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雷帕霉素靶蛋白调节施万细胞中线粒体丙酮酸代谢与轴突稳定性相关。

Rheb-regulated mitochondrial pyruvate metabolism of Schwann cells linked to axon stability.

机构信息

Neuroscience & Metabolism Research, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University, Chengdu 610041, People's Republic of China.

Shenzhen Key Laboratory of Gene Regulation and Systems Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen 518005, People's Republic of China; Department of Biology, School of Life Sciences, Brain Research Center, Southern University of Science and Technology, Shenzhen 518000, People's Republic of China.

出版信息

Dev Cell. 2021 Nov 8;56(21):2980-2994.e6. doi: 10.1016/j.devcel.2021.09.013. Epub 2021 Oct 6.

Abstract

The metabolic coupling of Schwann cells (SCs) and peripheral axons is poorly understood. Few molecules in SCs are known to regulate axon stability. Using SC-specific Rheb knockout mice, we demonstrate that Rheb-regulated mitochondrial pyruvate metabolism is critical for SC-mediated non-cell-autonomous regulation of peripheral axon stability. Rheb knockout suppresses pyruvate dehydrogenase (PDH) activity (independently of mTORC1) and shifts pyruvate metabolism toward lactate production in SCs. The increased lactate causes age-dependent peripheral axon degeneration, affecting peripheral nerve function. Lactate, as an energy substrate and a potential signaling molecule, enhanced neuronal mitochondrial metabolism and energy production of peripheral nerves. Albeit beneficial to injured peripheral axons in the short term, we show that persistently increased lactate metabolism of neurons enhances ROS production, eventually damaging mitochondria, neuroenergetics, and axon stability. This study highlights the complex roles of lactate metabolism to peripheral axons and the importance of lactate homeostasis in preserving peripheral nerves.

摘要

施万细胞(SCs)与周围轴突的代谢偶联作用尚未完全阐明。已知SCs 中很少有分子能调节轴突的稳定性。通过使用 SC 特异性 Rheb 敲除小鼠,我们证明了 Rheb 调节的线粒体丙酮酸代谢对于 SC 介导的周围轴突稳定性的非细胞自主调节至关重要。Rheb 敲除抑制丙酮酸脱氢酶(PDH)活性(独立于 mTORC1)并使 SC 中的丙酮酸代谢向乳酸生成转移。增加的乳酸导致年龄依赖性的周围轴突退化,影响周围神经功能。乳酸作为能量底物和潜在的信号分子,增强了神经元的线粒体代谢和周围神经的能量产生。尽管短期内对受损的周围轴突有益,但我们表明神经元中持续增加的乳酸代谢会增加 ROS 产生,最终损害线粒体、神经能量和轴突稳定性。本研究强调了乳酸代谢对周围轴突的复杂作用,以及维持周围神经乳酸稳态的重要性。

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