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Abnormal in vivo myocardial energy substrate uptake in diet-induced type 2 diabetic cardiomyopathy in rats

机译:饮食诱导的2型糖尿病心肌病大鼠体内心肌能量底物摄取异常

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摘要

The purpose of this study was to determine in vivo myocardial energy metabolism and function in a nutritional model of type 2 diabetes. Wistar rats rendered insulin-resistant and mildly hyperglycemic, hyperinsulinemic, and hypertriglyceridemic with a high-fructose/high-fat diet over a 6-wk period with injection of a small dose of streptozotocin (HFHFS) and control rats were studied using micro-PET (μPET) without or with a euglycemic hyperinsulinemic clamp. During glucose clamp, myocardial metabolic rate of glucose measured with [18F]fluorodeoxyglucose ([18F]FDG) was reduced by ~81% (P 0.05), whereas myocardial plasma nonesterified fatty acid (NEFA) uptake as determined by [18F]fluorothia-6-heptadecanoic acid ([ 18F]FTHA) was not significantly changed in HFHFS vs. control rats. Myocardial oxidative metabolism as assessed by [11C]acetate and myocardial perfusion index as assessed by [13N]ammonia were similar in both groups, whereas left ventricular ejection fraction as assessed by μPET was reduced by 26% in HFHFS rats (P 0.05). Without glucose clamp, NEFA uptake was ~40% lower in HFHFS rats (P 0.05). However, myocardial uptake of [18F]FTHA administered by gastric gavage was significantly higher in HFHFS rats (P 0.05). These abnormalities were associated with reduced Glut4 mRNA expression and increased Cd36 mRNA expression and mitochondrial carnitine palmitoyltransferase 1 activity (P 0.05). HFHFS rats display type 2 diabetes complicated by left ventricular contractile dysfunction with profound reduction in myocardial glucose utilization, activation of fatty acid metabolic pathways, and preserved myocardial oxidative metabolism, suggesting reduced myocardial metabolic efficiency. In this model, increased myocardial fatty acid exposure likely occurs from circulating triglyceride, but not from circulating plasma NEFA.
机译:这项研究的目的是确定2型糖尿病营养模型中的体内心肌能量代谢和功能。 Wistar大鼠在6周内注射少量链脲佐菌素(HFHFS),通过高果糖/高脂饮食使胰岛素抵抗,轻度高血糖,高胰岛素和高甘油三酸酯血症,并使用micro-PET研究了对照组大鼠(μPET)不带或带有正常血糖高胰岛素钳夹。在葡萄糖钳制过程中,用[18F]氟脱氧葡萄糖([18F] FDG)测定的心肌葡萄糖代谢率降低了约81%(P <0.05),而通过[18F]氟噻嗪测定的心肌血浆非酯化脂肪酸(NEFA)吸收与对照组相比,HFHFS中的-6-十六烷酸([18F] FTHA)没有明显变化。两组通过[11C]乙酸评估的心肌氧化代谢和[13N]氨评估的心肌灌注指数相似,而在HFHFS大鼠中,通过μPET评估的左心室射血分数降低了26%(P <0.05)。在没有葡萄糖钳夹的情况下,HFHFS大鼠的NEFA摄取降低了约40%(P <0.05)。然而,在HFHFS大鼠中,通过胃管饲法摄入的[18F] FTHA对心肌的摄取显着更高(P <0.05)。这些异常与降低的Glut4 mRNA表达和增加的Cd36 mRNA表达以及线粒体肉碱棕榈酰转移酶1活性有关(P <0.05)。 HFHFS大鼠表现出2型糖尿病并发左心室收缩功能障碍,心肌葡萄糖利用显着减少,脂肪酸代谢途径的激活,并保留了心肌的氧化代谢,提示心肌代谢效率降低。在该模型中,心肌脂肪酸暴露的增加可能是由于循环甘油三酸酯引起的,而不是由于血浆血浆NEFA引起的。

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