4.5 Article

HDAC inhibition attenuates cardiac hypertrophy by acetylation and deacetylation of target genes

Journal

EPIGENETICS
Volume 10, Issue 5, Pages 418-430

Publisher

TAYLOR & FRANCIS INC
DOI: 10.1080/15592294.2015.1024406

Keywords

histone acetylation; cardiac hypertrophy; chromatin; next generation sequencing; epigenetics; HDAC inhibitor; Il21r, Interleukin-21 receptor; Il6ra, Interleukin-6 receptor; Traf3, TNF receptor-associated factor 3; TF, transcription factor; Icam1, Intercellular adhesion molecule 1; Vcam1, Vascular cell adhesion molecule 1; TSA, Trichostatin A; Ticam2, Toll-like receptor adaptor molecule 2; MACs, Model-based Analysis of ChIP-seq; BNP, Brain natriuretic peptide; FS, Fractional Shortening; FDR, False Discovery Rate; ANP, Atrial natriuretic peptide; Serca2a, Sarcoplasmic reticulum Ca2+ ATPase; ENCODE, Encyclopedia of DNA Elements Consortium; GAIIx, Genome Analyzer IIx; HDAC, Histone deacetylase; ChIP, Chromatin Immunoprecipitation; TAC, Transverse Aortic Constriction; UTR, Untranslated region; LV, Left Ventricle; LVDd, Left Ventricular Diastolic Dimension; alpha/beta MHC, Alpha/Beta myosin heavy chain; TL, Tibia Length; TAC veh, TAC vehicle; LVH, Left Ventricle Hypertrophy; Cxcl10, Chemokine (C-X-C Motif) ligand 10; C-t, threshold cycle number; NF kappa B, Nuclear factor of kappa light polypeptide gene enhancer in B-cells; TSS, Transcription Start Site; NGS, Next Generation Sequencing; NES, normalized enrichment score; SEM, Standard Error of the Mean; cDNA, complementary DNA; BW, Body Weight

Funding

  1. National Health and Medical Research Council (NHMRC)
  2. Victorian Government's Operational Infrastructure Support program

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Pharmacological histone deacetylase (HDAC) inhibitors attenuate pathological cardiac remodeling and hypertrophic gene expression; yet, the direct histone targets remain poorly characterized. Since the inhibition of HDAC activity is associated with suppressing hypertrophy, we hypothesized histone acetylation would target genes implicated in cardiac remodeling. Trichostatin A (TSA) regulates cardiac gene expression and attenuates transverse aortic constriction (TAC) induced hypertrophy. We used chromatin immunoprecipitation (ChIP) coupled with massive parallel sequencing (ChIP-seq) to map, for the first time, genome-wide histone acetylation changes in a preclinical model of pathological cardiac hypertrophy and attenuation of pathogenesis with TSA. Pressure overload-induced cardiac hypertrophy was associated with histone acetylation of genes implicated in cardiac contraction, collagen deposition, inflammation, and extracellular matrix identified by ChIP-seq. Gene set enrichment analysis identified NF-kappa B (NF-kappa B) transcription factor activation with load induced hypertrophy. Increased histone acetylation was observed on the promoters of NF kappa B target genes (Icam1, Vcam1, Il21r, Il6ra, Ticam2, Cxcl10) consistent with gene activation in the hypertrophied heart. Surprisingly, TSA attenuated pressure overload-induced cardiac hypertrophy and the suppression of NF kappa B target genes by broad histone deacetylation. Our results suggest a mechanism for cardioprotection subject to histone deacetylation as a previously unknown target, implicating the importance of inflammation by pharmacological HDAC inhibition. The results of this study provides a framework for HDAC inhibitor function in the heart and argues the long held views of acetylation is subject to more flexibility than previously thought.

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