Abstract
<p dir="ltr"><a href="" target="_blank">Diabetes and obesity are risk factors for kidney disease. While renal glucose production increases in diabetes, recent data suggest that gluconeogenic and oxidative capacity decline in kidney disease. Thus, metabolic dysregulation caused by diet-induced insulin resistance may sensitize the kidney for a loss in function. Here we examined how diet-induced insulin resistance disrupts mitochondrial metabolic fluxes in the renal cortex <i>in vivo</i>. C57Bl/6J mice were rendered insulin resistant through high-fat (HF) feeding; anaplerotic, cataplerotic, and oxidative metabolic fluxes in the cortex were quantified through <sup>13</sup>C-isotope tracing during a hyperinsulinemic-euglycemic clamp. </a><a href="" target="_blank">As expected, HF-fed mice exhibited increased body weight, gluconeogenesis, and systemic insulin resistance compared to chow-fed mice. </a><a href="" target="_blank">Relative to the citric acid cycle, HF-feeding increased metabolic flux through pyruvate carboxylation (anaplerosis) and phosphoenolpyruvate carboxykinase (cataplerosis) while decreasing flux through the pyruvate dehydrogenase complex in the cortex. Furthermore, the relative flux from non-pyruvate sources of acetyl-CoA profoundly increased in the cortex of HF-fed mice, correlating with a marker of oxidative stress. </a><a href="" target="_blank">The data demonstrate that HF-feeding spares pyruvate from dehydrogenation at the expense of increasing cataplerosis, which may underpin renal gluconeogenesis during insulin resistance</a>; the results also support the hypothesis that dysregulated oxidative metabolism in the kidney contributes to metabolic disease.</p>
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