HDAC
Histone deacetylases
HDAC Isoform Specific Products
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HDAC Related Products (920)
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Antibodies (16)
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HDAC Signaling Pathway
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HDAC Isoform Comparison
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FLT3/HDAC-IN-3
0 ImagesCat. No.: HY-181086CAS No.: 2864394-30-7FLT3/HDAC-IN-3 is a dual inhibitor of FLT3 and HDAC. FLT3/HDAC-IN-3 potently inhibits FLT3 (IC50 = 14 nM), HDAC1 (IC50 = 27 nM), HDAC6 (IC50 = 20 nM), and FLT3D853Y (IC50 = 55 nM), exhibits weak activity against HDAC8, and shows no activity against HDAC4. FLT3/HDAC-IN-3 possesses kinase selectivity, plasma stability, and stability in human liver microsomes. FLT3/HDAC-IN-3 demonstrates anti-proliferative effects in a variety of hematological malignancy cell lines. FLT3/HDAC-IN-3 shows efficacy in the Jeko-1 xenograft model without observed significant toxicity. FLT3/HDAC-IN-3 can be used in the study of hematological malignancies. -
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HDAC6-IN-51
0 ImagesCat. No.: HY-169226CAS No.: 2994634-78-3HDAC6-IN-51 (Compound 7e) is a selective HDAC6 inhibitor with an IC50 value of 42.9 nM. HDAC6-IN-51 exhibits good anti-lung fibrosis activity. -
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Andrographidine E
0 ImagesCat. No.: HY-N16881CAS No.: 113963-41-0Andrographidine E is a COX-2 (IC50 = 19 μM) and HDAC inhibitor, with high affinity for HDAC1 and HDAC3. Andrographidine E can specifically bind to macrophages and has potential immunotargeting properties. Andrographidine E can be used for studying inflammation. -
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- Mz325
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KTT-1
0 ImagesCat. No.: HY-179216CAS No.: 2397562-26-2KTT-1 is a kinetically selective and orally active HDAC2 inhibitor. KTT-1 exhibits high HDAC2-selectivity over HDAC1. KTT-1 inhibits osteoclast differentiation at an early stage by downregulating c-Fos expression. KTT-1 effectively suppresses arthritis symptoms in the collagen-induced arthritis (CIA) mouse model. KTT-1 can be used for the research of rheumatoid arthritis and neurodegenerative diseases. -
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sEH/HDAC6-IN-2
0 ImagesCat. No.: HY-159171CAS No.: 3009011-58-6sEH/HDAC6-IN-2 is a potent dual soluble epoxide hydrolase (sEH) and HDAC6 inhibitor with IC50s of 0.9 nM, 46.8 nM, and 8 nM for human sEH, mouse sEH, and HDAC6, respectively. sEH/HDAC6-IN-2 can be used for the study of inflammatory pain. -
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PROTAC HDAC4 Degrader-1
0 ImagesCat. No.: HY-179321CAS No.: 3036245-14-1PROTAC HDAC4 Degrader-1 (compound SCT-1) is a potent and selective PROTAC HDAC4 degrader. PROTAC HDAC4 Degrader-1 reduces HDAC4 protein level, induces S phase cell cycle arrest, and inhibits cell colony formation, thereby inhibiting proliferation of the tumor cells. PROTAC HDAC4 Degrader-1 exhibits efficacy in a H460 mouse model. PROTAC HDAC4 Degrader-1 can be used for cancer research, such as lung cancer. -
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AMC-3-030
0 ImagesCat. No.: HY-180934CAS No.: 2926656-07-5AMC-3-030 is a selective and potent dual inhibitor targeting HDAC6 and chymotrypsin-like proteasome with IC50 values of 884 and 4.17 nM. AMC-3-030 has a proliferation inhibitory effect. AMC-3-030 can reduce α-tubulin and β-actin levels. AMC-3-030 can be used for research of multiple myeloma. -
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- HDAC-IN-81
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HDAC1/6-IN-3
0 ImagesCat. No.: HY-175176CAS No.: 3038691-85-6HDAC1/6-IN-3 is a potent HDAC inhibitor. HDAC1/6-IN-3 shows excellent inhibitory activities against HDAC1 (IC50 = 1.1 nM) and HDAC6 (IC50 = 2.7 nM). HDAC1/6-IN-3 significantly arrests HepG2 cells at the G0/G1 phase and induces apoptosis and pyroptosis. HDAC1/6-IN-3 exhibits significant antitumor activity in the HepG2 xenograft mode. HDAC1/6-IN-3 can be used for the study of cancers such as liver cancer, lung cancer, colon cancer and breast cancer. -
