4.7 Article

A glycolytic shift in Schwann cells supports injured axons

Journal

NATURE NEUROSCIENCE
Volume 23, Issue 10, Pages 1215-+

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41593-020-0689-4

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Funding

  1. Muscular Dystrophy Association [577844, 292306]
  2. GBS/CIDP Foundation International grant [81463]
  3. Empire State Development Corporation for Hunter James Kelly Research Institute [W753, U446]
  4. Hunter's Hope Foundation
  5. National Institutes of Health/National Cancer Institute [P30CA016056]

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Babetto et al. demonstrate an axonal injury-induced glycolytic surge in Schwann cells that supplies perturbed axons with glycolytic energy substrates. Disruption of this metabolic coupling of axons and glial cells promotes axonal degeneration. Axon degeneration is a hallmark of many neurodegenerative disorders. The current assumption is that the decision of injured axons to degenerate is cell-autonomously regulated. Here we show that Schwann cells (SCs), the glia of the peripheral nervous system, protect injured axons by virtue of a dramatic glycolytic upregulation that arises in SCs as an inherent adaptation to axon injury. This glycolytic response, paired with enhanced axon-glia metabolic coupling, supports the survival of axons. The glycolytic shift in SCs is largely driven by the metabolic signaling hub, mammalian target of rapamycin complex 1, and the downstream transcription factors hypoxia-inducible factor 1-alpha and c-Myc, which together promote glycolytic gene expression. The manipulation of glial glycolytic activity through this pathway enabled us to accelerate or delay the degeneration of perturbed axons in acute and subacute rodent axon degeneration models. Thus, we demonstrate a non-cell-autonomous metabolic mechanism that controls the fate of injured axons.

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