Altered miR-29 Expression in Type 2 Diabetes Influences Glucose and Lipid Metabolism in Skeletal Muscle

Author:

Massart Julie1,Sjögren Rasmus J.O.1,Lundell Leonidas S.2,Mudry Jonathan M.1,Franck Niclas2,O’Gorman Donal J.34,Egan Brendan3,Zierath Juleen R.12ORCID,Krook Anna2ORCID

Affiliation:

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

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

3. School of Health and Human Performance, Dublin City University, Dublin, Ireland

4. 3U Diabetes Consortium, National Institute for Cellular Biotechnology, Dublin City University, Dublin, Ireland

Abstract

MicroRNAs have emerged as important regulators of glucose and lipid metabolism in several tissues; however, their role in skeletal muscle remains poorly characterized. We determined the effects of the miR-29 family on glucose metabolism, lipid metabolism, and insulin responsiveness in skeletal muscle. We provide evidence that miR-29a and miR-29c are increased in skeletal muscle from patients with type 2 diabetes and are decreased following endurance training in healthy young men and in rats. In primary human skeletal muscle cells, inhibition and overexpression strategies demonstrate that miR-29a and miR-29c regulate glucose uptake and insulin-stimulated glucose metabolism. We identified that miR-29 overexpression attenuates insulin signaling and expression of insulin receptor substrate 1 and phosphoinositide 3-kinase. Moreover, miR-29 overexpression reduces hexokinase 2 expression and activity. Conversely, overexpression of miR-29 by electroporation of mouse tibialis anterior muscle decreased glucose uptake and glycogen content in vivo, concomitant with decreased abundance of GLUT4. We also provide evidence that fatty acid oxidation is negatively regulated by miR-29 overexpression, potentially through the regulation of peroxisome proliferator–activated receptor γ coactivator-1α expression. Collectively, we reveal that miR-29 acts as an important regulator of insulin-stimulated glucose metabolism and lipid oxidation, with relevance to human physiology and type 2 diabetes.

Funder

Strategic Diabetes Program at Karolinska Institutet

European Research Council

Vetenskapsrådet

Swedish Diabetes Foundation

Stiftelsen för Strategisk Forskning

Diabetes Wellness Sweden

Novo Nordisk Foundation

Swedish Research Council for Sport Science

Torsten Söderbergs Foundation

Stockholm Läns Landsting

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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