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Hdac8 Mouse Pre-designed siRNA Set A
0 ImagesCat. No.: HY-RS06086 -
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Valproic acid magnesium
0 ImagesCat. No.: HY-W794759CAS No.: 62959-43-7Synonyms: Magnesium valproate; VPA magnesium; 2-Propylpentanoic acid magnesiumValproic acid magnesium (Magnesium valproate) is an orally active HDAC inhibitor, with IC50 in the range of 0.5 and 2 mM. Valproic acid magnesium inhibits HDAC1 (IC50, 400 μM), and induces proteasomal degradation of HDAC2. Valproic acid magnesium activates Notch1 signaling and inhibits proliferation in small cell lung cancer (SCLC) cells. Valproic acid magnesium is used in the epilepsy, bipolar disorder, metabolic disease, HIV infection and prevention of migraine headaches. -
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HPO-DAEE
0 ImagesCat. No.: HY-158205CAS No.: 1895934-61-8Synonyms: 4-Hydroperoxy-2-decenoic acid ethyl esterHPO-DAEE (4-Hydroperoxy-2-decenoic acid ethyl ester) elicits nuclear accumulation of Nrf2 and activated antioxidant response element (ARE). HPO-DAEE induces antioxidant genes upregulation (eg: HO-1) through Nrf2-ARE signaling. HPO-DAEE induces reactive oxygen species generation. HPO-DAEE also inhibits histone deacetylase and upregulate expression of extracellular superoxide dismutase via histone acetylation. HPO-DAEE protects against 6-hydroxydopamine-induced cell death via activation of Nrf2-ARE and eIF2α-ATF4 pathways. -
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Leuxinostat
0 ImagesCat. No.: HY-162658Leuxinostat is an inhibitor for HDAC with IC50 of 30 nM for hHDAC6. Leuxinostat inhibits the proliferation of cells THP1, K562, U937 and MEK1, induces apoptosis in leukemia cells NB4 and MOLT-4. Leuxinostat inhibits the expansion of hematopoietic stem cells and exhibits antileukemic activity in zebrafish models. -
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HDAC-IN-64
0 ImagesCat. No.: HY-156003CAS No.: 3052688-17-9HDAC-IN-64 (Compound 13) is a HDAC inhibitor. HDAC-IN-64 inhibits HDAC4/5/6/7/9 with IC50s of 24, 45, 85, 31, 37 nM. HDAC-IN-64 has anti-proliferative activity and anti-migration properties on prostate cancer (PCA) cells. HDAC-IN-64 inhibits LNCaP and RWPE-1 cell growth with GI50 of 0.32 and 1.1 μM respectively. -
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- c-Met/HDAC-IN-4
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Nanatinostat TFA
0 ImagesCat. No.: HY-13432ACAS No.: 1256448-48-2Synonyms: CHR-3996 TFANanatinostat (CHR-3996) TFA is a potent, class I selective and orally active HDAC inhibitor with IC50s of 3 nM, 4 nM, and 7 nM for HDAC1, HDAC2, and HDAC3, respectively. Nanatinostat TFA has low activity against HDAC5 (IC50 of 200 nM) and HDAC6 (IC50 of 2100 nM). Nanatinostat TFA induces apoptosis in myeloma cells. Nanatinostat TFA has potent anticancer effects, such as myeloma, advanced solid tumours and colorectal cancer. -
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CM-414
0 ImagesCat. No.: HY-119316CAS No.: 2007971-51-7CM-414 is a brain-penetrant phosphodiesterase 5 (PDE5) and HDAC inhibitor with IC50s of 60 nM, 91 nM, 310 nM, 322 nM and 490 nM for PDE5, HDAC6, HDAC1, HDAC3 and HDAC2, respectively. CM-414 diminishes brain Aβ and tau phosphorylation (pTau) level in Tg2576 mice. CM-414 can be used for the study of Alzheimer's disease (AD). -
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- Fimepinostat mesylate
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PROTAC HDAC3 degrader-1
0 ImagesCat. No.: HY-181767CAS No.: 3133883-15-2PROTAC HDAC3 degrader-1 is a selective PROTAC degrader targeting HDAC3 with a DC50 of 30.73 nM. PROTAC HDAC3 degrader-1 induces degradation of HDAC3 via the ubiquitin-proteasome system. PROTAC HDAC3 degrader-1 promotes apoptosis, induces DNA damage, and downregulates anti-apoptotic proteins Mcl-1 and Bcl-xL. PROTAC HDAC3 degrader-1 can be used for the research of acute myeloid leukemia. -
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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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