HDAC
Histone deacetylases
HDAC Isoform Specific Products
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HDAC Related Products (906)
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Antibodies (16)
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HDAC Signaling Pathway
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HDAC Isoform Comparison
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Azumamide E
0 ImagesCat. No.: HY-P2044CAS No.: 585535-37-1Azumamide E is a HDAC inhibitor, with an IC50 of 0.064 μM against HDAC, 1.22 μM against HDAC1, and 2.28 μM against HDAC4. Azumamide E inhibits HDAC activity in nuclear extracts of leukemia cells and cervical adenocarcinoma cells. Azumamide E suppresses angiogenesis. Azumamide E is applicable for research on leukemia, cervical adenocarcinoma, and anti-angiogenesis. -
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HDAC-IN-82
0 ImagesCat. No.: HY-169922HDAC-IN-82 (Compound 18b) is a histone deacetylase (HDAC) inhibitor with selective antiplasmodial and anticancer activity. HDAC-IN-82 shows potent antiproliferative activity and caspase 3/7 activation in cancer cells. HDAC-IN-82 causes hyperacetylation of histone H3 and α-tubulin. -
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Tubastatin A Hydrochloride (Standard)
0 ImagesCat. No.: HY-13271RCAS No.: 1310693-92-5Synonyms: Tubastatin A HCl (Standard); TSA HCl (Standard)Tubastatin A (Hydrochloride) (Standard) is the analytical standard of Tubastatin A (Hydrochloride). This product is intended for research and analytical applications. Tubastatin A Hydrochloride (Tubastatin A HCl) is a potent and selective HDAC6 inhibitor with IC50 of 15 nM in a cell-free assay, and is selective (1000-fold more) against all other isozymes except HDAC8 (57-fold more). Tubastatin A Hydrochloride also inhibits HDAC10 and metallo-β-lactamase domain-containing protein 2 (MBLAC2). -
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FFK29
0 ImagesCat. No.: HY-180343CAS No.: 1795429-46-7FFK29 is a synthetic class II histone deacetylase inhibitor (HDACi). FFK29 can potently inhibit the growth and encystation of Acanthamoeba. FFK29 can be studied in research on protozoan and parasitic diseases. -
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Diheteropeptin
0 ImagesCat. No.: HY-N14950CAS No.: 202869-98-5Diheteropeptin has similar activity to T ransforming growth factor-β, and inhibits the ability of HDAC. -
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Corin (Standard)
0 ImagesCat. No.: HY-111048RCAS No.: 1808113-09-8Corin (Standard) is the analytical standard of Corin (HY-111048). This product is intended for research and analytical applications. Corin is a dual inhibitor of histone lysine specific demethylase (LSD1) and histone deacetylase (HDAC), with a Ki(inact) of 110 nM for LSD1 and an IC50 of 147 nM for HDAC1. -
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Tubastatin A (Standard)
0 ImagesTubastatin A (Standard) is the analytical standard of Tubastatin A. This product is intended for research and analytical applications. Tubastatin A is a potent and selective HDAC6 inhibitor with an IC50 of 15 nM in a cell-free assay, and is selective (1000-fold more) against all other isozymes except HDAC8 (57-fold more). Tubastatin A also inhibits HDAC10 and metallo-β-lactamase domain-containing protein 2 (MBLAC2). -
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JNJ-16241199 (Standard)
0 ImagesCat. No.: HY-10226RCAS No.: 604769-01-9Synonyms: R306465 (Standard)JNJ-16241199 (Standard) is the analytical standard of JNJ-16241199 (HY-10226). This product is intended for research and analytical applications. JNJ-16241199 (R306465) is an orally active, selectivehydroxamate-based histone deacetylase (HDAC) inhibitor, with theIC50of 3.3 nM and 23 nM for HDAC1and HDAC8, respectively.JNJ-16241199induces histone 3 acetylation and strongly increases the expression of p21waf1, cip1 in A2780 ovarian carcinoma cells.JNJ-16241199 inducescell apoptosisand shows anticancer activityin a broad spectrum of human malignancies. JNJ-16241199 can be used for cancer study. -
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(S)-HDAC-IN-102
0 ImagesCat. No.: HY-185554ACAS No.: 748159-43-5(S)-HDAC-IN-102 is a HDAC8 inhibitor and an isomer of HDAC-IN-102 (HY-185554). HDAC-IN-102 inhibits total HDAC with an IC50 of 58 μM and exhibits partial subtype selectivity. Specifically, (S)-HDAC-IN-102 targets HDAC8, while (R)-HDAC-IN-102 (HY-185554B) targets HDAC2. HDAC-IN-102 exerts antioxidant effects by scavenging DPPH free radicals and can be used in cancer-related research. -
