and nucleus and decreased the level of p-AMPK and p-ACC, while transfection of AMPK activator or HuR-siRNA would down-regulate HuR expression."( Butyric acid alleviated chronic intermittent hypoxia-induced lipid formation and inflammation through up-regulating HuR expression and inactivating AMPK pathways.
Abdullahi, R; He, Y; Huang, N; Ren, X; Su, M; Xu, M; Xue, S; Yu, J, 2021
)
2.79
"In butyric acid-treated groups, the only detectable changes were, mild cell swelling, few apoptosis, and rare necrosis."( A survey on anticancer effects of artemisinin, iron, miconazole, and butyric acid on 5637 (bladder cancer) and 4T1 (Breast cancer) cell lines.
Fakhri, O; Farshi, Y; Khoshkerdar, A; Ranjbaran, M; Shadi, S; Shahbazfar, AA; Tayefi-Nasrabadi, H; Zare, P,
)
0.88
"The butyric acid treatment simulated the effects of FC on the stomata treated with H₂O₂ and had been closed by dark, and on H₂O₂ levels in guard cells of stomata treated with H₂O₂ and had been closed by dark, and both FC and butyric acid reduced cytosol pH in guard cells of stomata treated with H₂O₂ and had been closed by dark, which demonstrates that cytosolic acidification mediates FC-induced H₂O₂ removal."( Inhibition of dark-induced stomatal closure by fusicoccin involves a removal of hydrogen peroxide in guard cells of Vicia faba.
Han, XZ; Huang, AX; Li, J; She, XP, 2010
)
0.84
"Butyric acid treatment resulted in cell arrest at an early G1/G0 phase, but in contrast to serum or isoleucine starvation did not decrease Rb+ influxes."( Rb+ influxes differentiate between growth arrest of cells by different agents.
Alayoff, A; Fromer, I; Panet, R, 1983
)
0.99
"When butyric acid treatment was interrupted the calsequestrin levels returned rapidly (within 24 h) to the pre-treatment level."( Expression of muscle calsequestrin in epithelial HeLa cells: distribution and functional role.
Bossi, M; Meldolesi, J; Papazafiri, P, 1994
)
0.74
"Butyric acid treatment significantly increased total actin, defined as diffuse actin, plus filamentous subgroup actins 1-4."( A quantitative assessment of F-actin content and distribution in untreated and butyric acid treated murine melanoma B16a tumour cells: a fluorescence image analysis study.
McGarvey, T; Persky, B, 1990
)
1.23
"Treatment with butyric acid (BA) differentiated EOL-1 cells into eosinophils. "( Eosinophil-Derived Osteopontin Induces the Expression of Pro-Inflammatory Mediators and Stimulates Extracellular Matrix Production in Nasal Fibroblasts: The Role of Osteopontin in Eosinophilic Chronic Rhinosinusitis.
Jo, MS; Kim, DW; Park, IH; Park, JH; Shin, JM; Yang, HW, 2022
)
1.07
"The treatment of butyric acid or acetic acid enhanced the cell growth, particularly, the dry weight of the butyric acid-treated cells was 2.30-fold higher than the control."( Volatile fatty acid-treated mixotrophic cultivation of lipid/carbohydrate-rich cyanobacterial species, Pseudanabaena mucicola GO0704, for the enhancement of biofuel production.
Bae, EH; Choi, YE; Kang, JS; Kim, JY; Kim, KY; Kim, SM; Park, J, 2023
)
1.24
"The treatment of butyric acid in CIH group down-regulated expression of inflammatory factors and increased cell apoptotic rate."( Butyric acid alleviated chronic intermittent hypoxia-induced lipid formation and inflammation through up-regulating HuR expression and inactivating AMPK pathways.
Abdullahi, R; He, Y; Huang, N; Ren, X; Su, M; Xu, M; Xue, S; Yu, J, 2021
)
2.39

Toxicity

ExcerptReferenceRelevance
"Cephaloglycin (Cgl) and cephaloridine (Cld) are acutely toxic to the proximal renal tubule, in part because of their cellular uptake by a contraluminal anionic secretory carrier and in part through their intracellular attack on the mitochondrial transport and oxidation of tricarboxylic acid (TCA) cycle anionic substrates."( Toxicity of cephalosporins to fatty acid metabolism in rabbit renal cortical mitochondria.
Hsu, CY; Tune, BM, 1995
)
0.29
" Cld has little or no in vivo toxicity to mitochondrial butyrate metabolism, whereas in vivo Cgl is as toxic as Cld to respiration with PCarn."( Toxicity of cephalosporins to fatty acid metabolism in rabbit renal cortical mitochondria.
Hsu, CY; Tune, BM, 1995
)
0.29
" Weak acids that are normal cellular metabolites are not toxic in vivo, but weak acids carrying cytotoxic groups offer the potential for selective uptake and toxicity under the conditions of low pHe that exist in many solid tumours."( Selective cellular acidification and toxicity of weak organic acids in an acidic microenvironment.
Dobrowsky, E; Karuri, AR; Tannock, IF, 1993
)
0.29
" It is proposed that the presence of such selectively toxic compounds in the diet may inhibit the development of tumors by interfering with the growth of preneoplastic lesions while having little effect on normal cells."( Selective toxicity of compounds naturally present in food toward the transformed phenotype of human colorectal cell line HT29.
Fyfe, D; Johnson, IT; Musk, SR; Smith, TK; Stening, P; Stephenson, P, 1995
)
0.29
" No adverse effects associated with the consumption of the probiotic formula were reported."( Safety and tolerance of the human milk probiotic strain Lactobacillus salivarius CECT5713 in 6-month-old children.
Boza, J; Gómez, M; Lara-Villoslada, F; Maldonado, J; Olivares, M; Rodriguez, JM; Sempere, L; Sierra, S; Xaus, J,
)
0.13
" salivarius CECT5713 is safe and well tolerated in 6-mo-old infants."( Safety and tolerance of the human milk probiotic strain Lactobacillus salivarius CECT5713 in 6-month-old children.
Boza, J; Gómez, M; Lara-Villoslada, F; Maldonado, J; Olivares, M; Rodriguez, JM; Sempere, L; Sierra, S; Xaus, J,
)
0.13
" This study was conducted to investigate the effect of LPS on histone acetylation in bovine mammary epithelial cells and the efficacy of sodium butyrate (SB) in suppressing the endotoxin-induced adverse effect."( Bacterial endotoxin decreased histone H3 acetylation of bovine mammary epithelial cells and the adverse effect was suppressed by sodium butyrate.
Chen, J; Dong, G; Dong, X; Sun, Y; Wang, Z; Wu, Y; Xiao, Y; Zhang, Z, 2019
)
0.51
"The results suggest one of the adverse effects of LPS on the lactation of bovine mammary gland epithelial cells was due to decreasing histone H3 acetylation through increasing HDAC activity, whereas the endotoxin-induced adverse effects were effectively suppressed by SB."( Bacterial endotoxin decreased histone H3 acetylation of bovine mammary epithelial cells and the adverse effect was suppressed by sodium butyrate.
Chen, J; Dong, G; Dong, X; Sun, Y; Wang, Z; Wu, Y; Xiao, Y; Zhang, Z, 2019
)
0.51
" Alcohol metabolism results in formation of acetaldehyde, a highly reactive compound that reacts with dopamine in the brain to form toxic adducts such as salsolinol."( Sodium Butyrate Protects Against Ethanol-Induced Toxicity in SH-SY5Y Cell Line.
Copeland, RL; Csoka, AB; Garden, AR; Getachew, B; Tizabi, Y, 2021
)
0.62

Pharmacokinetics

ExcerptReferenceRelevance
" In mice and rabbits, the half-life is less than 5 min."( Pharmacokinetic study of butyric acid administered in vivo as sodium and arginine butyrate salts.
Baillet, J; Brazier, M; Cerutti, I; Chany, C; Daniel, P; Desmet, G; Pieri, F; Tardivel, I, 1989
)
0.58
" Pharmacokinetic studies showed that a constant plasma level of each compound was maintained for a long time; all molecules had identical volumes of distribution, but differed about their mean residence time."( Differential elimination of synthetic butyric triglycerides in vivo: a pharmacokinetic study.
Pieri, F; Planchon, P; Pouillart, P; Ronco, G; Villa, P, 1993
)
0.29
"The metabolic series approach for risk assessment uses a dosimetry-based analysis to develop toxicity information for a group of metabolically linked compounds using pharmacokinetic (PK) data for each compound and toxicity data for the parent compound."( Derivation of a human equivalent concentration for n-butanol using a physiologically based pharmacokinetic model for n-butyl acetate and metabolites n-butanol and n-butyric acid.
Barton, HA; Clewell, HJ; Corley, RA; Deisinger, PJ; English, JC; Faber, WD; Poet, TS; Teeguarden, JG, 2005
)
0.52

Compound-Compound Interactions

ExcerptReferenceRelevance
" Subconfluent cultures of Swiss 3T3 cells were treated with sodium butyrate in combination with other agents known to induce Swiss 3T3 cell adipogenesis (e."( Sodium butyrate in combination with insulin or dexamethasone can terminally differentiate actively proliferating Swiss 3T3 cells into adipocytes.
Soprano, DR; Soprano, KJ; Toscani, A, 1990
)
0.28
"The effect of dl-alpha-tocopheryl (vitamin E) succinate in combination with Prostaglandin A2 (PGA2) and sodium butyrate on mouse neuroblastoma cells (NBP2) in culture, according to the criteria of growth inhibition and morphological differentiation (neurite formation), was studied."( Effects of dl-alpha-tocopheryl succinate in combination with sodium butyrate and cAMP stimulating agent on neuroblastoma cells in culture.
Prasad, KN; Rama, BN, 1984
)
0.27
"We showed that CDAII, in combination with histone deacetylase inhibitor sodium butyrate synergetically inhibited the proliferation of MCF7 breast cancer cell line and induced apoptosis, in which demethylation and re-expression of RARbeta2 gene induced by combination of the two drugs may be involved."( [In vitro study about the inhibitory effect of CDAII in combination with sodium butyrate on breast cancer cells].
Bu, DF; Shi, YJ; Zhao, YL; Zhu, Y, 2007
)
0.34
" schidigera (YE) alone and in combination with MON were assessed on ruminal microbial composition and fermentation in vitro of a barley-based diet."( Effects of extracts of Humulus lupulus (hops) and Yucca schidigera applied alone or in combination with monensin on rumen fermentation and microbial populations in vitro.
McAllister, T; Narvaez, N; Wang, Y, 2013
)
0.39
"001) with addition of MON (10 µg mL(-1)) and combined with HE or YE."( Effects of extracts of Humulus lupulus (hops) and Yucca schidigera applied alone or in combination with monensin on rumen fermentation and microbial populations in vitro.
McAllister, T; Narvaez, N; Wang, Y, 2013
)
0.39
"Histone deacetylase inhibitors and bisphosphonates have a promising future in the treatment of cancer as targeted anticancer drugs, particularly when used together or in combination with other cytotoxic agents."( In vitro antitumor effect of sodium butyrate and zoledronic acid combined with traditional chemotherapeutic drugs: a paradigm of synergistic molecular targeting in the treatment of Ewing sarcoma.
Abujamra, AL; Brunetto, AL; de Farias, CB; Dos Santos, MP; Roesler, R, 2014
)
0.4
" It was found that transient folate deprivation combined with SMs was sufficient to permit reprogramming from mouse embryonic fibroblasts (MEFs) in the presence of transcription factors, Oct4 and Klf4, within 25 days, replacing Sox2 and c-Myc, and accelerated the generation of mouse iPSCs."( Transient folate deprivation in combination with small-molecule compounds facilitates the generation of somatic cell-derived pluripotent stem cells in mice.
Fang, Y; Hu, WT; Qiu, ZD; Yan, QY; Zhang, SM, 2014
)
0.4
" To achieve the reutilization of the condensate, the ozonation combined with ion-exchange method was used."( Exploring the resourcing technology of condensate using ozonation combined with ion-exchange in ethanol fermentation.
Li, Z; Sheng, X; Zhang, J, 2022
)
0.72
" Also, NaB combined with treadmill exercise decreased miR-34a (p < 0."( miR-34a/SIRT1/HIF-1α axis is involved in cardiac angiogenesis of type 2 diabetic rats: The protective effect of sodium butyrate combined with treadmill exercise.
Eidi, A; Ghorbanzadeh, V; Moghaddasi, M; Mortazavi, P; Sarlak, Z,
)
0.13

