Target intelligence / Profile preview

Histone deacetylases (HDACs) (HDACs)

Target
HDACs
Molecular classification
Enzyme, Histone modification enzyme, Epigenetic regulator, Chromatin-modifying enzyme, Class I HDAC, Class IIa HDAC, Class IIb HDAC, Class IV HDAC
01

Overview

Histone deacetylases (HDACs) are a family of zinc-dependent enzymes that catalyze the removal of acetyl groups from lysine residues on histones and other nuclear proteins, leading to chromatin condensation and repression of gene transcription. Mammalian HDACs are classified into four groups based on sequence similarity and domain structure: Class I (HDAC1, 2, 3, 8), Class IIa (HDAC4, 5, 7, 9), Class IIb (HDAC6, 10), and Class IV (HDAC11). They are involved in key cellular processes including cell cycle regulation, apoptosis, differentiation, and maintenance of epigenetic state. Aberrant HDAC activity often contributes to pathogenic states including cancer, immune disorders, and neurodegeneration, making them significant therapeutic targets. HDAC inhibitors have emerged as an important class of drugs, modifying gene expression by promoting histone acetylation, with approved indications in certain hematologic cancers and ongoing research in solid tumors, CNS disease, and other chronic conditions. Isoform-specific expression and subcellular localization contribute to their diverse biological functions.

Other names
Histone deacetylase (general family name)Class I HDACs (HDAC1, HDAC2, HDAC3, HDAC8)Class IIa HDACs (HDAC4, HDAC5, HDAC7, HDAC9)Class IIb HDACs (HDAC6, HDAC10)Class IV HDAC (HDAC11)Other species-specific or experimental designations (Hda1, Rpd3 in yeast)
02

Mechanism of action

Inhibition of histone deacetylase enzymatic activity: drugs bind to HDAC active sites, preventing removal of acetyl groups from lysines on histones and non-histone proteins. Chromatin relaxation and transcriptional upregulation: increased histone acetylation opens chromatin, enabling expression of genes including those mediating cell cycle arrest, apoptosis, and differentiation. Disruption of protein-protein interactions: inhibition can affect HDAC complex formation and function, modulating signaling and transcription. Induction of DNA damage and cellular stress: some inhibitors trigger DNA damage responses.

03

Biological functions

Regulation of gene expression via chromatin structure modificationCell cycle controlCell differentiationCell proliferationApoptosis (programmed cell death)Developmental processes and cell fate determinationDNA repair, response to DNA damageImmune response regulation (HDACs can modulate cytokine expression and T cell function)
04

Disease associations

Cancer (HDACs are frequently dysregulated or overexpressed in multiple cancers)Neurodegenerative disease (notably class IIa HDACs – HDAC4, HDAC5, HDAC7, HDAC9)Inflammation and immune disordersCardiovascular disease (HDAC inhibition: cardiac hypertrophy, heart failure)Other epigenetic and developmental syndromes
05

Safety considerations

Hematologic toxicity (thrombocytopenia, neutropenia, anemia from pan-HDAC inhibition)Gastrointestinal effects (nausea, vomiting, diarrhea)Cardiac arrhythmias and QT prolongation (romidepsin, panobinostat)Fatigue and other non-specific toxicitiesOff-target effects and isoform selectivity concerns (class non-selective HDAC inhibitors may have more side effects; isoform-selective agents are under development)Teratogenicity, neuropsychiatric side effects (valproic acid)
06

Interacting drugs

Vorinostat (SAHA)

7 more in the full profile.

07

Biomarkers

HDAC expression level (tumor or tissue expression, sometimes HDAC1 or HDAC6 are measured for prognosis/response)Global or specific histone acetylation levelsGene expression signatures regulated by HDAC substratesDNA damage markers (e.g., γ-H2AX following HDAC inhibitor treatment)

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