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CUDC-101 (Standard)
0 ImagesCat. No.: HY-10223RCAS No.: 1012054-59-9CUDC-101 (Standard) is the analytical standard of CUDC-101 (HY-10223). This product is intended for research and analytical applications. CUDC-101 is a potent inhibitor of HDAC, EGFR, and HER2 with IC50s of 4.4, 2.4, and 15.7 nM, respectively. CUDC-101 is a click chemistry reagent, it contains an Alkyne group and can undergo copper-catalyzed azide-alkyne cycloaddition (CuAAc) with molecules containing Azide groups. -
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HDAC6-IN-39
0 ImagesCat. No.: HY-160845CAS No.: 2653255-56-0HDAC6-IN-39 (Compound I-132) is an inhibitor for HDAC6 with IC50 of 0.0096 μM. -
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β-Hydroxymethyl chalcone
0 ImagesCat. No.: HY-118394CAS No.: 1613310-15-8β-Hydroxymethyl chalcone is a time-dependent selective HDAC2 inhibitor, with IC50 values of 0.17 μM (24 h) and 9.19 μM (1 h). After binding to the catalytic zinc ion in the active pocket of HDAC2, β-Hydroxymethyl chalcone undergoes an intramolecular nucleophilic attack to form a cyclic product, resulting in time-dependent tight binding. β-Hydroxymethyl chalcone can be used for the study of HDAC2 selective inhibition and related epigenetic targets[1]. -
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Martinostat
0 ImagesCat. No.: HY-160092CAS No.: 1629052-58-9Martinostat is a HDAC inhibitor and can be labeled with radionuclides for quantitative imaging of HDACs in vivo in the central nervous system and major peripheral organs. -
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Pracinostat (Standard)
0 ImagesSynonyms: SB939 (Standard)Pracinostat (Standard) is the analytical standard of Pracinostat. This product is intended for research and analytical applications. Pracinostat is a potent histone deacetylase (HDAC) inhibitor, with IC50s of 40-140 nM, used for cancer research. Pracinostat also inhibits metallo-β-lactamase domain-containing protein 2 (MBLAC2) hydrolase activity with an EC50 below 10 nM. -
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Abexinostat (Standard)
0 ImagesCat. No.: HY-10990RCAS No.: 783355-60-2Synonyms: CRA 024781 (Standard); PCI-24781 (Standard)Abexinostat (Standard) is the analytical standard of Abexinostat (HY-10990). This product is intended for research and analytical applications. Abexinostat (CRA 024781) is a novel pan-HDAC inhibitor mostly targeting HDAC1 with Ki of 7 nM. Abexinostat also inhibits metallo-β-lactamase domain-containing protein 2 (MBLAC2) hydrolase activity with an EC50 below 10 nM. -
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HDAC-IN-2
0 ImagesCat. No.: HY-115585CAS No.: 1026295-98-6 -
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MMH409
0 ImagesCat. No.: HY-183426CAS No.: 2704554-86-7MMH409 is a selective HDAC8 inhibitor, with an IC50 value of 23 nM and a Kd value of 3.5 nM against human HDAC8, and an IC50 value of 11.64 μM against Schistosoma mansoni HDAC8. MMH409 reduces the viability of newly transformed schistosomula and adult worms of Schistosoma mansoni in vitro. MMH409 serves as a biological probe to investigate the pharmacological knockdown effect of HDAC8 in diseased cells. MMH409 can be used in studies related to neuroblastoma and schistosomiasis. -
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YF438
0 ImagesCat. No.: HY-164550CAS No.: 2247210-09-7YF438 is an HDAC inhibitor with effective anticancer activity both in vitro and in vivo. YF438 inhibits the growth and metastasis of triple-negative breast cancer (TNBC) cells by blocking the interaction between HDAC and MDM2, inducing the dissociation of MDM2-MDMX, and promoting the degradation of MDM2. -
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HDAC6-IN-78
0 ImagesCat. No.: HY-185359CAS No.: 2509539-79-9HDAC6-IN-78 (Example 48) is a selective HDAC6 inhibitor with an IC50 of 24 nM. HDAC6-IN-78 shows no activity against other HDAC isoforms. -
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TCR, GPCR and HDAC II interaction: Diverse agonists act through G-protein-coupled receptors (GPCRs) to activate the PKC-PKD axis, CaMK, Rho, or MHC binding to antigens stimulates TCR to activate PKD, leading to phosphorylation of class II HDACs. Phospho-HDACs dissociate from MEF2, bind 14-3-3, and are exported to the cytoplasm through a CRM1-dependent mechanism. CRM1 is inhibited by leptomycin B (LMB). Release of MEF2 from class II HDACs allows p300 to dock on MEF2 and stimulate gene expression. Dephosphorylation of class II HDACs in the cytoplasm enables reentry into the nucleus[1].