Bioavailability

ExcerptReferenceRelevance
" These were infused into the isolated and emptied ruminoreticulum, and the absorption rate of water and each components were studied for 3 hrs."( Effects of osmolality on water, electrolytes and VFAs absorption from the isolated ruminoreticulum in the cow.
Ikeda, K; Kadota, E; Murakami, Y; Sasaki, N; Tabaru, H; Takeuchi, A; Yamada, H, 1990
)
0.28
" The respiratory bioavailability of n-butyl acetate (100% of alveolar ventilation) and n-butanol (50% of alveolar ventilation) was estimated from closed chamber inhalation studies and measured ventilation rates."( Derivation of a human equivalent concentration for n-butanol using a physiologically based pharmacokinetic model for n-butyl acetate and metabolites n-butanol and n-butyric acid.
Barton, HA; Clewell, HJ; Corley, RA; Deisinger, PJ; English, JC; Faber, WD; Poet, TS; Teeguarden, JG, 2005
)
0.52
" The present study demonstrates that, in broilers, effects of butyrate on digestive processes are conditioned by the GIT segment wherein the molecule is present and indicates its influence on digestive function and bioavailability of AA."( Butyrate presence in distinct gastrointestinal tract segments modifies differentially digestive processes and amino acid bioavailability in young broiler chickens.
Hendriks, WH; Kwakkel, RP; Moquet, PCA; Onrust, L; Salami, SA, 2018
)
0.48
" The aim of this investigation is to provide preliminary information on its pharmacokinetic and toxicological properties through the study of a) in vivo bioavailability of FBA administered by oral gavage to male and female Swiss CD1 mice in comparison with sodium butyrate, b) the influence of digestion on FBA stability through an in vitro simulated oro-gastro-duodenal digestion process, and c) in vitro toxicological profile by means of the Ames Test and Micronucleus Test."( In vivo bioavailability and in vitro toxicological evaluation of the new butyric acid releaser N-(1-carbamoyl-2-phenyl-ethyl) butyramide.
Badolati, N; Campiglia, P; Dacrema, M; Daglia, M; De Filippis, A; Russo, R; Santarcangelo, C; Sommella, E; Stornaiuolo, M, 2021
)
0.85

Dosage Studied

ExcerptRelevanceReference
" Addition of either buffer to the diet reduced ruminal fluid hydrogen ion concentration from 0 to 6 h postfeeding; only NaHCO3 reduced ruminal fluid acidity when dosed via the cannula."( Sodium bicarbonate or multielement buffer via diet or rumen: effects on performance and acid-base status of lactating cows.
Adams, GD; Aslam, M; Buchanan, DS; Hogue, JF; Le Ruyet, P; Lema, M; Miller, TP; Shin, IS; Tucker, WB, 1992
)
0.28
"3 mM NaB, the dosage of F6-1,25-(OH)2D3 required to inhibit cell growth and colony formation and to induce cell differentiation was significantly reduced."( Effect of hexafluoro-1,25-dihydroxyvitamin D3 and sodium butyrate combination on differentiation and proliferation of HL-60 leukemia cells.
Eguchi, T; Ikekawa, N; Saijo, N; Tanaka, Y; Yoshida, M,
)
0.13
" Different dosage regimens may have advantages and are discussed."( The long-term effects of 5-fluorouracil and sodium butyrate on human Tenon's fibroblasts.
Grierson, I; Hitchings, RA; Khaw, PT; Porter, A; Rice, NS; Ward, S, 1992
)
0.28
"8 mM Ca2+, the rate of glycogen breakdown was increased by theophylline in a dose-dependent manner and the dose-response curve was somewhat similar to that obtained with oxygen uptake."( Ca2+ requirement for metabolic effects of secretagogues in the amphibian gastric mucosa.
Chacín, J; Lobo, P; Subero, O, 1989
)
0.28
" The dose-response curve for 0-10% CO2 was S-shaped."( Regulation of lung surfactant secretion by intracellular pH.
Chander, A, 1989
)
0.28
" For both fatty acids there was a close parallelism between the dose-response curve for the inhibition of turnover of [3H]acetate from the histones and the increase in receptor levels."( Short chain fatty acids modulate nuclear receptor and extranuclear L-triiodothyronine levels in glial C6 cells by different mechanisms.
Aranda, A; Montiel, F; Ortiz-Caro, J; Pascual, A; Yusta, B, 1988
)
0.27
" at a dosage of 500 mg/kg/day as continuous infusion over 10 days."( Clinical pharmacology of sodium butyrate in patients with acute leukemia.
Kurschel, E; Miller, AA; Osieka, R; Schmidt, CG, 1987
)
0.27
" There was a striking similarity in the dose-response of butyrate for increasing receptor levels and inhibiting histone deacetylation."( Modulation of thyroid hormone nuclear receptors by short-chain fatty acids in glial C6 cells. Role of histone acetylation.
Aranda, A; Montiel, F; Ortiz-Caro, J; Pascual, A, 1986
)
0.27
" We found that butyrate stimulated fibronectin synthesis in a dose-response fashion, and that butyrate had a greater stimulatory effect than did any of its derivatives examined."( Butyrate stimulates fibronectin synthesis in cultured rabbit cornea.
Nishida, T; Tanaka, H, 1985
)
0.27
" Male Sprague-Dawley rats were rendered physically dependent on ethanol by intragastric administration of ethanol at a dosage of 9 to 15 grams per kilogram per day over a 4-day period."( Suppression of an ethanol withdrawal syndrome in rats by butyrate, lactate and beta-hydroxybutyrate.
Derr, M; Derr, RF; Draves, K, 1983
)
0.27
"3) were determined in growth-stimulated 3T6 cells which contained wild-type dosage of the gene coding for this enzyme."( Increased levels of dihydrofolate reductase mRNA can be measured in normal, growth-stimulated mouse fibroblasts.
Hofbauer, R; Müllner, E; Wintersberger, E, 1983
)
0.27
"53 mmole/min/kg body weight and intraruminal dosage with 19."( Excess rumen product anions in cattle. II. Toxic and lethal effects with butyrate.
Bide, RW; Dorward, WJ, 1983
)
0.27
"3 kg of DM/d) dosed into the rumen or fish meal (1."( Effects of ruminal versus duodenal dosing of fish meal on ruminal fermentation and milk composition.
Caja, G; Calsamiglia, S; Crooker, BA; Stern, MD, 1995
)
0.29
"The dose-response relationship among dietary fiber, colonic fermentation, fecal weight, and mucosal growth were evaluated in this study."( Evaluation in rats of the dose-response relationship among colonic mucosal growth, colonic fermentation, and dietary fiber.
Bertram, TA; Higgins, JM; Purdon, MP; Ridder, GM; Whiteley, LO, 1996
)
0.29
" After 4 days of infusion however, and despite repeated pulse dosage of BES, methanogenesis adapted to BES and methane concentration in rumen gases reached 20%."( Attempts to induce reductive acetogenesis into a sheep rumen.
Demeyer, D; Fiedler, D; Immig, I; Mbanzamihigo, L; Van Nevel, C, 1996
)
0.29
" However, application of these drugs at large is not yet justified because a series of questions concerning their long-term efficacy, the correct dosage and timing, their tolerance and toxicity, and the potential long-term dangers, including mutagenicity are still unresolved."( New therapies for the haemoglobinopathies.
Loukopoulos, D, 1997
)
0.3
" Co-incubating 0-10 nmol/l T3 with 100 nmol/l insulin resulted in a downward shift in the dose-response curve without a change in the half-maximal response to T3."( Modulation of T3-induced sex hormone-binding globulin secretion by human hepatoblastoma cells.
Barlow, JW; Lim, CF; Loidl, NM; Payne, KL; Stockigt, JR; Topliss, DJ, 1997
)
0.3
" Highly dosed butyrate pellets (90%) were prepared and their coating was designed for colonic delivery."( Colonic delivery of sodium butyrate via oral route: acrylic coating design of pellets and in vivo evaluation in rats.
Andrieux, C; Chaumeil, JC; Cherbuy, C; Darcy-Vrillon, B; Duée, PH; Tuleu, C, 2001
)
0.31
"Tethering of growth factors to biomaterial substrates via a polyethylene glycol (PEG) spacer has been established as a means of controlling dosage and conformation of the protein at the material surface, while retaining biological activity."( Characterization of EGF coupling to aminated silicone rubber surfaces.
Klenkler, BJ; Sheardown, H, 2006
)
0.33
" When the dosage of chelating agent A was 10 micromol/L, the methane production was, respectively, 19."( [Effect of metal chelating agent on anaerobic digestion under different substrates].
Chen, J; Hu, QH; Li, XF, 2009
)
0.35
" We investigated various butanol production systems with high density of living cells of Clostridium saccharoperbutylacetonicum N1-4 supplemented with methyl viologen (MV) as an electron carrier and nutrient dosing for activity regeneration."( Development of high-speed and highly efficient butanol production systems from butyric acid with high density of living cells of Clostridium saccharoperbutylacetonicum.
Baba, S; Shinto, H; Sonomoto, K; Tashiro, Y, 2012
)
0.61
" Based on the results of this research related to BW gain and feed conversion, the recommended optimum dosage level for ButiPEARL in broilers reared to 42 d of age is up to 500 g/ton."( Effect of feeding an encapsulated source of butyric acid (ButiPEARL) on the performance of male Cobb broilers reared to 42 d of age.
Fuller, L; Kessler, JW; Levy, AW; Lumpkins, B; Mathis, GF; Valdez, F; Williams, S, 2015
)
0.68
" Fermentation of 65 % B-GOS was compared with 52 % B-GOS in pH- and volume-controlled dose-response anaerobic batch culture experiments."( Fermentation properties and potential prebiotic activity of Bimuno® galacto-oligosaccharide (65 % galacto-oligosaccharide content) on in vitro gut microbiota parameters.
Costabile, A; Gibson, GR; Grimaldi, R; Swann, JR; Vulevic, J, 2016
)
0.43
" However, the effects of elevated butyrate concentrations on rumen metabolism have not been investigated, and consequently the maximum tolerable dosage rate of butyrate has not been established."( Single-dose infusion of sodium butyrate, but not lactose, increases plasma β-hydroxybutyrate and insulin in lactating dairy cows.
Casper, DP; Herrick, KJ; Hippen, AR; Kalscheur, KF; Moreland, SC; Schingoethe, DJ; van Eys, JE, 2017
)
0.46
" The beneficial effects on intestinal morphology and IDE are affected not only by dosage level, but also by the product's releasing time."( Evaluation of encapsulated sodium butyrate on growth performance, energy digestibility, gut development, and Salmonella colonization in broilers.
Bayir, HO; Cosby, DE; Cox, NA; Fowler, J; Liu, JD; Williams, SM, 2017
)
0.46
" With a biochar dosage of 15 g/L, the system performed well under an organic loading rate as high as 3 g substrate/g inoculums."( Synergetic promotion of syntrophic methane production from anaerobic digestion of complex organic wastes by biochar: Performance and associated mechanisms.
Gao, X; Li, Q; Wang, G; Wang, XC, 2018
)
0.48
" These results can be used in the selection of the correct dosage of drugs for the effective\ combined anti-cancer therapy using HDIs and AMD."( SODIUM BUTYRATE ENHANCES THE ANTIPROLIFERATIVE EFFECT OF HIGH CONCENTRATIONS OF ACTINOMYCIN D.
Filippova, EA; Gnedina, OO; Igotti, MV; ospelov, VA; Svetlikova, SB,
)
0.13
" To help choose the best dose of d-gal for the induction of the aging model, we performed a dose-response curve (100, 200 or 300 mg/kg)."( Sodium butyrate improves memory and modulates the activity of histone deacetylases in aged rats after the administration of d-galactose.
Bellettini-Santos, T; Budni, J; Campos, ACBF; da Silva, S; Damiani, AP; de Andrade, VM; de Carvalho, CA; Garcez, ML; Longaretti, LM; Mina, F; Schiavo, GL; Valvassori, SS; Varela, RB, 2018
)
0.48
" In addition, NaBu administration inhibited tumor growth in vivo at a dosage of 500 mg/kg/day, but it did not cause any hepatic or renal toxicity."( Down-regulation and nuclear localization of survivin by sodium butyrate induces caspase-dependent apoptosis in human oral mucoepidermoid carcinoma.
Cho, NP; Cho, SD; Hong, SD; Jang, B; Jin, B; Jung, YC; Lee, W; Shin, JA; Yang, IH, 2019
)
0.51
" This study investigates whether a butyric acid ester, monobutyrin (MB) affects lipid profiles and gut barrier function in a dose-response manner in rats fed butter- or lard-based high-fat diets."( Monobutyrin Reduces Liver Cholesterol and Improves Intestinal Barrier Function in Rats Fed High-Fat Diets.
Hållenius, FF; Nguyen, TD; Nyman, M; Prykhodko, O, 2019
)
0.79
" C4 dose-response experiments in the presence or absence of cytokines were performed in a co-culture system including Caco-2 cells, HepG2 cells, or both."( Butyric Acid Added Apically to Intestinal Caco-2 Cells Elevates Hepatic ApoA-I Transcription and Rescues Lower ApoA-I Expression in Inflamed HepG2 Cells Co-Cultured in the Basolateral Compartment.
Mensink, RP; Plat, J; Popeijus, HE; Tayyeb, JZ, 2021
)
2.06
", Spain, dosed at 1 kg/t), on performance, diet digestibility, intestinal morphology, volatile fatty acid concentration (VFA) in the GIT and intestinal microbiota of broiler chickens, when fed diets with different energy and amino acids concentration."( Evaluation of sodium butyrate and nutrient concentration for broiler chickens.
Applegate, TJ; Bortoluzzi, C; Mallo, JJ; Puyalto, M; Sol, C; Villamide, MJ, 2021
)
0.62
" Furthermore, the non-cytolytic and non-cytotoxic metronomic hydroxyurea dosage increased the biological therapy outcome by strengthening antitumor capability."( A retrospective observational study on cases of osteosarcomas treated with a multitherapy: The rationale and effectiveness.
Borghetto, V; Costanzo, E; Di Bella, G; Di Bella, L; Moscato, I, 2022
)
0.72
" No induction of apoptosis was observed under a high dosage of NaBu treatment."( Enhancement of recombinant human IL-24 (rhIL-24) protein production from site-specific integrated engineered CHO cells by sodium butyrate treatment.
Ge, J; Hou, L; Hua, J; Jiang, H; Liu, M; Shi, Y; Wang, Y; Wei, Y; Xu, H; Zhang, Y, 2022
)
0.72
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Occurs in Manufacturing (2 Product(s))

