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Nature 456, 957-961 (18 December 2008) | doi:10.1038/nature07441; Received 17 July 2008; Accepted 19 September 2008; Published online 10 December 2008

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Contact inhibition of locomotion in vivo controls neural crest directional migration

Carlos Carmona-Fontaine1, Helen K. Matthews1, Sei Kuriyama1, Mauricio Moreno1, Graham A. Dunn2, Maddy Parsons2, Claudio D. Stern1 & Roberto Mayor1

  1. Department of Anatomy and Developmental Biology, University College London, London WC1E 6BT, UK
  2. Randall Division of Cell and Molecular Biophysics, King's College London, London SE1 1UL, UK

Correspondence to: Roberto Mayor1 Correspondence and requests for materials should be addressed to R.M. (Email: r.mayor@ucl.ac.uk).

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Contact inhibition of locomotion was discovered by Abercrombie more than 50 years ago and describes the behaviour of fibroblast cells confronting each other in vitro, where they retract their protrusions and change direction on contact1, 2. Its failure was suggested to contribute to malignant invasion3, 4, 5, 6. However, the molecular basis of contact inhibition of locomotion and whether it also occurs in vivo are still unknown. Here we show that neural crest cells, a highly migratory and multipotent embryonic cell population, whose behaviour has been likened to malignant invasion6, 7, 8, demonstrate contact inhibition of locomotion both in vivo and in vitro, and that this accounts for their directional migration. When two migrating neural crest cells meet, they stop, collapse their protrusions and change direction. In contrast, when a neural crest cell meets another cell type, it fails to display contact inhibition of locomotion; instead, it invades the other tissue, in the same manner as metastatic cancer cells3, 5, 9. We show that inhibition of non-canonical Wnt signalling abolishes both contact inhibition of locomotion and the directionality of neural crest migration. Wnt-signalling members localize at the site of cell contact, leading to activation of RhoA in this region. These results provide the first example of contact inhibition of locomotion in vivo, provide an explanation for coherent directional migration of groups of cells and establish a previously unknown role for non-canonical Wnt signalling.

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