4.0 Article

Effects of ketoisocaproic acid and inflammation on glucose transport in muscle cells

期刊

PHYSIOLOGICAL REPORTS
卷 9, 期 1, 页码 -

出版社

WILEY
DOI: 10.14814/phy2.14673

关键词

BCAAs; BCAT2; BCKD; insulin resistance; insulin sensitivity; skeletal muscle

资金

  1. Natural Sciences and Engineering Research Council of Canada [2015-05165]

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The study found that defects in branched-chain amino acid metabolism are associated with insulin resistance in myotubes, especially in the presence of KIC. Increasing BCAA catabolism may help promote muscle glucose utilization, improve insulin resistance, and its related consequences.
Branched-chain amino acids (BCAAs) are regulators of protein metabolism. However, elevated levels of BCAAs and their metabolites are linked to insulin resistance. We previously demonstrated that the leucine metabolite, alpha-ketoisocaproate (KIC), inhibited insulin-stimulated glucose transport in myotubes. Like KIC, inflammatory factors are implicated in the development of insulin resistance. Here, we analyzed the effect of KIC and inflammatory factors (homocysteine [50 mu M], TNF-alpha [10 ng/ml], and interleukin 6 (IL-6) [10 ng/ml]) on myotubes. Although KIC suppressed insulin-stimulated glucose transport, addition of the inflammatory factors did not worsen this effect. Depletion of branched-chain aminotransferase 2, the enzyme that catalyzes the conversion of leucine into KIC, abrogated the effect of KIC and the inflammatory factors. The effect of insulin on AKT(S473) and S6K1(T389) phosphorylation was not modified by treatments. There were no treatment effects on glycogen synthase phosphorylation. Depletion of E1 alpha subunit of branched-chain alpha-keto acid dehydrogenase, the enzyme that catalyzes the oxidative decarboxylation of KIC, suppressed insulin-stimulated glucose transport, especially in cells incubated in KIC. Thus, defects in BCAA catabolism are contributory to insulin resistance of glucose transport in myotubes, especially in the presence of KIC. Interventions that increase BCAA catabolism may promote muscle glucose utilization and improve insulin resistance and its sequelae.

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