Product Categories

Product CategoryProducts
Vitamins & Supplements2

Products

ProductBrandCategoryCompounds Matched from IngredientsDate Retrieved
Jigsaw Health Pureway-C Plus™ -- 120 CapsulesJigsaw HealthVitamins & SupplementsVitamin C, fatty acids, microcrystalline cellulose, L-Lysine, maltodextrin2024-11-29 10:47:42
NutriCology ButyrAid -- 100 Delayed Release Vegetarian CapsulesNutriCologyVitamins & SupplementsButyric Acid2024-11-29 10:47:42

Roles (2)

RoleDescription
Mycoplasma genitalium metaboliteAny bacterial metabolite produced during a metabolic reaction in Mycoplasma genitalium.
human urinary metaboliteAny metabolite (endogenous or exogenous) found in human urine samples.
[role information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Drug Classes (2)

ClassDescription
straight-chain saturated fatty acidAny saturated fatty acid lacking a side-chain.
fatty acid 4:0Any saturated fatty acid containing 4 carbons.
[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 (4)

PathwayProteinsCompounds
Butyrate Metabolism718
Fatty Acid Biosynthesis233
fatty acid oxidation (Butanoate)613
Butanoate metabolism ( Butanoate metabolism )1518
Fatty Acid Oxidation (Butanoate)113

Protein Targets (28)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
SMAD family member 2Homo sapiens (human)Potency23.00650.173734.304761.8120AID1346859
SMAD family member 3Homo sapiens (human)Potency23.00650.173734.304761.8120AID1346859
nuclear receptor subfamily 1, group I, member 3Homo sapiens (human)Potency24.17180.001022.650876.6163AID1224893
retinoic acid nuclear receptor alpha variant 1Homo sapiens (human)Potency43.28020.003041.611522,387.1992AID1159552; AID1159555
estrogen-related nuclear receptor alphaHomo sapiens (human)Potency68.58960.001530.607315,848.9004AID1224841
estrogen nuclear receptor alphaHomo sapiens (human)Potency20.50460.000229.305416,493.5996AID743075
cytochrome P450, family 19, subfamily A, polypeptide 1, isoform CRA_aHomo sapiens (human)Potency68.58960.001723.839378.1014AID743083
thyroid stimulating hormone receptorHomo sapiens (human)Potency72.16220.001628.015177.1139AID1259385
nuclear factor of kappa light polypeptide gene enhancer in B-cells 1 (p105), isoform CRA_aHomo sapiens (human)Potency0.691719.739145.978464.9432AID1159509
nuclear factor erythroid 2-related factor 2 isoform 1Homo sapiens (human)Potency57.32050.000627.21521,122.0200AID743219
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Inhibition Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, Nitrile Hydratase alpha subunitPseudonocardia thermophilaKi1,300.00001,300.00001,300.00001,300.0000AID977610
Chain B, Nitrile Hydratase beta subunitPseudonocardia thermophilaKi1,300.00001,300.00001,300.00001,300.0000AID977610
Lysine-specific demethylase 4EHomo sapiens (human)IC50 (µMol)10,000.00000.20001.95696.3096AID1798635
Histone deacetylase 3Homo sapiens (human)IC50 (µMol)9.00000.00040.619610.0000AID569930
Histone deacetylase 3Homo sapiens (human)Ki136.00000.00020.42378.1900AID447579
Histone deacetylase 4Homo sapiens (human)IC50 (µMol)2,000.00000.00061.052610.0000AID569932
Histone deacetylase 4Homo sapiens (human)Ki136.00000.00021.62559.1242AID447579
Histone deacetylase 1Homo sapiens (human)IC50 (µMol)158.00000.00010.55439.9000AID1882456; AID569928
Histone deacetylase 1Homo sapiens (human)Ki136.00000.00000.49888.1900AID447579
Solute carrier family 22 member 20Mus musculus (house mouse)Ki81.64151.10006.67899.1201AID360149
Solute carrier family 22 member 6Mus musculus (house mouse)Ki3,483.68510.40745.02179.4000AID360150
Histone deacetylase 7Homo sapiens (human)IC50 (µMol)1,150.00000.00071.02609.9000AID1882458; AID569934
Histone deacetylase 7Homo sapiens (human)Ki136.00000.00022.00059.5000AID447579
Histone deacetylase 2Homo sapiens (human)IC50 (µMol)206.00000.00010.72219.9700AID1882457; AID569929
Histone deacetylase 2Homo sapiens (human)Ki136.00000.00000.47098.1900AID447579
Polyamine deacetylase HDAC10Homo sapiens (human)Ki136.00000.00000.76878.1900AID447579
Histone deacetylase 11 Homo sapiens (human)Ki136.00000.00011.21478.1900AID447579
Histone deacetylase 8Homo sapiens (human)IC50 (µMol)15.00000.00070.99479.9000AID569931
Histone deacetylase 8Homo sapiens (human)Ki136.00000.00020.75258.1900AID447579
Histone deacetylase 6Homo sapiens (human)IC50 (µMol)2,000.00000.00000.53769.9000AID569936
Histone deacetylase 6Homo sapiens (human)Ki136.00000.00010.41568.1900AID447579
Histone deacetylase 9Homo sapiens (human)IC50 (µMol)2,000.00000.00050.94139.9000AID569935
Histone deacetylase 9Homo sapiens (human)Ki136.00000.00021.85209.0000AID447579
Histone deacetylase 5Homo sapiens (human)IC50 (µMol)2,000.00000.00070.961010.0000AID569933
Histone deacetylase 5Homo sapiens (human)Ki136.00000.00021.29939.5000AID447579
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Activation Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Methyl-accepting chemotaxis protein NahYPseudomonas putidaKd92.00008.50008.50008.5000AID1799787
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (197)

