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Patterns of laminins and integrins in the embryonic ventricular zone of the CNS

  • Justin D. Lathia
  • , Bruce Patton
  • , D. Mark Eckley
  • , Tim Magnus
  • , Mohamed R. Mughal
  • , Takako Sasaki
  • , Maeve A. Caldwell
  • , Mahendra S. Rao
  • , Mark P. Mattson
  • , Charles Ffrench-Constant

Research output: Contribution to journalArticlepeer-review

Abstract

The extracellular matrix (ECM) provides both a physical framework and a microenvironment that supplies instructive signals from the earliest stages of multicellular development. As a first step toward understanding the role of the ECM in regulating the behavior of neural stem cells (NSCs), here we show the localization of laminins, a heterotrimeric family of ECM molecules expressed in many different stem cell microenvironments, and their corresponding receptors in the embryonic murine ventricular zone (VZ) within which the NSCs undergo symmetrical and asymmetrical divisions required for cortical development. In addition to the presence of laminins containing both the α2 and α4 chains, we find distinct patterns of ECM receptor expression in the VZ and in the overlying cortex. Neural stem cells derived from the VZ express high levels of the integrin laminin receptor α6β1. At developmental stages at which NSCs undergo asymmetrical divisions, integrin β1 was unevenly distributed in some mitotic pairs at the ventricular wall. These results suggest a significant role in the regulation of NSC fate for laminin/integrin signaling within the microenvironment of the VZ and provide a framework for future molecular and cellular analyses of the role of the ECM in neural development.

Original languageEnglish (US)
Pages (from-to)630-643
Number of pages14
JournalJournal of Comparative Neurology
Volume505
Issue number6
DOIs
StatePublished - Dec 20 2007

Funding

FundersFunder number
National Institute of Neurological Disorders and StrokeR01NS040759

    Keywords

    • Dystroglycan
    • Extracellular matrix
    • Integrin
    • Laminin
    • Neural stem cell
    • Neurogenesis
    • Radial glia
    • Stem cell niche
    • Syndecan

    ASJC Scopus subject areas

    • General Neuroscience

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