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2-脱氧葡萄糖介导的糖酵解抑制对高强度肌肉收缩前后 mTOR 信号和蛋白质合成的调节作用。

Effect of 2-deoxyglucose-mediated inhibition of glycolysis on the regulation of mTOR signaling and protein synthesis before and after high-intensity muscle contraction.

机构信息

Department of Life Science and Applied Chemistry, Nagoya Institute of Technology, Nagoya, Japan.

Department of Life Science and Applied Chemistry, Nagoya Institute of Technology, Nagoya, Japan.

出版信息

Metabolism. 2021 Jan;114:154419. doi: 10.1016/j.metabol.2020.154419. Epub 2020 Nov 5.

Abstract

BACKGROUND

Glycolysis controls mTORC1 signaling and protein synthesis. In skeletal muscle, glucose metabolism increases with both exercise/contraction intensity and volume, and therefore, high-intensity muscle contraction (HiMC) such as resistance exercise facilitates glycolysis including glucose uptake and glycogen breakdown. However, it is unknown whether glycolysis regulates HiMC-induced mTORC1 activation and increase in protein synthesis.

METHODS

To determine whether glycolysis regulates basal and HiMC-induced mTORC1 signaling and protein synthesis, we employed 2-deoxyglucose (2-DG) to inhibit glycolysis and isometrically contracted the gastrocnemius muscle of Sprague Dawley rats using percutaneous electrical stimulation.

RESULTS

Inhibition of glycolysis by 2-DG inhibited basal phosphorylation of p70S6K and 4E-BP1 (downstream targets of mTORC1) and protein synthesis (all P < 0.05) independent of AMPK phosphorylation. AMPK phosphorylation was comparably increased after HiMC at 0 h post HiMC and returned to basal levels 6 h post HiMC in both vehicle- and 2-DG-treated groups. Glycolysis inhibition attenuated muscle contraction-induced phosphorylation of 4E-BP1 at 6 h post HiMC (P < 0.05) but not p70S6K phosphorylation and protein synthesis.

CONCLUSION

Although glycolysis is involved in basal but not HiMC-induced muscle protein synthesis, it regulates both basal and HiMC-induced mTORC1 signaling, and may play key roles in skeletal muscle adaptation to HiMC.

摘要

背景

糖酵解控制 mTORC1 信号和蛋白质合成。在骨骼肌中,葡萄糖代谢随运动/收缩强度和量的增加而增加,因此高强度肌肉收缩(如抗阻运动)促进糖酵解,包括葡萄糖摄取和糖原分解。然而,糖酵解是否调节 HiMC 诱导的 mTORC1 激活和蛋白质合成增加尚不清楚。

方法

为了确定糖酵解是否调节基础和 HiMC 诱导的 mTORC1 信号和蛋白质合成,我们使用 2-脱氧葡萄糖(2-DG)抑制糖酵解,并使用经皮电刺激等长收缩 SD 大鼠的比目鱼肌。

结果

2-DG 抑制糖酵解抑制了 p70S6K 和 4E-BP1(mTORC1 的下游靶点)的基础磷酸化和蛋白质合成(所有 P 值均<0.05),而不依赖于 AMPK 磷酸化。在 HiMC 后 0 小时,AMPK 磷酸化在载体和 2-DG 处理组中均可比地增加,并且在 HiMC 后 6 小时恢复到基础水平。糖酵解抑制在 HiMC 后 6 小时减弱了 4E-BP1 的肌肉收缩诱导磷酸化(P 值<0.05),但不影响 p70S6K 磷酸化和蛋白质合成。

结论

尽管糖酵解参与基础但不参与 HiMC 诱导的肌肉蛋白质合成,但它调节基础和 HiMC 诱导的 mTORC1 信号,并且可能在 HiMC 适应骨骼肌中发挥关键作用。

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