Processvia Protein(s)Taxonomy
regulation of gene expressionLysine-specific demethylase 4EHomo sapiens (human)
chromatin remodelingLysine-specific demethylase 4EHomo sapiens (human)
mucosal immune responseFree fatty acid receptor 3Homo sapiens (human)
positive regulation of cytokine production involved in immune responseFree fatty acid receptor 3Homo sapiens (human)
positive regulation of acute inflammatory response to non-antigenic stimulusFree fatty acid receptor 3Homo sapiens (human)
inflammatory responseFree fatty acid receptor 3Homo sapiens (human)
G protein-coupled receptor signaling pathwayFree fatty acid receptor 3Homo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled receptor signaling pathwayFree fatty acid receptor 3Homo sapiens (human)
regulation of norepinephrine secretionFree fatty acid receptor 3Homo sapiens (human)
positive regulation of chemokine productionFree fatty acid receptor 3Homo sapiens (human)
negative regulation of blood pressureFree fatty acid receptor 3Homo sapiens (human)
regulation of insulin receptor signaling pathwayFree fatty acid receptor 3Homo sapiens (human)
regulation of hormone biosynthetic processFree fatty acid receptor 3Homo sapiens (human)
cellular response to fatty acidFree fatty acid receptor 3Homo sapiens (human)
regulation of peptide hormone secretionFree fatty acid receptor 3Homo sapiens (human)
negative regulation of myotube differentiationHistone deacetylase 3Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 3Homo sapiens (human)
establishment of mitotic spindle orientationHistone deacetylase 3Homo sapiens (human)
in utero embryonic developmentHistone deacetylase 3Homo sapiens (human)
positive regulation of protein phosphorylationHistone deacetylase 3Homo sapiens (human)
chromatin organizationHistone deacetylase 3Homo sapiens (human)
transcription by RNA polymerase IIHistone deacetylase 3Homo sapiens (human)
protein deacetylationHistone deacetylase 3Homo sapiens (human)
regulation of mitotic cell cycleHistone deacetylase 3Homo sapiens (human)
positive regulation of protein ubiquitinationHistone deacetylase 3Homo sapiens (human)
regulation of protein stabilityHistone deacetylase 3Homo sapiens (human)
positive regulation of TOR signalingHistone deacetylase 3Homo sapiens (human)
circadian regulation of gene expressionHistone deacetylase 3Homo sapiens (human)
regulation of multicellular organism growthHistone deacetylase 3Homo sapiens (human)
positive regulation of protein import into nucleusHistone deacetylase 3Homo sapiens (human)
regulation of circadian rhythmHistone deacetylase 3Homo sapiens (human)
negative regulation of apoptotic processHistone deacetylase 3Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 3Homo sapiens (human)
positive regulation of transcription by RNA polymerase IIHistone deacetylase 3Homo sapiens (human)
negative regulation of JNK cascadeHistone deacetylase 3Homo sapiens (human)
spindle assemblyHistone deacetylase 3Homo sapiens (human)
establishment of skin barrierHistone deacetylase 3Homo sapiens (human)
cellular response to fluid shear stressHistone deacetylase 3Homo sapiens (human)
positive regulation of cold-induced thermogenesisHistone deacetylase 3Homo sapiens (human)
DNA repair-dependent chromatin remodelingHistone deacetylase 3Homo sapiens (human)
cornified envelope assemblyHistone deacetylase 3Homo sapiens (human)
negative regulation of cardiac muscle cell differentiationHistone deacetylase 3Homo sapiens (human)
epigenetic regulation of gene expressionHistone deacetylase 3Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 4Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 4Homo sapiens (human)
chromatin remodelingHistone deacetylase 4Homo sapiens (human)
protein deacetylationHistone deacetylase 4Homo sapiens (human)
inflammatory responseHistone deacetylase 4Homo sapiens (human)
nervous system developmentHistone deacetylase 4Homo sapiens (human)
positive regulation of cell population proliferationHistone deacetylase 4Homo sapiens (human)
negative regulation of myotube differentiationHistone deacetylase 4Homo sapiens (human)
negative regulation of transcription by competitive promoter bindingHistone deacetylase 4Homo sapiens (human)
response to denervation involved in regulation of muscle adaptationHistone deacetylase 4Homo sapiens (human)
cardiac muscle hypertrophy in response to stressHistone deacetylase 4Homo sapiens (human)
protein sumoylationHistone deacetylase 4Homo sapiens (human)
B cell differentiationHistone deacetylase 4Homo sapiens (human)
positive regulation of protein sumoylationHistone deacetylase 4Homo sapiens (human)
peptidyl-lysine deacetylationHistone deacetylase 4Homo sapiens (human)
B cell activationHistone deacetylase 4Homo sapiens (human)
regulation of protein bindingHistone deacetylase 4Homo sapiens (human)
negative regulation of DNA-binding transcription factor activityHistone deacetylase 4Homo sapiens (human)
negative regulation of gene expression, epigeneticHistone deacetylase 4Homo sapiens (human)
negative regulation of glycolytic processHistone deacetylase 4Homo sapiens (human)
positive regulation of DNA-templated transcriptionHistone deacetylase 4Homo sapiens (human)
positive regulation of transcription by RNA polymerase IIHistone deacetylase 4Homo sapiens (human)
positive regulation of DNA-binding transcription factor activityHistone deacetylase 4Homo sapiens (human)
type I interferon-mediated signaling pathwayHistone deacetylase 4Homo sapiens (human)
response to interleukin-1Histone deacetylase 4Homo sapiens (human)
negative regulation of myotube differentiationHistone deacetylase 1Homo sapiens (human)
negative regulation of apoptotic processHistone deacetylase 1Homo sapiens (human)
positive regulation of signaling receptor activityHistone deacetylase 1Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 1Homo sapiens (human)
chromatin organizationHistone deacetylase 1Homo sapiens (human)
chromatin remodelingHistone deacetylase 1Homo sapiens (human)
DNA methylation-dependent heterochromatin formationHistone deacetylase 1Homo sapiens (human)
regulation of transcription by RNA polymerase IIHistone deacetylase 1Homo sapiens (human)
protein deacetylationHistone deacetylase 1Homo sapiens (human)
endoderm developmentHistone deacetylase 1Homo sapiens (human)
positive regulation of cell population proliferationHistone deacetylase 1Homo sapiens (human)
epidermal cell differentiationHistone deacetylase 1Homo sapiens (human)
positive regulation of gene expressionHistone deacetylase 1Homo sapiens (human)
negative regulation of gene expressionHistone deacetylase 1Homo sapiens (human)
hippocampus developmentHistone deacetylase 1Homo sapiens (human)
neuron differentiationHistone deacetylase 1Homo sapiens (human)
negative regulation of cell migrationHistone deacetylase 1Homo sapiens (human)
negative regulation of transforming growth factor beta receptor signaling pathwayHistone deacetylase 1Homo sapiens (human)
circadian regulation of gene expressionHistone deacetylase 1Homo sapiens (human)
cellular response to platelet-derived growth factor stimulusHistone deacetylase 1Homo sapiens (human)
odontogenesis of dentin-containing toothHistone deacetylase 1Homo sapiens (human)
regulation of cell fate specificationHistone deacetylase 1Homo sapiens (human)
embryonic digit morphogenesisHistone deacetylase 1Homo sapiens (human)
negative regulation of apoptotic processHistone deacetylase 1Homo sapiens (human)
negative regulation of canonical NF-kappaB signal transductionHistone deacetylase 1Homo sapiens (human)
negative regulation by host of viral transcriptionHistone deacetylase 1Homo sapiens (human)
negative regulation of gene expression, epigeneticHistone deacetylase 1Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 1Homo sapiens (human)
positive regulation of DNA-templated transcriptionHistone deacetylase 1Homo sapiens (human)
positive regulation of transcription by RNA polymerase IIHistone deacetylase 1Homo sapiens (human)
positive regulation of smooth muscle cell proliferationHistone deacetylase 1Homo sapiens (human)
oligodendrocyte differentiationHistone deacetylase 1Homo sapiens (human)
positive regulation of oligodendrocyte differentiationHistone deacetylase 1Homo sapiens (human)
negative regulation of androgen receptor signaling pathwayHistone deacetylase 1Homo sapiens (human)
hair follicle placode formationHistone deacetylase 1Homo sapiens (human)
eyelid development in camera-type eyeHistone deacetylase 1Homo sapiens (human)
fungiform papilla formationHistone deacetylase 1Homo sapiens (human)
negative regulation of canonical Wnt signaling pathwayHistone deacetylase 1Homo sapiens (human)
negative regulation of stem cell population maintenanceHistone deacetylase 1Homo sapiens (human)
positive regulation of stem cell population maintenanceHistone deacetylase 1Homo sapiens (human)
regulation of stem cell differentiationHistone deacetylase 1Homo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathwayHistone deacetylase 1Homo sapiens (human)
heterochromatin formationHistone deacetylase 1Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 7Homo sapiens (human)
vasculogenesisHistone deacetylase 7Homo sapiens (human)
chromatin remodelingHistone deacetylase 7Homo sapiens (human)
protein deacetylationHistone deacetylase 7Homo sapiens (human)
cell-cell junction assemblyHistone deacetylase 7Homo sapiens (human)
protein sumoylationHistone deacetylase 7Homo sapiens (human)
negative regulation of interleukin-2 productionHistone deacetylase 7Homo sapiens (human)
negative regulation of osteoblast differentiationHistone deacetylase 7Homo sapiens (human)
regulation of mRNA processingHistone deacetylase 7Homo sapiens (human)
positive regulation of cell migration involved in sprouting angiogenesisHistone deacetylase 7Homo sapiens (human)
negative regulation of non-canonical NF-kappaB signal transductionHistone deacetylase 7Homo sapiens (human)
positive regulation of signaling receptor activityHistone deacetylase 2Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 2Homo sapiens (human)
response to amphetamineHistone deacetylase 2Homo sapiens (human)
cardiac muscle hypertrophyHistone deacetylase 2Homo sapiens (human)
chromatin remodelingHistone deacetylase 2Homo sapiens (human)
positive regulation of cell population proliferationHistone deacetylase 2Homo sapiens (human)
response to xenobiotic stimulusHistone deacetylase 2Homo sapiens (human)
epidermal cell differentiationHistone deacetylase 2Homo sapiens (human)
positive regulation of epithelial to mesenchymal transitionHistone deacetylase 2Homo sapiens (human)
negative regulation of transcription by competitive promoter bindingHistone deacetylase 2Homo sapiens (human)
negative regulation of neuron projection developmentHistone deacetylase 2Homo sapiens (human)
dendrite developmentHistone deacetylase 2Homo sapiens (human)
negative regulation of cell migrationHistone deacetylase 2Homo sapiens (human)
negative regulation of transforming growth factor beta receptor signaling pathwayHistone deacetylase 2Homo sapiens (human)
response to caffeineHistone deacetylase 2Homo sapiens (human)
heterochromatin formationHistone deacetylase 2Homo sapiens (human)
response to lipopolysaccharideHistone deacetylase 2Homo sapiens (human)
positive regulation of interleukin-1 productionHistone deacetylase 2Homo sapiens (human)
positive regulation of tumor necrosis factor productionHistone deacetylase 2Homo sapiens (human)
circadian regulation of gene expressionHistone deacetylase 2Homo sapiens (human)
positive regulation of collagen biosynthetic processHistone deacetylase 2Homo sapiens (human)
cellular response to heatHistone deacetylase 2Homo sapiens (human)
response to nicotineHistone deacetylase 2Homo sapiens (human)
protein modification processHistone deacetylase 2Homo sapiens (human)
response to cocaineHistone deacetylase 2Homo sapiens (human)
odontogenesis of dentin-containing toothHistone deacetylase 2Homo sapiens (human)
positive regulation of tyrosine phosphorylation of STAT proteinHistone deacetylase 2Homo sapiens (human)
regulation of cell fate specificationHistone deacetylase 2Homo sapiens (human)
embryonic digit morphogenesisHistone deacetylase 2Homo sapiens (human)
negative regulation of apoptotic processHistone deacetylase 2Homo sapiens (human)
negative regulation of DNA-binding transcription factor activityHistone deacetylase 2Homo sapiens (human)
negative regulation of MHC class II biosynthetic processHistone deacetylase 2Homo sapiens (human)
positive regulation of proteolysisHistone deacetylase 2Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 2Homo sapiens (human)
positive regulation of DNA-templated transcriptionHistone deacetylase 2Homo sapiens (human)
positive regulation of transcription by RNA polymerase IIHistone deacetylase 2Homo sapiens (human)
behavioral response to ethanolHistone deacetylase 2Homo sapiens (human)
positive regulation of oligodendrocyte differentiationHistone deacetylase 2Homo sapiens (human)
response to hyperoxiaHistone deacetylase 2Homo sapiens (human)
hair follicle placode formationHistone deacetylase 2Homo sapiens (human)
negative regulation of dendritic spine developmentHistone deacetylase 2Homo sapiens (human)
eyelid development in camera-type eyeHistone deacetylase 2Homo sapiens (human)
fungiform papilla formationHistone deacetylase 2Homo sapiens (human)
cellular response to hydrogen peroxideHistone deacetylase 2Homo sapiens (human)
cellular response to retinoic acidHistone deacetylase 2Homo sapiens (human)
cellular response to transforming growth factor beta stimulusHistone deacetylase 2Homo sapiens (human)
positive regulation of male mating behaviorHistone deacetylase 2Homo sapiens (human)
negative regulation of stem cell population maintenanceHistone deacetylase 2Homo sapiens (human)
positive regulation of stem cell population maintenanceHistone deacetylase 2Homo sapiens (human)
cellular response to dopamineHistone deacetylase 2Homo sapiens (human)
response to amyloid-betaHistone deacetylase 2Homo sapiens (human)
regulation of stem cell differentiationHistone deacetylase 2Homo sapiens (human)
negative regulation of peptidyl-lysine acetylationHistone deacetylase 2Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIPolyamine deacetylase HDAC10Homo sapiens (human)
DNA repairPolyamine deacetylase HDAC10Homo sapiens (human)
chromatin organizationPolyamine deacetylase HDAC10Homo sapiens (human)
regulation of DNA-templated transcriptionPolyamine deacetylase HDAC10Homo sapiens (human)
macroautophagyPolyamine deacetylase HDAC10Homo sapiens (human)
positive regulation of mismatch repairPolyamine deacetylase HDAC10Homo sapiens (human)
homologous recombinationPolyamine deacetylase HDAC10Homo sapiens (human)
negative regulation of DNA-templated transcriptionPolyamine deacetylase HDAC10Homo sapiens (human)
polyamine deacetylationPolyamine deacetylase HDAC10Homo sapiens (human)
spermidine deacetylationPolyamine deacetylase HDAC10Homo sapiens (human)
epigenetic regulation of gene expressionPolyamine deacetylase HDAC10Homo sapiens (human)
chromatin organizationHistone deacetylase 11 Homo sapiens (human)
oligodendrocyte developmentHistone deacetylase 11 Homo sapiens (human)
epigenetic regulation of gene expressionHistone deacetylase 11 Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 8Homo sapiens (human)
chromatin organizationHistone deacetylase 8Homo sapiens (human)
mitotic sister chromatid cohesionHistone deacetylase 8Homo sapiens (human)
negative regulation of protein ubiquitinationHistone deacetylase 8Homo sapiens (human)
regulation of protein stabilityHistone deacetylase 8Homo sapiens (human)
regulation of telomere maintenanceHistone deacetylase 8Homo sapiens (human)
epigenetic regulation of gene expressionHistone deacetylase 8Homo sapiens (human)
polyamine deacetylationHistone deacetylase 6Homo sapiens (human)
spermidine deacetylationHistone deacetylase 6Homo sapiens (human)
positive regulation of signaling receptor activityHistone deacetylase 6Homo sapiens (human)
protein polyubiquitinationHistone deacetylase 6Homo sapiens (human)
response to amphetamineHistone deacetylase 6Homo sapiens (human)
protein deacetylationHistone deacetylase 6Homo sapiens (human)
protein quality control for misfolded or incompletely synthesized proteinsHistone deacetylase 6Homo sapiens (human)
intracellular protein transportHistone deacetylase 6Homo sapiens (human)
autophagyHistone deacetylase 6Homo sapiens (human)
actin filament organizationHistone deacetylase 6Homo sapiens (human)
negative regulation of microtubule depolymerizationHistone deacetylase 6Homo sapiens (human)
regulation of autophagyHistone deacetylase 6Homo sapiens (human)
positive regulation of epithelial cell migrationHistone deacetylase 6Homo sapiens (human)
negative regulation of hydrogen peroxide metabolic processHistone deacetylase 6Homo sapiens (human)
regulation of macroautophagyHistone deacetylase 6Homo sapiens (human)
axonal transport of mitochondrionHistone deacetylase 6Homo sapiens (human)
negative regulation of protein-containing complex assemblyHistone deacetylase 6Homo sapiens (human)
regulation of protein stabilityHistone deacetylase 6Homo sapiens (human)
protein destabilizationHistone deacetylase 6Homo sapiens (human)
lysosome localizationHistone deacetylase 6Homo sapiens (human)
protein-containing complex disassemblyHistone deacetylase 6Homo sapiens (human)
positive regulation of peptidyl-serine phosphorylationHistone deacetylase 6Homo sapiens (human)
cellular response to heatHistone deacetylase 6Homo sapiens (human)
peptidyl-lysine deacetylationHistone deacetylase 6Homo sapiens (human)
response to immobilization stressHistone deacetylase 6Homo sapiens (human)
cellular response to topologically incorrect proteinHistone deacetylase 6Homo sapiens (human)
erythrocyte enucleationHistone deacetylase 6Homo sapiens (human)
ubiquitin-dependent protein catabolic process via the multivesicular body sorting pathwayHistone deacetylase 6Homo sapiens (human)
negative regulation of protein-containing complex disassemblyHistone deacetylase 6Homo sapiens (human)
regulation of fat cell differentiationHistone deacetylase 6Homo sapiens (human)
negative regulation of gene expression, epigeneticHistone deacetylase 6Homo sapiens (human)
negative regulation of proteolysisHistone deacetylase 6Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 6Homo sapiens (human)
collateral sproutingHistone deacetylase 6Homo sapiens (human)
negative regulation of axon extension involved in axon guidanceHistone deacetylase 6Homo sapiens (human)
positive regulation of dendrite morphogenesisHistone deacetylase 6Homo sapiens (human)
negative regulation of oxidoreductase activityHistone deacetylase 6Homo sapiens (human)
response to corticosteroneHistone deacetylase 6Homo sapiens (human)
response to misfolded proteinHistone deacetylase 6Homo sapiens (human)
positive regulation of synaptic transmission, glutamatergicHistone deacetylase 6Homo sapiens (human)
cilium assemblyHistone deacetylase 6Homo sapiens (human)
regulation of microtubule-based movementHistone deacetylase 6Homo sapiens (human)
regulation of androgen receptor signaling pathwayHistone deacetylase 6Homo sapiens (human)
dendritic spine morphogenesisHistone deacetylase 6Homo sapiens (human)
cilium disassemblyHistone deacetylase 6Homo sapiens (human)
parkin-mediated stimulation of mitophagy in response to mitochondrial depolarizationHistone deacetylase 6Homo sapiens (human)
regulation of establishment of protein localizationHistone deacetylase 6Homo sapiens (human)
cellular response to hydrogen peroxideHistone deacetylase 6Homo sapiens (human)
aggresome assemblyHistone deacetylase 6Homo sapiens (human)
polyubiquitinated misfolded protein transportHistone deacetylase 6Homo sapiens (human)
response to growth factorHistone deacetylase 6Homo sapiens (human)
cellular response to misfolded proteinHistone deacetylase 6Homo sapiens (human)
cellular response to parathyroid hormone stimulusHistone deacetylase 6Homo sapiens (human)
response to dexamethasoneHistone deacetylase 6Homo sapiens (human)
tubulin deacetylationHistone deacetylase 6Homo sapiens (human)
positive regulation of tubulin deacetylationHistone deacetylase 6Homo sapiens (human)
positive regulation of cellular response to oxidative stressHistone deacetylase 6Homo sapiens (human)
negative regulation of protein acetylationHistone deacetylase 6Homo sapiens (human)
regulation of autophagy of mitochondrionHistone deacetylase 6Homo sapiens (human)
positive regulation of cholangiocyte proliferationHistone deacetylase 6Homo sapiens (human)
negative regulation of aggrephagyHistone deacetylase 6Homo sapiens (human)
epigenetic regulation of gene expressionHistone deacetylase 6Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 9Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 9Homo sapiens (human)
negative regulation of cytokine productionHistone deacetylase 9Homo sapiens (human)
response to amphetamineHistone deacetylase 9Homo sapiens (human)
inflammatory responseHistone deacetylase 9Homo sapiens (human)
heart developmentHistone deacetylase 9Homo sapiens (human)
neuron differentiationHistone deacetylase 9Homo sapiens (human)
B cell differentiationHistone deacetylase 9Homo sapiens (human)
cellular response to insulin stimulusHistone deacetylase 9Homo sapiens (human)
peptidyl-lysine deacetylationHistone deacetylase 9Homo sapiens (human)
B cell activationHistone deacetylase 9Homo sapiens (human)
cholesterol homeostasisHistone deacetylase 9Homo sapiens (human)
negative regulation of gene expression, epigeneticHistone deacetylase 9Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 9Homo sapiens (human)
regulation of skeletal muscle fiber developmentHistone deacetylase 9Homo sapiens (human)
regulation of striated muscle cell differentiationHistone deacetylase 9Homo sapiens (human)
positive regulation of cell migration involved in sprouting angiogenesisHistone deacetylase 9Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 5Homo sapiens (human)
negative regulation of transcription by RNA polymerase IIHistone deacetylase 5Homo sapiens (human)
inflammatory responseHistone deacetylase 5Homo sapiens (human)
response to xenobiotic stimulusHistone deacetylase 5Homo sapiens (human)
regulation of myotube differentiationHistone deacetylase 5Homo sapiens (human)
negative regulation of myotube differentiationHistone deacetylase 5Homo sapiens (human)
response to activityHistone deacetylase 5Homo sapiens (human)
neuron differentiationHistone deacetylase 5Homo sapiens (human)
B cell differentiationHistone deacetylase 5Homo sapiens (human)
cellular response to insulin stimulusHistone deacetylase 5Homo sapiens (human)
B cell activationHistone deacetylase 5Homo sapiens (human)
response to cocaineHistone deacetylase 5Homo sapiens (human)
regulation of protein bindingHistone deacetylase 5Homo sapiens (human)
negative regulation of gene expression, epigeneticHistone deacetylase 5Homo sapiens (human)
negative regulation of DNA-templated transcriptionHistone deacetylase 5Homo sapiens (human)
positive regulation of transcription by RNA polymerase IIHistone deacetylase 5Homo sapiens (human)
positive regulation of DNA-binding transcription factor activityHistone deacetylase 5Homo sapiens (human)
cellular response to lipopolysaccharideHistone deacetylase 5Homo sapiens (human)
negative regulation of cell migration involved in sprouting angiogenesisHistone deacetylase 5Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (62)

