HDAC
Histone deacetylases
HDAC Isoform Specific Products
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HDAC Inhibitors
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HDAC Related Products (915)
Related Products (915)
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Antibodies (16)
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HDAC Signaling Pathway
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HDAC Isoform Comparison
- HDAC-IN-41
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Nullscript
0 ImagesNullscript is a negative control for Scriptaid. Nullscript is a known inactive analog of Scriptaid. Scriptaid is a representative HDAC inhibitor. Nullscript inhibits Cryptosporidium (C. parvum) growth with the IC50 value of 2.1 μM. -
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2-Hexyl-4-pentynoic acid
0 ImagesSynonyms: (±)-2-Hexyl-4-pentynoic acid2-Hexyl-4-pentynoic acid ((±)-2-Hexyl-4-pentynoic acid), a Valproic acid (HY-10585) derivative, exhibits potential roles of HDAC inhibition (IC50 = 13 μM) and HSP70 induction. 2-Hexyl-4-pentynoic acid causes histone hyperacetylation and protect against glutamate-induced excitotoxicity in cultured neurons. 2-Hexyl-4-pentynoic acid can be used for the study of breast carcinoma. 2-Hexyl-4-pentynoic acid 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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HDAC3-IN-3
0 ImagesCat. No.: HY-161154CAS No.: 2170996-03-7 -
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HDAC-IN-69
0 ImagesCat. No.: HY-124022CAS No.: 676599-90-9 -
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Hdac7 Mouse Pre-designed siRNA Set A
0 ImagesCat. No.: HY-RS06083 -
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GK718
0 ImagesCat. No.: HY-155329CAS No.: 3032392-65-4 -
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HDAC6-IN-31
0 ImagesCat. No.: HY-161155HDAC6-IN-31 (compound 8m) is a selective HDAC6 inhibitor, with the IC50 value of 0.026 μM, that significantly inhibits the production and release of pro-inflammatory cytokines. While HDAC6 is critically involved in the activation of inflammasomes, HDAC6-IN-31 has the potential to inhibit NLRP3 inflammasome-driven inflammatory diseases. HDAC6-IN-31 also inhibits glioblastoma cell migration. -
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HDAC/HSP90-IN-1
0 ImagesCat. No.: HY-130273CAS No.: 2244714-37-0HDAC/HSP90-IN-1 (compound 20) is a potent dual inhibitor of HDAC (IC50 = 194 nM) and HSP90 (HSP90α IC50 = 153 nM). HDAC/HSP90-IN-1 induces HSP70 expression, downregulates HSP90 client proteins, and promotes acetylation of α-tubulin and histone H3 in cancer cells. HDAC/HSP90-IN-1 reduces PD-L1 expression in IFN-γ treated H1975 cells. HDAC/HSP90-IN-1 can be used for cancer research, such as lung and colon cancer. -
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- ALK/HDAC-IN-1
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HDAC-IN-42
0 ImagesCat. No.: HY-147892CAS No.: 2454024-18-9HDAC-IN-42 (compound 14f) is a potent and selective HDAC inhibitor with IC50 values of 0.19 and 4.98 µM for HDAC1 and HDAC6, respectively. HDAC-IN-42 shows anticancer and anti-proliferative activity. HDAC-IN-42 induces apoptosis and cell cycle arrest at G2/M phase. -
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- HDAC-IN-9
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HDAC6-IN-87
0 ImagesCat. No.: HY-189296CAS No.: 3122437-17-3HDAC6-IN-87 is a selective HDAC6 inhibitor (IC50 = 4.29 nM). HDAC6-IN-87 weakly inhibits HDAC1 (IC50 = 749.59 nM), HDAC3 (IC50 = 813.09 nM), and HDAC10 (IC50 = 679.25 nM). HDAC6-IN-87 exhibits broad-spectrum antitumor activity, elevates α-tubulin acetylation levels without affecting histone H3 acetylation, and induces cell cycle arrest and apoptosis. HDAC6-IN-87 can be used for cancer-related research. -
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(±)-trans-BAS-2
0 ImagesCat. No.: HY-184505CAS No.: 2790482-16-3(±)-trans-BAS-2 is a hHDAC6 inhibitor with an IC50 value of 0.462 μM. (±)-trans-BAS-2 serves as a scaffold for the design of proteolysis-targeting chimeras (PROTACs) and induces proteasome-dependent degradation of hHDAC6 in cells. (±)-trans-BAS-2 can be used in the research of triple-negative breast cancer and multiple myeloma. -
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Top/HDAC-IN-2
0 ImagesCat. No.: HY-145852CAS No.: 2775446-64-3 -
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HDAC-IN-63
0 ImagesCat. No.: HY-149474CAS No.: 2920046-95-1HDAC-IN-63 (Compound 63) is a dual FLT3/HDAC inhibitor (IC50: 0.844 and 30.0 nM for FLT3 and HDAC1 respectively). HDAC-IN-63 inhibits MV4-11 cell proliferation (IC50: 92 nM. HDAC-IN-63 induces apoptosis and arrests cell cycle in MV4-11 cells. HDAC-IN-63 can be used for research of acute myeloid leukemia (AML). -
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HDAC-IN-95
0 ImagesCat. No.: HY-17667CAS No.: 127588-56-1HDAC-IN-95 (Compound 9) is a HDAC inhibitor. HDAC-IN-95 can be used for the study of non-small cell lung cancer (NSCLC). -
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- HDAC6 ligand-Linker Conjugate 2
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- PROTAC HDAC6 degrader 1
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- HDAC8/BRPF1-IN-1
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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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