New directions for neuronal migration

New directions for neuronal migration Analysis of genetic mutations that lead to abnormal migration and layer formation in the developing cerebral cortex of mice and humans has led to important new discoveries regarding the molecular mechanisms that underlie these processes. Genetic manipulation and experimental analysis have demonstrated significant tangential migrations of cortical neurons, some arriving from very distant noncortical sites. http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Current Opinion in Neurobiology Elsevier

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Publisher
Elsevier
Copyright
Copyright © 1998 Elsevier Ltd
ISSN
0959-4388
D.O.I.
10.1016/S0959-4388(98)80007-X
Publisher site
See Article on Publisher Site

Abstract

Analysis of genetic mutations that lead to abnormal migration and layer formation in the developing cerebral cortex of mice and humans has led to important new discoveries regarding the molecular mechanisms that underlie these processes. Genetic manipulation and experimental analysis have demonstrated significant tangential migrations of cortical neurons, some arriving from very distant noncortical sites.

Journal

Current Opinion in NeurobiologyElsevier

Published: Feb 1, 1998

References

  • Neuronal production of fibronectin in the cerebral cortex during migration and layer formation is unique to specific cortical domains
    Sheppard, AM; Brunstrom, JE; Thornton, TN; Gerfen, RW; Broekelmann, J; McDonald, JA; Pearlman, AL
  • Mechanisms of cortical development: a view from mutations in mice
    Caviness, VS; Rakic, P
  • A YAC contig containing the reeler locus with preliminary characterization of candidate gene fragments
    Bar, I; Lambert de Rouvroit, C; Royaux, I; Krizman, DB; Dernoncourt, C; Ruelle, D; Beckers, MC; Goffinet, AM
  • Genomic organization of the mouse reelin gene
    Royaux, I; Lambert de Rouvroit, C; D'Arcangelo, G; Demirov, D; Goffinet, AM
  • Reelin mRNA expression during mouse brain development
    Schiffmann, SN; Bernier, B; Goffinet, AM
  • The earliest pattern of neuronal differentiation and migration in the mammalian central nervous system
    Brittis, PA; Meiri, K; Dent, E; Silver, J
  • Platelet-activating factor acetylhydrolase expression and activity suggest a link between neuronal migration and platelet-activating factor
    Albrecht, U; Abu-Issa, R; Ratz, B; Hator, M; Aoki, J; Arai, H; Inoue, K; Eichele, G
  • Phenotype of patients with peroxisomal disorders subdivided into sixteen complementation groups
    Moser, AB; Rasmussen, M; Naidu, S; Watkins, PA; McGuinness, M; Hajra, AK; Chen, G; Raymond, G; Liu, A; Gordon, D
  • Targeted deletion of the pex2 peroxisome assembly gene in mice provides a model for Zellweger syndrome, a human neuronal migration disorder
    Faust, PL; Hatten, ME
  • A mouse model for Zellweger syndrome
    Baes, M; Gressens, P; Baumgart, E; Carmeliet, P; Casteels, M; Fransen, M; Evrard, P; Fahimi, D; Declercq, PE; Collen, D
  • Linkage and physical mapping of X-linked lissencephaly/SBH (XLIS): a gene causing neuronal migration defects in human brain
    Ross, ME; Allen, KM; Srivastava, AK; Featherstone, T; Gleeson, JG; Hirsch, B; Harding, BN; Andermann, E; Abdullah, R; Berg, M
  • A comparison of the patterns of migration and the destinations of homotopically transplanted neonatal subventricular zone cells and heterotopically transplanted telencephalic ventricular zone cells
    Zigova, T; Betarbet, R; Soteres, BJ; Brock, S; Bakay, RAE; Luskin, MB
  • Cortical cells that migrate beyond area boundaries: characterization of an early neuronal population in the lower intermediate zone of prenatal rats
    DeDiego, I; Smith-Fernandez, A; Fairen, A

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