Processvia Protein(s)Taxonomy
metal ion bindingLysine-specific demethylase 4EHomo sapiens (human)
histone H3K9me2/H3K9me3 demethylase activityLysine-specific demethylase 4EHomo sapiens (human)
histone H3K9 demethylase activityLysine-specific demethylase 4EHomo sapiens (human)
G protein-coupled receptor activityFree fatty acid receptor 3Homo sapiens (human)
protein bindingFree fatty acid receptor 3Homo sapiens (human)
lipid bindingFree fatty acid receptor 3Homo sapiens (human)
transcription corepressor bindingHistone deacetylase 3Homo sapiens (human)
chromatin bindingHistone deacetylase 3Homo sapiens (human)
transcription corepressor activityHistone deacetylase 3Homo sapiens (human)
histone deacetylase activityHistone deacetylase 3Homo sapiens (human)
protein bindingHistone deacetylase 3Homo sapiens (human)
enzyme bindingHistone deacetylase 3Homo sapiens (human)
cyclin bindingHistone deacetylase 3Homo sapiens (human)
chromatin DNA bindingHistone deacetylase 3Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 3Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 3Homo sapiens (human)
NF-kappaB bindingHistone deacetylase 3Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 3Homo sapiens (human)
protein decrotonylase activityHistone deacetylase 3Homo sapiens (human)
histone decrotonylase activityHistone deacetylase 3Homo sapiens (human)
protein de-2-hydroxyisobutyrylase activityHistone deacetylase 3Homo sapiens (human)
transcription cis-regulatory region bindingHistone deacetylase 4Homo sapiens (human)
histone bindingHistone deacetylase 4Homo sapiens (human)
RNA polymerase II cis-regulatory region sequence-specific DNA bindingHistone deacetylase 4Homo sapiens (human)
histone deacetylase activityHistone deacetylase 4Homo sapiens (human)
protein bindingHistone deacetylase 4Homo sapiens (human)
zinc ion bindingHistone deacetylase 4Homo sapiens (human)
SUMO transferase activityHistone deacetylase 4Homo sapiens (human)
potassium ion bindingHistone deacetylase 4Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 4Homo sapiens (human)
identical protein bindingHistone deacetylase 4Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 4Homo sapiens (human)
molecular adaptor activityHistone deacetylase 4Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingHistone deacetylase 4Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 4Homo sapiens (human)
nucleosomal DNA bindingHistone deacetylase 1Homo sapiens (human)
RNA polymerase II cis-regulatory region sequence-specific DNA bindingHistone deacetylase 1Homo sapiens (human)
RNA polymerase II core promoter sequence-specific DNA bindingHistone deacetylase 1Homo sapiens (human)
core promoter sequence-specific DNA bindingHistone deacetylase 1Homo sapiens (human)
transcription corepressor bindingHistone deacetylase 1Homo sapiens (human)
p53 bindingHistone deacetylase 1Homo sapiens (human)
transcription corepressor activityHistone deacetylase 1Homo sapiens (human)
histone deacetylase activityHistone deacetylase 1Homo sapiens (human)
protein bindingHistone deacetylase 1Homo sapiens (human)
enzyme bindingHistone deacetylase 1Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 1Homo sapiens (human)
Krueppel-associated box domain bindingHistone deacetylase 1Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 1Homo sapiens (human)
NF-kappaB bindingHistone deacetylase 1Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingHistone deacetylase 1Homo sapiens (human)
E-box bindingHistone deacetylase 1Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 1Homo sapiens (human)
histone decrotonylase activityHistone deacetylase 1Homo sapiens (human)
promoter-specific chromatin bindingHistone deacetylase 1Homo sapiens (human)
chromatin bindingHistone deacetylase 7Homo sapiens (human)
transcription corepressor activityHistone deacetylase 7Homo sapiens (human)
histone deacetylase activityHistone deacetylase 7Homo sapiens (human)
protein kinase C bindingHistone deacetylase 7Homo sapiens (human)
protein bindingHistone deacetylase 7Homo sapiens (human)
SUMO transferase activityHistone deacetylase 7Homo sapiens (human)
protein kinase bindingHistone deacetylase 7Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 7Homo sapiens (human)
metal ion bindingHistone deacetylase 7Homo sapiens (human)
14-3-3 protein bindingHistone deacetylase 7Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 7Homo sapiens (human)
nucleosomal DNA bindingHistone deacetylase 2Homo sapiens (human)
chromatin bindingHistone deacetylase 2Homo sapiens (human)
RNA bindingHistone deacetylase 2Homo sapiens (human)
histone deacetylase activityHistone deacetylase 2Homo sapiens (human)
protein bindingHistone deacetylase 2Homo sapiens (human)
enzyme bindingHistone deacetylase 2Homo sapiens (human)
heat shock protein bindingHistone deacetylase 2Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 2Homo sapiens (human)
histone bindingHistone deacetylase 2Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 2Homo sapiens (human)
NF-kappaB bindingHistone deacetylase 2Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingHistone deacetylase 2Homo sapiens (human)
histone decrotonylase activityHistone deacetylase 2Homo sapiens (human)
protein de-2-hydroxyisobutyrylase activityHistone deacetylase 2Homo sapiens (human)
promoter-specific chromatin bindingHistone deacetylase 2Homo sapiens (human)
protein lysine deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
histone deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
protein bindingPolyamine deacetylase HDAC10Homo sapiens (human)
zinc ion bindingPolyamine deacetylase HDAC10Homo sapiens (human)
deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
enzyme bindingPolyamine deacetylase HDAC10Homo sapiens (human)
protein lysine deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
histone deacetylase bindingPolyamine deacetylase HDAC10Homo sapiens (human)
acetylputrescine deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
acetylspermidine deacetylase activityPolyamine deacetylase HDAC10Homo sapiens (human)
histone deacetylase activityHistone deacetylase 11 Homo sapiens (human)
protein bindingHistone deacetylase 11 Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 11 Homo sapiens (human)
histone deacetylase activityHistone deacetylase 8Homo sapiens (human)
protein bindingHistone deacetylase 8Homo sapiens (human)
Hsp70 protein bindingHistone deacetylase 8Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 8Homo sapiens (human)
metal ion bindingHistone deacetylase 8Homo sapiens (human)
Hsp90 protein bindingHistone deacetylase 8Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 8Homo sapiens (human)
histone decrotonylase activityHistone deacetylase 8Homo sapiens (human)
acetylspermidine deacetylase activityHistone deacetylase 6Homo sapiens (human)
RNA polymerase II cis-regulatory region sequence-specific DNA bindingHistone deacetylase 6Homo sapiens (human)
transcription corepressor bindingHistone deacetylase 6Homo sapiens (human)
actin bindingHistone deacetylase 6Homo sapiens (human)
histone deacetylase activityHistone deacetylase 6Homo sapiens (human)
protein bindingHistone deacetylase 6Homo sapiens (human)
beta-catenin bindingHistone deacetylase 6Homo sapiens (human)
microtubule bindingHistone deacetylase 6Homo sapiens (human)
zinc ion bindingHistone deacetylase 6Homo sapiens (human)
enzyme bindingHistone deacetylase 6Homo sapiens (human)
polyubiquitin modification-dependent protein bindingHistone deacetylase 6Homo sapiens (human)
ubiquitin protein ligase bindingHistone deacetylase 6Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 6Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 6Homo sapiens (human)
tubulin deacetylase activityHistone deacetylase 6Homo sapiens (human)
alpha-tubulin bindingHistone deacetylase 6Homo sapiens (human)
ubiquitin bindingHistone deacetylase 6Homo sapiens (human)
tau protein bindingHistone deacetylase 6Homo sapiens (human)
beta-tubulin bindingHistone deacetylase 6Homo sapiens (human)
misfolded protein bindingHistone deacetylase 6Homo sapiens (human)
Hsp90 protein bindingHistone deacetylase 6Homo sapiens (human)
dynein complex bindingHistone deacetylase 6Homo sapiens (human)
transcription factor bindingHistone deacetylase 6Homo sapiens (human)
transcription corepressor activityHistone deacetylase 9Homo sapiens (human)
histone deacetylase activityHistone deacetylase 9Homo sapiens (human)
protein kinase C bindingHistone deacetylase 9Homo sapiens (human)
protein bindingHistone deacetylase 9Homo sapiens (human)
histone H3K14 deacetylase activityHistone deacetylase 9Homo sapiens (human)
histone H3K9 deacetylase activityHistone deacetylase 9Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 9Homo sapiens (human)
histone H4K16 deacetylase activityHistone deacetylase 9Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 9Homo sapiens (human)
metal ion bindingHistone deacetylase 9Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingHistone deacetylase 9Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 9Homo sapiens (human)
transcription cis-regulatory region bindingHistone deacetylase 5Homo sapiens (human)
RNA polymerase II cis-regulatory region sequence-specific DNA bindingHistone deacetylase 5Homo sapiens (human)
transcription corepressor bindingHistone deacetylase 5Homo sapiens (human)
chromatin bindingHistone deacetylase 5Homo sapiens (human)
histone deacetylase activityHistone deacetylase 5Homo sapiens (human)
protein kinase C bindingHistone deacetylase 5Homo sapiens (human)
protein bindingHistone deacetylase 5Homo sapiens (human)
protein lysine deacetylase activityHistone deacetylase 5Homo sapiens (human)
identical protein bindingHistone deacetylase 5Homo sapiens (human)
histone deacetylase bindingHistone deacetylase 5Homo sapiens (human)
metal ion bindingHistone deacetylase 5Homo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingHistone deacetylase 5Homo sapiens (human)
DNA-binding transcription factor bindingHistone deacetylase 5Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (36)

