4.7 Article

A MED13-dependent skeletal muscle gene program controls systemic glucose homeostasis and hepatic metabolism

Journal

GENES & DEVELOPMENT
Volume 30, Issue 4, Pages 434-446

Publisher

COLD SPRING HARBOR LAB PRESS, PUBLICATIONS DEPT
DOI: 10.1101/gad.273128.115

Keywords

glucose homeostasis; mediator complex; skeletal muscle; NURR1/NR4A2

Funding

  1. National Institutes of Health [HL-077439, HL-111665, HL093039, DK-099653, DK-094973, U01-HL-100401]
  2. Foundation Leducq Networks of Excellence
  3. Cancer Prevention and Research Institute of Texas
  4. Robert A. Welch Foundation [1-0025]

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The Mediator complex governs gene expression by linking upstream signaling pathways with the basal transcriptional machinery. However, how individual Mediator subunits may function in different tissues remains to be investigated. Through skeletal muscle-specific deletion of the Mediator subunit MED13 in mice, we discovered a gene regulatory mechanism by which skeletal muscle modulates the response of the liver to a high-fat diet. Skeletal muscle-specific deletion of MED13 in mice conferred resistance to hepatic steatosis by activating a metabolic gene program that enhances muscle glucose uptake and storage as glycogen. The consequent insulin-sensitizing effect within skeletal muscle lowered systemic glucose and insulin levels independently of weight gain and adiposity and prevented hepatic lipid accumulation. MED13 suppressed the expression of genes involved in glucose uptake and metabolism in skeletal muscle by inhibiting the nuclear receptor NURR1 and the MEF2 transcription factor. These findings reveal a fundamental molecular mechanism for the governance of glucose metabolism and the control of hepatic lipid accumulation by skeletal muscle. Intriguingly, MED13 exerts opposing metabolic actions in skeletal muscle and the heart, highlighting the customized, tissue-specific functions of the Mediator complex.

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