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Pinch2 regulates myelination in the mouse central nervous system. | LitMetric

Pinch2 regulates myelination in the mouse central nervous system.

Development

Department of Neurobiology and Neurological Disease, Glial Cell Biology Laboratory, Instituto de Biologia Molecular e Celular (IBMC), Universidade do Porto, 4200-135 Porto, Portugal.

Published: July 2022

AI Article Synopsis

  • - The IPP protein complex plays a critical role in the myelination process of oligodendrocytes, facilitating communication between cell receptors and the cytoskeleton through mechanical and biochemical signals.
  • - Conditional gene ablation studies in mice highlight the unique function of the Pinch2 isoform, which prevents excessive myelination and aides in myelin stability, in contrast to the effects of Pinch1.
  • - Pinch2 controls myelin formation by regulating RhoA and Cdc42 activities, indicating its essential role as a molecular hub in the signaling pathways necessary for proper oligodendrocyte development and myelin sheath integrity.

Article Abstract

The extensive morphological changes of oligodendrocytes during axon ensheathment and myelination involve assembly of the Ilk-Parvin-Pinch (IPP) heterotrimeric complex of proteins to relay essential mechanical and biochemical signals between integrins and the actin cytoskeleton. Binding of Pinch1 and Pinch2 isoforms to Ilk is mutually exclusive and allows the formation of distinct IPP complexes with specific signaling properties. Using tissue-specific conditional gene ablation in mice, we reveal an essential role for Pinch2 during central nervous system myelination. Unlike Pinch1 gene ablation, loss of Pinch2 in oligodendrocytes results in hypermyelination and in the formation of pathological myelin outfoldings in white matter regions. These structural changes concur with inhibition of Rho GTPase RhoA and Cdc42 activities and phenocopy aspects of myelin pathology observed in corresponding mouse mutants. We propose a dual role for Pinch2 in preventing an excess of myelin wraps through RhoA-dependent control of membrane growth and in fostering myelin stability via Cdc42-dependent organization of cytoskeletal septins. Together, these findings indicate that IPP complexes containing Pinch2 act as a crucial cell-autonomous molecular hub ensuring synchronous control of key signaling networks during developmental myelination.

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Source
http://dx.doi.org/10.1242/dev.200597DOI Listing

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