Processvia Protein(s)Taxonomy
nucleusLysine-specific demethylase 4EHomo sapiens (human)
nucleoplasmLysine-specific demethylase 4EHomo sapiens (human)
chromatinLysine-specific demethylase 4EHomo sapiens (human)
nucleusLysine-specific demethylase 4EHomo sapiens (human)
plasma membraneFree fatty acid receptor 3Homo sapiens (human)
plasma membraneFree fatty acid receptor 3Homo sapiens (human)
nucleusHistone deacetylase 3Homo sapiens (human)
nucleoplasmHistone deacetylase 3Homo sapiens (human)
cytoplasmHistone deacetylase 3Homo sapiens (human)
Golgi apparatusHistone deacetylase 3Homo sapiens (human)
cytosolHistone deacetylase 3Homo sapiens (human)
plasma membraneHistone deacetylase 3Homo sapiens (human)
mitotic spindleHistone deacetylase 3Homo sapiens (human)
histone deacetylase complexHistone deacetylase 3Homo sapiens (human)
transcription repressor complexHistone deacetylase 3Homo sapiens (human)
nucleusHistone deacetylase 3Homo sapiens (human)
nucleusHistone deacetylase 4Homo sapiens (human)
nucleoplasmHistone deacetylase 4Homo sapiens (human)
cytoplasmHistone deacetylase 4Homo sapiens (human)
cytosolHistone deacetylase 4Homo sapiens (human)
nuclear speckHistone deacetylase 4Homo sapiens (human)
histone deacetylase complexHistone deacetylase 4Homo sapiens (human)
chromatinHistone deacetylase 4Homo sapiens (human)
transcription repressor complexHistone deacetylase 4Homo sapiens (human)
nucleusHistone deacetylase 1Homo sapiens (human)
nucleoplasmHistone deacetylase 1Homo sapiens (human)
cytoplasmHistone deacetylase 1Homo sapiens (human)
cytosolHistone deacetylase 1Homo sapiens (human)
NuRD complexHistone deacetylase 1Homo sapiens (human)
neuronal cell bodyHistone deacetylase 1Homo sapiens (human)
Sin3-type complexHistone deacetylase 1Homo sapiens (human)
histone deacetylase complexHistone deacetylase 1Homo sapiens (human)
chromatinHistone deacetylase 1Homo sapiens (human)
heterochromatinHistone deacetylase 1Homo sapiens (human)
transcription repressor complexHistone deacetylase 1Homo sapiens (human)
protein-containing complexHistone deacetylase 1Homo sapiens (human)
nucleusHistone deacetylase 1Homo sapiens (human)
nucleusHistone deacetylase 7Homo sapiens (human)
nucleoplasmHistone deacetylase 7Homo sapiens (human)
cytoplasmHistone deacetylase 7Homo sapiens (human)
cytosolHistone deacetylase 7Homo sapiens (human)
chromosome, telomeric regionHistone deacetylase 2Homo sapiens (human)
nucleusHistone deacetylase 2Homo sapiens (human)
nucleoplasmHistone deacetylase 2Homo sapiens (human)
cytoplasmHistone deacetylase 2Homo sapiens (human)
NuRD complexHistone deacetylase 2Homo sapiens (human)
Sin3-type complexHistone deacetylase 2Homo sapiens (human)
histone deacetylase complexHistone deacetylase 2Homo sapiens (human)
chromatinHistone deacetylase 2Homo sapiens (human)
protein-containing complexHistone deacetylase 2Homo sapiens (human)
ESC/E(Z) complexHistone deacetylase 2Homo sapiens (human)
nucleusHistone deacetylase 2Homo sapiens (human)
nucleusPolyamine deacetylase HDAC10Homo sapiens (human)
nucleoplasmPolyamine deacetylase HDAC10Homo sapiens (human)
cytoplasmPolyamine deacetylase HDAC10Homo sapiens (human)
cytosolPolyamine deacetylase HDAC10Homo sapiens (human)
intracellular membrane-bounded organellePolyamine deacetylase HDAC10Homo sapiens (human)
histone deacetylase complexPolyamine deacetylase HDAC10Homo sapiens (human)
nucleusHistone deacetylase 11 Homo sapiens (human)
plasma membraneHistone deacetylase 11 Homo sapiens (human)
histone deacetylase complexHistone deacetylase 11 Homo sapiens (human)
nuclear chromosomeHistone deacetylase 8Homo sapiens (human)
nucleusHistone deacetylase 8Homo sapiens (human)
nucleoplasmHistone deacetylase 8Homo sapiens (human)
cytoplasmHistone deacetylase 8Homo sapiens (human)
histone deacetylase complexHistone deacetylase 8Homo sapiens (human)
nucleusHistone deacetylase 8Homo sapiens (human)
nucleusHistone deacetylase 6Homo sapiens (human)
nucleoplasmHistone deacetylase 6Homo sapiens (human)
cytoplasmHistone deacetylase 6Homo sapiens (human)
multivesicular bodyHistone deacetylase 6Homo sapiens (human)
centrosomeHistone deacetylase 6Homo sapiens (human)
cytosolHistone deacetylase 6Homo sapiens (human)
microtubuleHistone deacetylase 6Homo sapiens (human)
caveolaHistone deacetylase 6Homo sapiens (human)
inclusion bodyHistone deacetylase 6Homo sapiens (human)
aggresomeHistone deacetylase 6Homo sapiens (human)
axonHistone deacetylase 6Homo sapiens (human)
dendriteHistone deacetylase 6Homo sapiens (human)
cell leading edgeHistone deacetylase 6Homo sapiens (human)
ciliary basal bodyHistone deacetylase 6Homo sapiens (human)
perikaryonHistone deacetylase 6Homo sapiens (human)
perinuclear region of cytoplasmHistone deacetylase 6Homo sapiens (human)
axon cytoplasmHistone deacetylase 6Homo sapiens (human)
histone deacetylase complexHistone deacetylase 6Homo sapiens (human)
microtubule associated complexHistone deacetylase 6Homo sapiens (human)
nucleusHistone deacetylase 9Homo sapiens (human)
nucleoplasmHistone deacetylase 9Homo sapiens (human)
cytoplasmHistone deacetylase 9Homo sapiens (human)
histone deacetylase complexHistone deacetylase 9Homo sapiens (human)
transcription regulator complexHistone deacetylase 9Homo sapiens (human)
histone methyltransferase complexHistone deacetylase 9Homo sapiens (human)
nucleusHistone deacetylase 5Homo sapiens (human)
nucleoplasmHistone deacetylase 5Homo sapiens (human)
cytoplasmHistone deacetylase 5Homo sapiens (human)
Golgi apparatusHistone deacetylase 5Homo sapiens (human)
cytosolHistone deacetylase 5Homo sapiens (human)
nuclear speckHistone deacetylase 5Homo sapiens (human)
histone deacetylase complexHistone deacetylase 5Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (118)

