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Articles, Development/Plasticity/Repair

Oligodendrocyte Regeneration and CNS Remyelination Require TACE/ADAM17

Javier Palazuelos, Michael Klingener, Elaine W. Raines, Howard C. Crawford and Adan Aguirre
Journal of Neuroscience 2 September 2015, 35 (35) 12241-12247; https://doi.org/10.1523/JNEUROSCI.3937-14.2015
Javier Palazuelos
1Department of Pharmacological Sciences, Centers for Molecular Medicine, Stony Brook University, SUNY, Stony Brook, New York 11794,
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Michael Klingener
1Department of Pharmacological Sciences, Centers for Molecular Medicine, Stony Brook University, SUNY, Stony Brook, New York 11794,
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Elaine W. Raines
2Department of Pathology, University of Washington, Seattle, Washington 98195, and
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Howard C. Crawford
3Department of Molecular and Integrative Physiology, University of Michigan, Ann Arbor, Michigan 48109
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Adan Aguirre
1Department of Pharmacological Sciences, Centers for Molecular Medicine, Stony Brook University, SUNY, Stony Brook, New York 11794,
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This article has a correction. Please see:

  • Expression of Concern: Palazuelos et al., “Oligodendrocyte Regeneration and CNS Remyelination Require TACE/ADAM17” - July 29, 2021

Abstract

The identification of the molecular network that supports oligodendrocyte (OL) regeneration under demyelinating conditions has been a primary goal for regenerative medicine in demyelinating disorders. We recently described an essential function for TACE/ADAM17 in regulating oligodendrogenesis during postnatal myelination, but it is unknown whether this protein also plays a role in OL regeneration and remyelination under demyelinating conditions. By using genetic mouse models to achieve selective gain- or loss-of-function of TACE or EGFR in OL lineage cells in vivo, we found that TACE is critical for EGFR activation in OLs following demyelination, and therefore, for sustaining OL regeneration and CNS remyelination. TACE deficiency in oligodendrocyte progenitor cells following demyelination disturbs OL lineage cell expansion and survival, leading to a delay in the remyelination process. EGFR overexpression in TACE deficient OLs in vivo restores OL development and postnatal CNS myelination, but also OL regeneration and CNS remyelination following demyelination. Our study reveals an essential function of TACE in supporting OL regeneration and CNS remyelination that may contribute to the design of new strategies for therapeutic intervention in demyelinating disorders by promoting oligodendrocyte regeneration and myelin repair.

SIGNIFICANCE STATEMENT Oligodendrocyte (OL) regeneration has emerged as a promising new approach for the treatment of demyelinating disorders. By using genetic mouse models to selectively delete TACE expression in oligodendrocyte progenitors cells (OPs), we found that TACE/ADAM17 is required for supporting OL regeneration following demyelination. TACE genetic depletion in OPs abrogates EGFR activation in OL lineage cells, and perturbs cell expansion and survival, blunting the process of CNS remyelination. Moreover, EGFR overexpression in TACE-deficient OPs in vivo overcomes the defects in OL development during postnatal development but also OL regeneration during CNS remyelination. Our study identifies TACE as an essential player in OL regeneration that may provide new insights in the development of new strategies for promoting myelin repair in demyelinating disorders.

  • ADAM17
  • EGFR
  • oligodendrocyte precursor
  • remyelination
  • TACE
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The Journal of Neuroscience: 35 (35)
Journal of Neuroscience
Vol. 35, Issue 35
2 Sep 2015
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Oligodendrocyte Regeneration and CNS Remyelination Require TACE/ADAM17
Javier Palazuelos, Michael Klingener, Elaine W. Raines, Howard C. Crawford, Adan Aguirre
Journal of Neuroscience 2 September 2015, 35 (35) 12241-12247; DOI: 10.1523/JNEUROSCI.3937-14.2015

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Oligodendrocyte Regeneration and CNS Remyelination Require TACE/ADAM17
Javier Palazuelos, Michael Klingener, Elaine W. Raines, Howard C. Crawford, Adan Aguirre
Journal of Neuroscience 2 September 2015, 35 (35) 12241-12247; DOI: 10.1523/JNEUROSCI.3937-14.2015
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Keywords

  • ADAM17
  • EGFR
  • oligodendrocyte precursor
  • remyelination
  • TACE

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