Palmitate impairs circadian transcriptomics in muscle cells through histone modification of enhancers

Author:

Pillon Nicolas J1ORCID,Sardón Puig Laura2,Altıntaş Ali3ORCID,Kamble Prasad G2,Casaní-Galdón Salvador4,Gabriel Brendan M1ORCID,Barrès Romain3,Conesa Ana5,Chibalin Alexander V2ORCID,Näslund Erik6ORCID,Krook Anna1,Zierath Juleen R123ORCID

Affiliation:

1. Department of Physiology and Pharmacology, Section of Integrative Physiology, Karolinska Institutet, Stockholm, Sweden

2. Department of Molecular Medicine and Surgery, Section of Integrative Physiology, Karolinska Institutet, Stockholm, Sweden

3. Novo Nordisk Foundation Center for Basic Metabolic Research, University of Copenhagen, Copenhagen, Denmark

4. Biobam Bioinformatics S.L, Valencia, Spain

5. Department of Microbiology and Cell Science, University of Florida, Gainesville, FL, USA

6. Division of Surgery, Department of Clinical Sciences, Danderyd Hospital, Karolinska Institutet, Stockholm, Sweden

Abstract

Obesity and elevated circulating lipids may impair metabolism by disrupting the molecular circadian clock. We tested the hypothesis that lipid overload may interact with the circadian clock and alter the rhythmicity of gene expression through epigenomic mechanisms in skeletal muscle. Palmitate reprogrammed the circadian transcriptome in myotubes without altering the rhythmic mRNA expression of core clock genes. Genes with enhanced cycling in response to palmitate were associated with post-translational modification of histones. The cycling of histone 3 lysine 27 acetylation (H3K27ac), a marker of active gene enhancers, was modified by palmitate treatment. Chromatin immunoprecipitation and sequencing confirmed that palmitate exposure altered the cycling of DNA regions associated with H3K27ac. The overlap between mRNA and DNA regions associated with H3K27ac and the pharmacological inhibition of histone acetyltransferases revealed novel cycling genes associated with lipid exposure of primary human myotubes. Palmitate exposure disrupts transcriptomic rhythmicity and modifies enhancers through changes in histone H3K27 acetylation in a circadian manner. Thus, histone acetylation is responsive to lipid overload and may redirect the circadian chromatin landscape, leading to the reprogramming of circadian genes and pathways involved in lipid biosynthesis in skeletal muscle.

Funder

Novo Nordisk Foundation

EFSD/Novo Nordisk Foundation Future Leader Award

Swedish Diabetes Foundation

Swedish Research Council

KID-funding

Karolinska Institutet

European Commission

University of Copenhagen

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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