Assay IDTitleYearJournalArticle
AID569932Inhibition of human recombinant HDAC42010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID3329Concentration required to inhibit the colony formation of lung carcinoma (3LLD122) cell lines by 50%2000Journal of medicinal chemistry, Jul-27, Volume: 43, Issue:15
Novel mutual prodrug of retinoic and butyric acids with enhanced anticancer activity.
AID81291In vitro for the differentiation induction activity determined in the human myeloid leukemic cell line HL-602000Journal of medicinal chemistry, Jul-27, Volume: 43, Issue:15
Novel mutual prodrug of retinoic and butyric acids with enhanced anticancer activity.
AID1134606Et2O-water partition coefficient, log P of the compound1977Journal of medicinal chemistry, Aug, Volume: 20, Issue:8
Hydrogen-bonding parameter and its significance in quantitative structure--activity studies.
AID569933Inhibition of human recombinant HDAC52010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID95754Protein interaction energy by using binding affinity towards human L-xylulose reductase enzyme2003Bioorganic & medicinal chemistry letters, Apr-17, Volume: 13, Issue:8
Structure-based design of inhibitors of human L-xylulose reductase modelled into the active site of the enzyme.
AID41062Inhibitory activity on growth of B16F10.9 melanoma cell line1992Journal of medicinal chemistry, Feb-21, Volume: 35, Issue:4
Novel anticancer prodrugs of butyric acid. 2.
AID569935Inhibition of human recombinant HDAC92010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID344916Inhibition of 2-oxoglutarate-dependent human JMJD2E in presence of excess 2-oxoglutarate and 10 uM Fe2 by FDH coupled assay2008Journal of medicinal chemistry, Nov-27, Volume: 51, Issue:22
Inhibitor scaffolds for 2-oxoglutarate-dependent histone lysine demethylases.
AID1081642Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as concentration required to suppress root growth at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1454212Cytotoxicity against human Caco2 cells assessed as reduction in cell viability by measuring cytosolic enzyme lactate dehydrogenase release incubated for 48 hrs by spectrophotometry2017Bioorganic & medicinal chemistry letters, 08-01, Volume: 27, Issue:15
In vitro studies on the inhibition of colon cancer by amino acid derivatives of bromothiazole.
AID1083133Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 1000 umol/L on day 7 (SDW control = 12.63 +/- 3.84%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081639Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as concentration required to suppress root growth at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID94965Evaluated for erythroid induction of benzidine-positive K562 cells at concentration 3 mM1999Bioorganic & medicinal chemistry letters, Nov-01, Volume: 9, Issue:21
Induction of erythroid differentiation of human K562 cells by 3-O-acyl-1,2-O-isopropylidene-D-glucofuranose derivatives.
AID347413Inhibition of 26S proteasome activity in human U251 cells at 100 uM after 48 hrs in presence of N-acetyl-L-cysteine relative to control2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID360150Inhibition of mouse Oat1-mediated [3H]PAH uptake in Xenopus oocytes after 1 hr2007The Journal of biological chemistry, Aug-17, Volume: 282, Issue:33
Structural variation governs substrate specificity for organic anion transporter (OAT) homologs. Potential remote sensing by OAT family members.
AID1083128Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 100 umol/L on day 21 (SDW control = 44.87 +/- 3.93%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1083130Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 1000 umol/L on day 14 (SDW control = 35.77 +/- 4.48%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081755Nematicidal activity against Meloidogyne incognita J2 (root-knot nematode) assessed as paralysis measured after 1 hr at 28 degC2010Journal of agricultural and food chemistry, Nov-10, Volume: 58, Issue:21
nematicidal carboxylic acids and aldehydes from Melia azedarach fruits.
AID360149Inhibition of mouse Oat6-mediated [3H]ES uptake in Xenopus oocytes after 1 hr2007The Journal of biological chemistry, Aug-17, Volume: 282, Issue:33
Structural variation governs substrate specificity for organic anion transporter (OAT) homologs. Potential remote sensing by OAT family members.
AID1134605Oil-water partition coefficient, log P of the compound1977Journal of medicinal chemistry, Aug, Volume: 20, Issue:8
Hydrogen-bonding parameter and its significance in quantitative structure--activity studies.
AID23253Partition coefficient (logP) (carbon tetrachloride)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID336938Inhibition of EBV-early antigen activation in human Raji cells assessed as early antigen activation at 4 mM
AID23251Partition coefficient (logP)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID412897Inhibition of HDAC in human MDA-MB-231 cells assessed as increase in p21 mRNA level by qRT-PCR2008Journal of medicinal chemistry, Dec-25, Volume: 51, Issue:24
Targeting pro-invasive oncogenes with short chain fatty acid-hexosamine analogues inhibits the mobility of metastatic MDA-MB-231 breast cancer cells.
AID95143Inhibition of cell growth against human myeloid leukemia K562(S) cells1999Bioorganic & medicinal chemistry letters, Nov-01, Volume: 9, Issue:21
Induction of erythroid differentiation of human K562 cells by 3-O-acyl-1,2-O-isopropylidene-D-glucofuranose derivatives.
AID81447Concentration required for 50% proliferation inhibition of human promyelocytic HL-60 cell line1992Journal of medicinal chemistry, Feb-21, Volume: 35, Issue:4
Novel anticancer prodrugs of butyric acid. 2.
AID1881882Activation of PKM2 (unknown origin) Leu353, Tyr390, Phe26 residues assessed as conversion of NADH to NAD+ by LDH coupled assay2022Journal of medicinal chemistry, 01-27, Volume: 65, Issue:2
A Perspective on Medicinal Chemistry Approaches for Targeting Pyruvate Kinase M2.
AID1081637Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as concentration required to suppress shoot growth at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID569936Inhibition of human recombinant HDAC62010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID347410Inhibition of 26S proteasome activity in human U251 cells at 0.5 mM after 24 hrs2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID1882457Inhibition of HDAC2 (unknown origin)2022Journal of medicinal chemistry, 02-24, Volume: 65, Issue:4
Chasing a Breath of Fresh Air in Cystic Fibrosis (CF): Therapeutic Potential of Selective HDAC6 Inhibitors to Tackle Multiple Pathways in CF Pathophysiology.
AID347392Cytotoxicity against human U251 cells after 72 hrs by Hoechst test2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID347397Increase in ROS production in human U251 cells at 100 uM after 4 hrs by FACS in presence of N-acetyl-L-cysteine2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID360151Ratio of pKi for mouse Oat1 expressed in Xenopus oocytes to pKi for mouse Oat6 expressed in Xenopus oocytes2007The Journal of biological chemistry, Aug-17, Volume: 282, Issue:33
Structural variation governs substrate specificity for organic anion transporter (OAT) homologs. Potential remote sensing by OAT family members.
AID569929Inhibition of human recombinant HDAC22010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID569944Inhibition of HDAC in mouse primary forebrain neurons assessed as acetylation of histone H2A at 92.5 uM after 24 hrs by immunofluorescence assay2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1081616Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as seed germination at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083129Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 2000 umol/L on day 14 (SDW control = 35.77 +/- 4.48%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1475773Agonist activity at human GPCR41 transfected in HEK293 cells assessed as [35S]GTPgammaS binding by scintillation counting method2018Journal of medicinal chemistry, 01-11, Volume: 61, Issue:1
Microbiota-Host Transgenomic Metabolism, Bioactive Molecules from the Inside.
AID1081754Nematicidal activity against Meloidogyne incognita J2 (root-knot nematode) assessed as paralysis measured after 1 day at 28 degC2010Journal of agricultural and food chemistry, Nov-10, Volume: 58, Issue:21
nematicidal carboxylic acids and aldehydes from Melia azedarach fruits.
AID344917Inhibition of 2-oxoglutarate-dependent human JMJD2E in presence of excess H3K9me3 peptide and 10 uM Fe2 by FDH coupled assay2008Journal of medicinal chemistry, Nov-27, Volume: 51, Issue:22
Inhibitor scaffolds for 2-oxoglutarate-dependent histone lysine demethylases.
AID624613Specific activity of expressed human recombinant UGT1A102000Annual review of pharmacology and toxicology, , Volume: 40Human UDP-glucuronosyltransferases: metabolism, expression, and disease.
AID569931Inhibition of human recombinant HDAC82010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID23254Partition coefficient (logP) (chloroform)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID498776Toxicity in po dosed rat2009Nature chemical biology, Jul, Volume: 5, Issue:7
Identification of the toxic trigger in mushroom poisoning.
AID1083132Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 2000 umol/L on day 7 (SDW control = 12.63 +/- 3.84%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID569937Inhibition of HDAC6 in human HeLa cells assessed as acetylation of tubulin after 24 hrs by immunofluorescence assay2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID154429Concentration required to inhibit the colony formation of pancreatic human (PACA) cell lines by 50%2000Journal of medicinal chemistry, Jul-27, Volume: 43, Issue:15
Novel mutual prodrug of retinoic and butyric acids with enhanced anticancer activity.
AID412899Inhibition of HDAC in human MDA-MB-231 cells assessed as increase in histone H3 acetylation after 3 days by densitometry2008Journal of medicinal chemistry, Dec-25, Volume: 51, Issue:24
Targeting pro-invasive oncogenes with short chain fatty acid-hexosamine analogues inhibits the mobility of metastatic MDA-MB-231 breast cancer cells.
AID347412Inhibition of 26S proteasome activity in human U251 cells at 100 uM after 48 hrs relative to control2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID1083131Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 100 umol/L on day 14 (SDW control = 35.77 +/- 4.48%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID347403Increase in heme level in human U251 cells at 100 uM after 48 hrs by Western blot relative to control2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID416474Antiproliferative activity against human K562 cells2009European journal of medicinal chemistry, Feb, Volume: 44, Issue:2
Synthesis of glycose carbamides and evaluation of the induction of erythroid differentiation of human erythroleukemic K562 cells.
AID23255Partition coefficient (logP) (ether)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID1083126Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 2000 umol/L on day 21 (SDW control = 44.87 +/- 3.93%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1882458Inhibition of HDAC7 (unknown origin)2022Journal of medicinal chemistry, 02-24, Volume: 65, Issue:4
Chasing a Breath of Fresh Air in Cystic Fibrosis (CF): Therapeutic Potential of Selective HDAC6 Inhibitors to Tackle Multiple Pathways in CF Pathophysiology.
AID1081625Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as root length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID23256Partition coefficient (logP) (hexane)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID1081622Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as seed germination at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1081609Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as root length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID41060Effect on appearance of B16F10.9 colonies in semisolid agar at 1 mM1992Journal of medicinal chemistry, Feb-21, Volume: 35, Issue:4
Novel anticancer prodrugs of butyric acid. 2.
AID569934Inhibition of human recombinant HDAC72010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1882456Inhibition of HDAC1 (unknown origin)2022Journal of medicinal chemistry, 02-24, Volume: 65, Issue:4
Chasing a Breath of Fresh Air in Cystic Fibrosis (CF): Therapeutic Potential of Selective HDAC6 Inhibitors to Tackle Multiple Pathways in CF Pathophysiology.
AID1081607Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as seed germination at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083123Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 1000 umol/L after 12 hr (Rvb = 1.79 to 3.30%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID569930Inhibition of human recombinant HDAC32010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID682070TP_TRANSPORTER: uptake of Butyric acid at a concentration of 137uM in MCT1-expressing MDA-MB231 cells1999The Journal of pharmacy and pharmacology, Oct, Volume: 51, Issue:10
Immunohistochemical and functional characterization of pH-dependent intestinal absorption of weak organic acids by the monocarboxylic acid transporter MCT1.
AID1081612Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as root length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083135Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 2000 umol/L on day 3 (SDW control = 0.57 +/- 0.37%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081753Nematicidal activity against Meloidogyne incognita J2 (root-knot nematode) assessed as paralysis measured at 500 ug/mL by fumigant assay2010Journal of agricultural and food chemistry, Nov-10, Volume: 58, Issue:21
nematicidal carboxylic acids and aldehydes from Melia azedarach fruits.
AID1083120Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 2000 umol/L after 24 hr Rvb = 1.47 to 2.51%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081610Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as seed germination at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083125Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 100 umol/L after 12 hr (Rvb = 1.79 to 3.30%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081623Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as shoot length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083149Nematotoxic activity against freshly hatched Meloidogyne incognita J2 (root-knot nematode) isolated from tomato roots assessed as induction of nematode paralysis measured 24 hr after immersion in compound test solutions2012Journal of agricultural and food chemistry, Nov-28, Volume: 60, Issue:47
Nematotoxic phenolic compounds from Melia azedarach against Meloidogyne incognita.
AID1454213Antiprolferative activity against human Caco2 cells assessed as inhibition of cell proliferation by measuring [3H]-thymidine incorporation at 1 mM incubated for 48 hrs by liquid scintillometry2017Bioorganic & medicinal chemistry letters, 08-01, Volume: 27, Issue:15
In vitro studies on the inhibition of colon cancer by amino acid derivatives of bromothiazole.
AID23252Partition coefficient (logP) (benzene)1987Journal of medicinal chemistry, Jul, Volume: 30, Issue:7
The role of solvent-accessible surface area in determining partition coefficients.
AID1083127Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 1000 umol/L on day 21 (SDW control = 44.87 +/- 3.93%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID336939Inhibition of 12-O-tetradecanoylphorbol-13-acetate-induced EBV-early antigen activation in human Raji cells assessed as early antigen activation at 4 mM ratio relative to TPA
AID410585Inhibition of erythroid differentiation in human K562 cell assessed benzidine positive cells at 2 mM after 6 days by benzidine staining assay2009Journal of medicinal chemistry, Jan-08, Volume: 52, Issue:1
New uracil dimers showing erythroid differentiation inducing activities.
AID217956Concentration required for 50% proliferation inhibition of myelomonocytic WEHI cell line1992Journal of medicinal chemistry, Feb-21, Volume: 35, Issue:4
Novel anticancer prodrugs of butyric acid. 2.
AID1081638Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as concentration required to suppress seed germination at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1081611Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as shoot length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID237685Lipophilicity determined as logarithm of the partition coefficient in the alkane/water system2005Journal of medicinal chemistry, May-05, Volume: 48, Issue:9
Calculating virtual log P in the alkane/water system (log P(N)(alk)) and its derived parameters deltalog P(N)(oct-alk) and log D(pH)(alk).
AID498773Toxicity in po dosed ICR mouse assessed as decreased in mobility after 3 hrs2009Nature chemical biology, Jul, Volume: 5, Issue:7
Identification of the toxic trigger in mushroom poisoning.
AID347396Increase in ROS production in human U251 cells at 100 uM after 4 hrs by FACS2008Journal of medicinal chemistry, Dec-11, Volume: 51, Issue:23
Novel multifunctional acyloxyalkyl ester prodrugs of 5-aminolevulinic acid display improved anticancer activity independent and dependent on photoactivation.
AID1083121Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 2000 umol/L after 12 hr (Rvb = 1.79 to 3.30%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID447579Inhibition of HDAC in human Hela cells nuclear extracts by fluorimetric assay2009Bioorganic & medicinal chemistry, Jul-15, Volume: 17, Issue:14
Molecular modifications on carboxylic acid derivatives as potent histone deacetylase inhibitors: Activity and docking studies.
AID1083124Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 100 umol/L after 24 hr (Rvb = 1.47 to 2.51%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID416475Induction of erythroid differentiation in human K562 cells assessed as benzidine-positive cells after 6 days2009European journal of medicinal chemistry, Feb, Volume: 44, Issue:2
Synthesis of glycose carbamides and evaluation of the induction of erythroid differentiation of human erythroleukemic K562 cells.
AID1081608Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as shoot length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to 1,8-Cineole2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083134Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 100 umol/L on day 7 (SDW control = 12.63 +/- 3.84%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081617Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as shoot length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083122Nematicidal activity against second-stage juvenile of Meloidogyne incognita (root-knot nematode) assessed as mortality at 25 degC at 1000 umol/L after 24 hr Rvb = 1.47 to 2.51%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081640Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as concentration required to suppress seed germination at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1081641Pre-emergence herbicidal activity against Raphanus sativus var.Long scarlet (radish) seeds assessed as concentration required to suppress shoot growth at 25 degC after 72 hr by laboratory-based agar medium bioassay2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID624611Specific activity of expressed human recombinant UGT1A82000Annual review of pharmacology and toxicology, , Volume: 40Human UDP-glucuronosyltransferases: metabolism, expression, and disease.
AID569928Inhibition of human recombinant HDAC12010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1083137Nematicidal activity against Meloidogyne incognita (root-knot nematode) root-knot nematodes assessed as cumulative percentage of egg hatching at 25 degC at 100 umol/L on day 3 (SDW control = 0.57 +/- 0.37%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1081618Pre-emergence herbicidal activity against Lolium rigidum seeds assessed as root length at 0.1 mol/l at 25 degC after 72 hr by laboratory-based agar medium bioassay relative to control2010Journal of agricultural and food chemistry, Sep-22, Volume: 58, Issue:18
Herbicidal activity of cineole derivatives.
AID1083136Nematicidal activity against Meloidogyne incognita (root-knot nematode) assessed as cumulative percentage of egg hatching at 25 degC at 1000 umol/L on day 3 (SDW control = 0.57 +/- 0.37%)2012Journal of agricultural and food chemistry, Nov-21, Volume: 60, Issue:46
Potential antagonistic effects of nine natural fatty acids against Meloidogyne incognita.
AID1346082Human histone deacetylase 2 (3.5.1.- Histone deacetylases (HDACs))2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1345808Human FFA3 receptor (Free fatty acid receptors)2011The Journal of biological chemistry, Mar-25, Volume: 286, Issue:12
Selective orthosteric free fatty acid receptor 2 (FFA2) agonists: identification of the structural and chemical requirements for selective activation of FFA2 versus FFA3.
AID1345808Human FFA3 receptor (Free fatty acid receptors)2003The Journal of biological chemistry, Jul-11, Volume: 278, Issue:28
Functional characterization of human receptors for short chain fatty acids and their role in polymorphonuclear cell activation.
AID1345904Human FFA2 receptor (Free fatty acid receptors)2003The Journal of biological chemistry, Mar-28, Volume: 278, Issue:13
The Orphan G protein-coupled receptors GPR41 and GPR43 are activated by propionate and other short chain carboxylic acids.
AID1345904Human FFA2 receptor (Free fatty acid receptors)2011The Journal of biological chemistry, Mar-25, Volume: 286, Issue:12
Selective orthosteric free fatty acid receptor 2 (FFA2) agonists: identification of the structural and chemical requirements for selective activation of FFA2 versus FFA3.
AID1345904Human FFA2 receptor (Free fatty acid receptors)2003The Journal of biological chemistry, Jul-11, Volume: 278, Issue:28
Functional characterization of human receptors for short chain fatty acids and their role in polymorphonuclear cell activation.
AID1345808Human FFA3 receptor (Free fatty acid receptors)2003The Journal of biological chemistry, Mar-28, Volume: 278, Issue:13
The Orphan G protein-coupled receptors GPR41 and GPR43 are activated by propionate and other short chain carboxylic acids.
AID1345808Human FFA3 receptor (Free fatty acid receptors)2004Proceedings of the National Academy of Sciences of the United States of America, Jan-27, Volume: 101, Issue:4
Short-chain fatty acids stimulate leptin production in adipocytes through the G protein-coupled receptor GPR41.
AID1346077Human histone deacetylase 3 (3.5.1.- Histone deacetylases (HDACs))2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1346134Human histone deacetylase 1 (3.5.1.- Histone deacetylases (HDACs))2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1346068Human histone deacetylase 8 (3.5.1.- Histone deacetylases (HDACs))2010ACS medicinal chemistry letters, Oct-08, Volume: 2, Issue:1
Effect of Inhibiting Histone Deacetylase with Short-Chain Carboxylic Acids and Their Hydroxamic Acid Analogs on Vertebrate Development and Neuronal Chromatin.
AID1345904Human FFA2 receptor (Free fatty acid receptors)2003Biochemical and biophysical research communications, Apr-18, Volume: 303, Issue:4
Identification of a free fatty acid receptor, FFA2R, expressed on leukocytes and activated by short-chain fatty acids.
AID977611Experimentally measured binding affinity data (Kd) for protein-ligand complexes derived from PDB2013Archives of biochemistry and biophysics, Jan-01, Volume: 529, Issue:1
Structural basis of the binding of fatty acids to peptidoglycan recognition protein, PGRP-S through second binding site.
AID1798635FDH Coupled Inhibition Assay from Article 10.1021/jm800936s: \\Inhibitor Scaffolds for 2-Oxoglutarate-Dependent Histone Lysine Demethylases.\\2008Journal of medicinal chemistry, Nov-27, Volume: 51, Issue:22
Inhibitor scaffolds for 2-oxoglutarate-dependent histone lysine demethylases.
AID1799787Isothermal Titration Calorimetry from Article 10.1074/jbc.M110.110403: \\Identification of a chemoreceptor for tricarboxylic acid cycle intermediates: differential chemotactic response towards receptor ligands.\\2010The Journal of biological chemistry, Jul-23, Volume: 285, Issue:30
Identification of a chemoreceptor for tricarboxylic acid cycle intermediates: differential chemotactic response towards receptor ligands.
AID977610Experimentally measured binding affinity data (Ki) for protein-ligand complexes derived from PDB2004European journal of biochemistry, Jan, Volume: 271, Issue:2
Mutational and structural analysis of cobalt-containing nitrile hydratase on substrate and metal binding.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (3,451)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990720 (20.86)18.7374
1990's876 (25.38)18.2507
2000's353 (10.23)29.6817
2010's971 (28.14)24.3611
2020's531 (15.39)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 64.29

