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Updated: May 5, 2026

Isolation and Differentiation of Primary Myoblasts from Mouse Skeletal Muscle Explants
Published on: October 15, 2019
High-density lipoprotein maintains skeletal muscle function by modulating cellular respiration in mice
Maarit Lehti1, Elizabeth Donelan, William Abplanalp
1Diabetes Research Department (IDO and IDR), Helmholtz Zentrum München, German Research Center for Environmental Health, München/Neuherberg, Germany (M.L., M.K., T.O., C.S., S.C., P.T.P., S.M.H.); Metabolic Diseases Institute, Division of Endocrinology, Department of Internal Medicine, University of Cincinnati, Cincinnati, OH (M.L., E.D., W.A., O.A.-M., K.M.H., J.W., C.R., J.M., S.S., C.T., R.K., S.M.G., R.A.G.D.S., D.D., W.S.D., S.M.H.); LIKES Research Center for Sport and Health Sciences, Jyväskylä, Finland (M.L.); Energy Metabolism Laboratory ETH Zurich (Swiss Federal Institute of Technology), Zurich, Switzerland (J.M.); Department of Pharmacology and Toxicology, Zydus Research Centre, Cadila Healthcare Limited, Ahmedabad, India (C.T.); Univ Paris Diderot, Sorbonne Paris Cité, Unité de Biologie Fonctionnelle et Adaptative, Paris, France (S.L., J.C., S.M.); Centre National de la Recherche Scientifique, Paris, France (S.L., J.C., S.M.); and Medizinische Klinik, Ludwig Maximilians University, Munich, Germany (S.M.H.).
Background:
Abnormal glucose metabolism is a central feature of disorders with increased rates of cardiovascular disease. Low levels of high-density lipoprotein (HDL) are a key predictor for cardiovascular disease. We used genetic mouse models with increased HDL levels (apolipoprotein A-I transgenic [apoA-I tg]) and reduced HDL levels (apoA-I-deficient [apoA-I ko]) to investigate whether HDL modulates mitochondrial bioenergetics in skeletal muscle.
Methods And Results:
ApoA-I ko mice exhibited fasting hyperglycemia and impaired glucose tolerance test compared with wild-type mice. Mitochondria isolated from gastrocnemius muscle of apoA-I ko mice displayed markedly blunted ATP synthesis. Endurance capacity during exercise exhaustion test was impaired in apoA-I ko mice. HDL directly enhanced glucose oxidation by increasing glycolysis and mitochondrial respiration rate in C2C12 muscle cells. ApoA-I tg mice exhibited lower fasting glucose levels, improved glucose tolerance test, increased lactate levels, reduced fat mass, associated with protection against age-induced decline of endurance capacity compared with wild-type mice. Circulating levels of fibroblast growth factor 21, a novel biomarker for mitochondrial respiratory chain deficiencies and inhibitor of white adipose lipolysis, were significantly reduced in apoA-I tg mice. Consistent with an increase in glucose utilization of skeletal muscle, genetically increased HDL and apoA-I levels in mice prevented high-fat diet-induced impairment of glucose homeostasis.
Conclusions:
In view of impaired mitochondrial function and decreased HDL levels in type 2 diabetes mellitus, our findings indicate that HDL-raising therapies may preserve muscle mitochondrial function and address key aspects of type 2 diabetes mellitus beyond cardiovascular disease.
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