Purpose <p>Circulating branched-chain amino acid (BCAA) concentrations are one type of several biometrics shown to parallel severity of insulin resistance. Recently, inhibition of cytosolic branched-chain amino acid transaminase (BCATc) using BCATc inhibitor 2 (BI) was shown to reduce lipid accumulation in liver cells suggesting BI may improve aspects of metabolism. Given the correlation between BCAA and insulin resistance, one might expect inhibition of BCATc to alter insulin sensitivity if the enzyme plays a significant role in BCAA metabolism and if BCAA promote insulin resistance. Therefore, the purpose of the present report was to investigate the effects of BI on metabolism and insulin sensitivity in a myotube model of skeletal muscle insulin resistance.</p> Methods <p>C2C12 myotubes were treated with BI at 20µM for 24&#xa0;h, with and without hyperinsulinemic-induced insulin resistance. Mitochondrial and glycolytic metabolism were measured via oxygen consumption and extracellular acidification rate, respectively. Metabolic gene expression was assessed via qRT-PCR and insulin sensitivity was assessed by pAkt expression following insulin stimulation. Mitochondrial and lipid content were assessed using fluorescent staining. BCAA media content was assessed using liquid chromatography–mass spectrometry.</p> Results <p>Insulin resistance reduced basal and peak mitochondrial metabolism. BI co-treatment in insulin resistant cells further reduced peak mitochondrial function without altering mitochondrial content or insulin sensitivity. Surprisingly, BI also did not alter extracellular BCAA media content regardless of insulin sensitivity.</p> Conclusions <p>These data suggest BI may reduce myotube metabolism when coupled with insulin resistance. Further investigations are required to elucidate the implications in other experimental models.</p>

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The cytosolic branched-chain amino transferase 1 (BCAT1/BCATc) inhibitor reduces mitochondrial capacity in a myotube model of insulin resistance

  • Lindsey R. VanDerStad,
  • Emily C. Wyatt,
  • Norah E. Cook,
  • Macey R. McGovern,
  • Toheed Zaman,
  • Pamela M. Lundin,
  • Roger A. Vaughan

摘要

Purpose

Circulating branched-chain amino acid (BCAA) concentrations are one type of several biometrics shown to parallel severity of insulin resistance. Recently, inhibition of cytosolic branched-chain amino acid transaminase (BCATc) using BCATc inhibitor 2 (BI) was shown to reduce lipid accumulation in liver cells suggesting BI may improve aspects of metabolism. Given the correlation between BCAA and insulin resistance, one might expect inhibition of BCATc to alter insulin sensitivity if the enzyme plays a significant role in BCAA metabolism and if BCAA promote insulin resistance. Therefore, the purpose of the present report was to investigate the effects of BI on metabolism and insulin sensitivity in a myotube model of skeletal muscle insulin resistance.

Methods

C2C12 myotubes were treated with BI at 20µM for 24 h, with and without hyperinsulinemic-induced insulin resistance. Mitochondrial and glycolytic metabolism were measured via oxygen consumption and extracellular acidification rate, respectively. Metabolic gene expression was assessed via qRT-PCR and insulin sensitivity was assessed by pAkt expression following insulin stimulation. Mitochondrial and lipid content were assessed using fluorescent staining. BCAA media content was assessed using liquid chromatography–mass spectrometry.

Results

Insulin resistance reduced basal and peak mitochondrial metabolism. BI co-treatment in insulin resistant cells further reduced peak mitochondrial function without altering mitochondrial content or insulin sensitivity. Surprisingly, BI also did not alter extracellular BCAA media content regardless of insulin sensitivity.

Conclusions

These data suggest BI may reduce myotube metabolism when coupled with insulin resistance. Further investigations are required to elucidate the implications in other experimental models.