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 Index64.29 (24.57)
Research Supply Index8.20 (2.92)
Research Growth Index4.94 (4.65)
Search Engine Demand Index214.23 (26.88)
Search Engine Supply Index3.75 (0.95)

This Compound (64.29)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials85 (2.39%)5.53%
Reviews91 (2.56%)6.00%
Case Studies8 (0.22%)4.05%
Observational4 (0.11%)0.25%
Other3,368 (94.71%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Clinical Trials (24)

Trial Overview

TrialPhaseEnrollmentStudy TypeStart DateStatus
Double Blinded, Placebo Controlled Trial on the Effect of GABA Supplementation in the Progression of Type 1 Diabetes in Children [NCT01561508]Phase 20 participants (Actual)Interventional2012-06-30Withdrawn(stopped due to Unable to obtain IND currently)
A Randomised, Double-blind, Placebo-controlled, Parallel Group, Single-centre Trial of GABA Treatment in Subjects With Type 1 Diabetes [NCT03721991]30 participants (Anticipated)Interventional2018-10-10Recruiting
A Pilot Study to Evaluate Efficacy and Safety of Butyrate Supplement in the Treatment of Rheumatoid Arthritis [NCT05576597]Phase 230 participants (Anticipated)Interventional2022-08-23Recruiting
Protective Effects of Pre- and Post-biotics on Gut Inflammation, Microbiota Diversity, Epileptogenesis, and Quality of Life in Rett Syndrome [NCT05420805]28 participants (Actual)Interventional2022-04-01Completed
Vurdering af Perifere GABAA-receptorer Med Henblik på Lokal Smertelindring [NCT02928328]90 participants (Anticipated)Interventional2016-10-31Recruiting
Effect of Gut Butyrate Delivery on Blood Pressure in African Americans With Hypertension [NCT04415333]Phase 120 participants (Actual)Interventional2021-07-08Completed
The Butyful Study. Effect of Butyrate on Inflammation and Albuminuria in Patients With Albuminuria, Type 1 Diabetes and Intestinal Inflammation A Randomized, Double-blind, Placebo-controlled Study [NCT04073927]48 participants (Anticipated)Interventional2019-08-05Recruiting
Microbiome Targeted Oral Butyrate Therapy in Gulf War Multisymptom Illness [NCT05367245]Phase 2120 participants (Anticipated)Interventional2024-01-01Not yet recruiting
Effects of Butyrate on Colonic Health of Patients With Diarrhoea Predominant [NCT00696098]80 participants (Anticipated)Interventional2007-05-31Completed
Sodium Butyrate As A Treatment For Improving Cognitive Function In Schizophrenia [NCT02654405]Phase 2/Phase 30 participants (Actual)Interventional2016-04-30Withdrawn(stopped due to Nathan Kline Institute (NKI) decided not to accept study grant from Stanley Medical Research Foundation. because of budget considerations.)
Intestinal Microbiome-based Research for the Prevention of Acute Graft-versus-host Disease [NCT05808985]Phase 215 participants (Anticipated)Interventional2022-09-02Recruiting
Effects of Butyrate Enemas on Colonic Health [NCT00693355]16 participants (Actual)Interventional2005-12-31Completed
An Assessment of the Efficacy of Microencapsulated Sodium Butyrate and a Probiotic Mixture in Patients With Irritable Bowel Syndrome - a Randomized Double-blind Placebo-controlled Study [NCT05013060]180 participants (Anticipated)Interventional2021-04-15Recruiting
Therapeutic Induction of Endogenous Antibiotics for Improved Recovery in Shigellosis [NCT00800930]Phase 280 participants (Actual)Interventional2005-01-31Completed
Heavy Isotope-labeled-butyrate and Glucose in Breath Testing to Detect Mesenteric Ischemia, a Proof-of-concept Study in Healthy Volunteers. [NCT06022588]20 participants (Actual)Interventional2021-03-01Completed
Effect of Gamma Aminobutyric Acid on ADHD and Seizures in Children With Epilepsy. [NCT04144439]Phase 430 participants (Anticipated)Interventional2018-07-01Recruiting
LCCC2032: The Effects of Short Chain Fatty Acid Supplementation on the Quality of Life and Treatment-related Toxicities in Subjects Receiving Abdominopelvic Radiotherapy: A Randomized Controlled Study [NCT04700527]Phase 1/Phase 2122 participants (Anticipated)Interventional2023-12-31Not yet recruiting
"4 Phenyl Butyrate Mediated Secretion Rescue in Alpha 1-Antitrypsin Deficient Individuals" [NCT00067756]Phase 212 participants (Actual)Interventional2001-11-30Completed
Effect of a Butyrate Enema on the Systemic Concentration of Short Chain Fatty Acids [NCT02271802]12 participants (Actual)Interventional2009-06-30Completed
Sodium Butyrate Effectiveness in Children and Adolescents With Newly Diagnosed Inflammatory Bowel Diseases - Randomized Placebo-controlled Multicentre Trial [NCT05456763]100 participants (Actual)Interventional2013-06-30Completed
A Pilot Proof of Concept Study of the Effects of Administration of a Short Chain Fatty Acid (SCFA) Supplement in Rheumatoid Arthritis Inadequate Responders (EASi-RAIR) [NCT05718583]35 participants (Anticipated)Interventional2023-02-01Recruiting
Mode of Action of Butyrate in the Human Colon [NCT05249023]37 participants (Actual)Interventional2018-04-11Completed
The Use of Glutamic Acid Decarboxylase (GAD)and Gamma-Amino Butyric Acid(GABA)in the Treatment of Type I Diabetes. [NCT02002130]Phase 1101 participants (Actual)Interventional2015-01-31Completed
Sodium Butyrate As A Treatment For Improving Cognitive Function In Schizophrenia [NCT03010865]Phase 2/Phase 30 participants (Actual)Interventional2017-06-01Withdrawn(stopped due to sponsor withdrew the funds because the smell of sodium butyrate made blinding impossible)
[information is prepared from clinicaltrials.gov, extracted Sep-2024]

Trial Outcomes

TrialOutcome
NCT04415333 (5) [back to overview]Interleukin-1 Beta (IL-1β) Concentration
NCT04415333 (5) [back to overview]Mean Daytime Blood Pressure
NCT04415333 (5) [back to overview]Mean Nighttime Blood Pressure
NCT04415333 (5) [back to overview]Blood Butyrate Concentrations
NCT04415333 (5) [back to overview]Blood Butyrate Concentrations

Interleukin-1 Beta (IL-1β) Concentration

Blood biomarker samples were collected for the inflammatory cytokine IL-1β. (NCT04415333)
Timeframe: up to 1 hour post enema

Interventionpg/mL (Mean)
Sodium Butyrate [5 mmol]NA
Sodium Butyrate [80 mmol]NA
ControlNA

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Mean Daytime Blood Pressure

Immediately following self-administration of butyrate enema, participants will be fitted with an ambulatory blood pressure monitor to be worn for 24 hours. (NCT04415333)
Timeframe: approximately 16 hours post enema

InterventionmmHg (Mean)
Sodium Butyrate [5 mmol]137.5
Sodium Butyrate [80 mmol]132.9
Control128.2

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Mean Nighttime Blood Pressure

Immediately following self-administration of butyrate enema, participants will be fitted with an ambulatory blood pressure monitor to be worn for 24 hours. (NCT04415333)
Timeframe: approximately 8 hours post enema

InterventionmmHg (Mean)
Sodium Butyrate [5 mmol]123.2
Sodium Butyrate [80 mmol]116.2
Control114.0

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Blood Butyrate Concentrations

Measure blood butyrate concentrations before, 30 minutes post, and 60 minutes post self-administration of the butyrate enemas (NCT04415333)
Timeframe: up to 1 hour post enema

Interventionng/mL (Mean)
Baseline
Control149.89

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Blood Butyrate Concentrations

Measure blood butyrate concentrations before, 30 minutes post, and 60 minutes post self-administration of the butyrate enemas (NCT04415333)
Timeframe: up to 1 hour post enema

,
Interventionng/mL (Mean)
Baseline30 Minutes Post
Sodium Butyrate [5 mmol]143.88138.64
Sodium Butyrate [80 mmol]138.60151.57

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