TLR: TLR signaling is initiated by ligand binding to receptors. The recruitment of TLR domain-containing adaptor protein MyD88 is repressed by HDAC6, whereas NF-κB and MTA-1 can be negatively regulated by HDAC1/2/3 and HDAC2, respectively. Acetylation by HATs enhance MKP-1 which inhibits p38-mediated inflammatory responses, while HDAC1/2/3 inhibits MKP-1 activity. HDAC1 and HDAC8 repress, whereas HDAC6 promotes, IRF function in response to viral challenge. HDAC11 inhibits IL-10 expression and HDAC1 and HDAC2 represses IFNγ-dependent activation of the CIITA transcription factor, thus affecting antigen presentation[2][3].
IRNAR: IFN-α/β induce activation of the type I IFN receptor and then bring the receptor-associated JAKs into proximity. JAK adds phosphates to the receptor. STATs bind to the phosphates and then phosphorylated by JAKs to form a dimer, leading to nuclear translocation and gene expression. HDACs positively regulate STATs and PZLF to promote antiviral responses and IFN-induced gene expression[2][3].
Cell cycle: In G1 phase, HDAC, Retinoblastoma protein (RB), E2F and polypeptide (DP) form a repressor complex. HDAC acts on surrounding chromatin, causing it to adopt a closed chromatin conformation, and transcription is repressed. Prior to the G1-S transition, phosphorylation of RB by CDKs dissociates the repressor complex. Transcription factors (TFs) gain access to their binding sites and, together with the now unmasked E2F activation domain. E2F is then free to activate transcription by contacting basal factors or by contacting histone acetyltransferases, such as CBP, that can alter chromatin structure[4].
The function of non-histone proteins is also regulated by HATs/HDACs. p53: HDAC1 impairs the function of p53. p53 is acetylated under conditions of stress or HDAC inhibition by its cofactor CREB binding protein (CBP) and the transcription of genes involved in differentiation is activated. HSP90: HSP90 is a chaperone that complexes with other chaperones, such as p23, to maintain correct conformational folding of its client proteins. HDAC6 deacetylates HSP90. Inhibition of HDAC6 would result in hyperacetylated HSP90, which would be unable to interact with its co-chaperones and properly lead to misfolded client proteins being targeted for degradation via the ubiquitin-proteasome system[5][6].
Reference:
[1]. Vega RB, et al. Protein kinases C and D mediate agonist-dependent cardiac hypertrophy through nuclear export of histone deacetylase 5.Mol Cell Biol. 2004 Oct;24(19):8374-85.
[2]. Shakespear MR, et al. Histone deacetylases as regulators of inflammation and immunity. Trends Immunol. 2011 Jul;32(7):335-43.
[3]. Suliman BA, et al. HDACi: molecular mechanisms and therapeutic implications in the innate immune system.Immunol Cell Biol. 2012 Jan;90(1):23-32.
[4]. Brehm A, et al. Retinoblastoma protein meets chromatin.Trends Biochem Sci. 1999 Apr;24(4):142-5.
[5]. Butler R, et al. Histone deacetylase inhibitors as therapeutics for polyglutamine disorders.Nat Rev Neurosci. 2006 Oct;7(10):784-96
[6]. Minucci S, et al. Histone deacetylase inhibitors and the promise of epigenetic (and more) treatments for cancer.Nat Rev Cancer. 2006 Jan;6(1):38-51.
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