Effect of Chronic Hyperglycemia on Glucose Metabolism in Subjects With Normal Glucose Tolerance.

Shannon, Chris; Merovci, Aurora; Xiong, Juan; Tripathy, Devjit; Lorenzo, Felipe; McClain, Donald; Abdul-Ghani, Muhammad; Norton, Luke et al. · Diabetes · 2018

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Abstract

Chronic hyperglycemia causes insulin resistance, but the inheritability of glucotoxicity and the underlying mechanisms are unclear. We examined the effect of 3 days of hyperglycemia on glucose disposal, enzyme activities, insulin signaling, and protein <i>O</i>-GlcNAcylation in skeletal muscle of individuals without (FH<sup>-</sup>) or with (FH<sup>+</sup>) family history of type 2 diabetes. Twenty-five subjects with normal glucose tolerance received a [3-<sup>3</sup>H]glucose euglycemic insulin clamp, indirect calorimetry, and vastus-lateralis biopsies before and after 3 days of saline (<i>n</i> = 5) or glucose (<i>n</i> = 10 FH<sup>-</sup> and 10 FH<sup>+</sup>) infusion to raise plasma glucose by ∼45 mg/dL. At baseline, FH<sup>+</sup> had lower insulin-stimulated glucose oxidation and total glucose disposal (TGD) but similar nonoxidative glucose disposal and basal endogenous glucose production (bEGP) compared with FH<sup>-</sup> After 3 days of glucose infusion, bEGP and glucose oxidation were markedly increased, whereas nonoxidative glucose disposal and TGD were lower versus baseline, with no differences between FH<sup>-</sup> and FH<sup>+</sup> subjects. Hyperglycemia doubled skeletal muscle glycogen content and impaired activation of glycogen synthase (GS), pyruvate dehydrogenase, and Akt, but protein <i>O</i>-GlcNAcylation was unchanged. Insulin resistance develops to a similar extent in FH<sup>-</sup> and FH<sup>+</sup> subjects after chronic hyperglycemia, without increased protein <i>O</i>-GlcNAcylation. Decreased nonoxidative glucose disposal due to impaired GS activation appears to be the primary deficit in skeletal muscle glucotoxicity.

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