Sox2 controls Schwann cell self-organization through fibronectin fibrillogenesis

Elen Torres-Mejía, Dietrich Trümbach, Charlotte Kleeberger, Ulf Dornseifer, Tanja Orschmann, Theresa Bäcker, Jara Kerstin Brenke, Kamyar Hadian, Wolfgang Wurst, Hernán López-Schier, Sabrina C. Desbordes

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

The extracellular matrix is known to modulate cell adhesion and migration during tissue regeneration. However, the molecular mechanisms that fine-tune cells to extra-cellular matrix dynamics during regeneration of the peripheral nervous system remain poorly understood. Using the RSC96 Schwann cell line, we show that Sox2 directly controls fibronectin fibrillogenesis in Schwann cells in culture, to provide a highly oriented fibronectin matrix, which supports their organization and directional migration. We demonstrate that Sox2 regulates Schwann cell behaviour through the upregulation of multiple extracellular matrix and migration genes as well as the formation of focal adhesions during cell movement. We find that mouse primary sensory neurons and human induced pluripotent stem cell-derived motoneurons require the Sox2-dependent fibronectin matrix in order to migrate along the oriented Schwann cells. Direct loss of fibronectin in Schwann cells impairs their directional migration affecting the alignment of the axons in vitro. Furthermore, we show that Sox2 and fibronectin are co-expressed in proregenerative Schwann cells in vivo in a time-dependent manner during sciatic nerve regeneration. Taken together, our results provide new insights into the mechanisms by which Schwann cells regulate their own extracellular microenvironment in a Sox2-dependent manner to ensure the proper migration of neurons.

Original languageEnglish
Article number1984
JournalScientific Reports
Volume10
Issue number1
DOIs
StatePublished - 1 Dec 2020

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