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Extracellular vesicle transfer of miR-1 to adipose tissue modifies lipolytic pathways following resistance exercise
Benjamin I. Burke, Ahmed Ismaeel, Douglas E. Long, Lauren A. Depa, Peyton T. Coburn, Jensen Goh, Tolulope P. Saliu, Bonnie J. Walton, Ivan J. Vechetti, Bailey D. Peck, Taylor R. Valentino, C. Brooks Mobley, Hasiyet Memetimin, Dandan Wang, Brian S. Finlin, Philip A. Kern, Charlotte A. Peterson, John J. McCarthy, Yuan Wen
Benjamin I. Burke, Ahmed Ismaeel, Douglas E. Long, Lauren A. Depa, Peyton T. Coburn, Jensen Goh, Tolulope P. Saliu, Bonnie J. Walton, Ivan J. Vechetti, Bailey D. Peck, Taylor R. Valentino, C. Brooks Mobley, Hasiyet Memetimin, Dandan Wang, Brian S. Finlin, Philip A. Kern, Charlotte A. Peterson, John J. McCarthy, Yuan Wen
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Research Article Metabolism Muscle biology

Extracellular vesicle transfer of miR-1 to adipose tissue modifies lipolytic pathways following resistance exercise

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Abstract

Extracellular vesicles (EVs) have emerged as important mediators of intertissue signaling and exercise adaptations. In this human study, we provide evidence that muscle-specific microRNA-1 (miR-1) was transferred to adipose tissue via EVs following an acute bout of resistance exercise. Using a multimodel machine learning automation tool, we discovered muscle primary miR-1 transcript and CD63+ EV count in circulation as top explanatory features for changes in adipose miR-1 levels in response to resistance exercise. RNA-Seq and in-silico prediction of miR-1 target genes identified caveolin 2 (CAV2) and tripartite motif containing 6 (TRIM6) as miR-1 target genes downregulated in the adipose tissue of a subset of participants with the highest increases in miR-1 levels following resistance exercise. Overexpression of miR-1 in differentiated human adipocyte-derived stem cells downregulated these miR-1 targets and enhanced catecholamine-induced lipolysis. These data identify a potential EV-mediated mechanism by which skeletal muscle communicates with adipose tissue and modulates lipolysis via miR-1.

Authors

Benjamin I. Burke, Ahmed Ismaeel, Douglas E. Long, Lauren A. Depa, Peyton T. Coburn, Jensen Goh, Tolulope P. Saliu, Bonnie J. Walton, Ivan J. Vechetti, Bailey D. Peck, Taylor R. Valentino, C. Brooks Mobley, Hasiyet Memetimin, Dandan Wang, Brian S. Finlin, Philip A. Kern, Charlotte A. Peterson, John J. McCarthy, Yuan Wen

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Figure 3

RNA-Seq analyses reveal elevated EV uptake pathways in participants with high adipose miR-1 in response to exercise and identifies potential miR-1 target genes.

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RNA-Seq analyses reveal elevated EV uptake pathways in participants with...
Expression of (A) miR-1, (B) β-adrenergic receptor 1 (ADR-β1), ADR-β2, and ADR-β3 in adipose tissue in participants with high (n = 6) versus low (n = 6) changes in miR-1. (C) Comparison of gene expression between high and low miR-1 responders. Gene enrichment analyses for upregulated and downregulated genes (D and E) with differences in expression levels between high and low miR-1 responders for selected genes (F–I). Data are expressed with box plots (Data are expressed with box plots displaying the 90th and 10th percentiles at the whiskers). FMNL, formin-like 1; GNLY, granulysin; PEX19, peroxisomal biogenesis factor 19; ACOT2, acyl-CoA thioesterase 2; IDH1, isocitrate dehydrogenase 1; DGAT2, diacylglycerol O-acyltransferase 2; GPAM, glycerol-3-phosphate acyltransferase; MOGAT2, monoacylglycerol O-acyltransferase 2.

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