Skeletal muscle enhancer interactions identify genes controlling whole-body metabolism

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Kristine Williams
Lars R. Ingerslev
Jette Bork-Jensen
Martin Wohlwend
Ann Normann Hansen
Lewin Small
Rasmus Ribel-Madsen
Arne Astrup
Oluf Pedersen
Johan Auwerx
Christopher T. Workman
Niels Grarup
Torben Hansen
Romain Barrès
机构
[1] University of Copenhagen,Novo Nordisk Foundation Center for Basic Metabolic Research, Faculty of Health and Medical Sciences
[2] Interfaculty Institute of Bioengineering,Laboratory of Integrative and Systems Physiology
[3] École Polytechnique Fédérale de Lausanne,Department of Nutrition, Exercise and Sports Science, Faculty of Science
[4] University of Copenhagen,Department of Biotechnology and Biomedicine
[5] Technical University of Denmark,undefined
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Obesity and type 2 diabetes (T2D) are metabolic disorders influenced by lifestyle and genetic factors that are characterized by insulin resistance in skeletal muscle, a prominent site of glucose disposal. Numerous genetic variants have been associated with obesity and T2D, of which the majority are located in non-coding DNA regions. This suggests that most variants mediate their effect by altering the activity of gene-regulatory elements, including enhancers. Here, we map skeletal muscle genomic enhancer elements that are dynamically regulated after exposure to the free fatty acid palmitate or the inflammatory cytokine TNFα. By overlapping enhancer positions with the location of disease-associated genetic variants, and resolving long-range chromatin interactions between enhancers and gene promoters, we identify target genes involved in metabolic dysfunction in skeletal muscle. The majority of these genes also associate with altered whole-body metabolic phenotypes in the murine BXD genetic reference population. Thus, our combined genomic investigations identified genes that are involved in skeletal muscle metabolism.
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