| Literature DB >> 34619097 |
Lanlan Jia1, Maoxing Liao1, Aidi Mou1, Quanzhen Zheng2, Wanchun Yang1, Zongyan Yu2, Yiyuan Cui1, Xiaoqiang Xia3, Yue Qin1, Mina Chen1, Bo Xiao4.
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.Entities:
Keywords: ROS; Rheb; Schwann cells; axon degeneration; lactate shuttle; mTORC1; metabolic coupling; oxidative stress; peripheral axons; pyruvate metabolism
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Year: 2021 PMID: 34619097 DOI: 10.1016/j.devcel.2021.09.013
Source DB: PubMed Journal: Dev Cell ISSN: 1534-5807 Impact factor: 12.270