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严重肥胖症患者原代肌管中三羧酸循环通量的改变。

Altered tricarboxylic acid cycle flux in primary myotubes from severely obese humans.

机构信息

Department of Exercise and Health Sciences, University of Massachusetts Boston, Boston, MA, USA.

Department of Kinesiology, East Carolina University, Greenville, NC, USA.

出版信息

Int J Obes (Lond). 2019 Apr;43(4):895-905. doi: 10.1038/s41366-018-0137-7. Epub 2018 Jun 11.

Abstract

BACKGROUND/OBJECTIVE: The partitioning of glucose toward glycolytic end products rather than glucose oxidation and glycogen storage is evident in skeletal muscle with severe obesity and type 2 diabetes. The purpose of the present study was to determine the possible mechanism by which severe obesity alters insulin-mediated glucose partitioning in human skeletal muscle.

SUBJECTS/METHODS: Primary human skeletal muscle cells (HSkMC) were isolated from lean (BMI = 23.6 ± 2.6 kg/m, n = 9) and severely obese (BMI = 48.8 ± 1.9 kg/m, n = 8) female subjects. Glucose oxidation, glycogen synthesis, non-oxidized glycolysis, pyruvate oxidation, and targeted TCA cycle metabolomics were examined in differentiated myotubes under basal and insulin-stimulated conditions.

RESULTS

Myotubes derived from severely obese subjects exhibited attenuated response of glycogen synthesis (20.3%; 95% CI [4.7, 28.8]; P = 0.017) and glucose oxidation (5.6%; 95% CI [0.3, 8.6]; P = 0.046) with a concomitant greater increase (23.8%; 95% CI [5.7, 47.8]; P = 0.004) in non-oxidized glycolytic end products with insulin stimulation in comparison to the lean group (34.2% [24.9, 45.1]; 13.1% [8.6, 16.4], and 2.9% [-4.1, 12.2], respectively). These obesity-related alterations in glucose partitioning appeared to be linked with reduced TCA cycle flux, as 2-[C]-pyruvate oxidation (358.4 pmol/mg protein/min [303.7, 432.9] vs. lean 439.2 pmol/mg protein/min [393.6, 463.1]; P = 0.013) along with several TCA cycle intermediates, were suppressed in the skeletal muscle of severely obese individuals.

CONCLUSIONS

These data suggest that with severe obesity the partitioning of glucose toward anaerobic glycolysis in response to insulin is a resilient characteristic of human skeletal muscle. This altered glucose partitioning appeared to be due, at least in part, to a reduction in TCA cycle flux.

摘要

背景/目的:在患有 2 型糖尿病和严重肥胖症的骨骼肌中,葡萄糖向糖酵解终产物而非葡萄糖氧化和糖原储存的分配明显增加。本研究旨在确定严重肥胖改变人体骨骼肌中胰岛素介导的葡萄糖分配的可能机制。

受试者/方法:从体脂率为 23.6±2.6kg/m(n=9)和体脂率为 48.8±1.9kg/m(n=8)的瘦和严重肥胖女性受试者中分离出原代人骨骼肌细胞(HSkMC)。在基础和胰岛素刺激条件下,研究人员在分化的肌管中检测葡萄糖氧化、糖原合成、非氧化糖酵解、丙酮酸氧化和靶向 TCA 循环代谢组学。

结果

与瘦组相比,严重肥胖组的肌管衍生细胞表现出糖原合成(20.3%;95%置信区间[4.7,28.8];P=0.017)和葡萄糖氧化(5.6%;95%置信区间[0.3,8.6];P=0.046)的反应减弱,同时胰岛素刺激下非氧化糖酵解终产物增加(23.8%;95%置信区间[5.7,47.8];P=0.004)。与瘦组相比,严重肥胖组与葡萄糖分配相关的这些变化似乎与 TCA 循环通量减少有关,因为 2-[C]-丙酮酸氧化(358.4pmol/mg 蛋白/min [303.7,432.9]与瘦组 439.2pmol/mg 蛋白/min [393.6,463.1];P=0.013)以及一些 TCA 循环中间产物在严重肥胖个体的骨骼肌中受到抑制。

结论

这些数据表明,在严重肥胖症中,胰岛素作用下葡萄糖向无氧糖酵解的分配是人体骨骼肌的一种有弹性的特征。这种改变的葡萄糖分配似乎至少部分是由于 TCA 循环通量的减少。

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