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Failure of centrosome migration causes a loss of motile cilia in talpid 3 mutants
Author(s) -
Stephen Louise A.,
Davis Gemma M.,
M Katie E.,
James John,
M Lynn,
Kierans Martin,
Bain Andrew,
Davey Megan G.
Publication year - 2013
Publication title -
developmental dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.634
H-Index - 141
eISSN - 1097-0177
pISSN - 1058-8388
DOI - 10.1002/dvdy.23980
Subject(s) - ciliogenesis , cilium , biology , motile cilium , microbiology and biotechnology , axoneme , ependymal cell , centrosome , basal body , ependyma , cell fate determination , centriole , anatomy , microtubule , cell , neuroscience , genetics , flagellum , cell cycle , transcription factor , gene , central nervous system
Background: Loss of function mutations in the centrosomal protein TALPID3 (KIAA0586) cause a failure of primary cilia formation in animal models and are associated with defective Hedgehog signalling. It is unclear, however, if TALPID3 is required only for primary cilia formation or if it is essential for all ciliogenesis, including that of motile cilia in multiciliate cells. Results: FOXJ1 , a key regulator of multiciliate cell fate, is expressed in the dorsal neuroectoderm of the chicken forebrain and hindbrain at stage 20HH, in areas that will give rise to choroid plexuses in both wt and talpid 3 embryos. Wt ependymal cells of the prosencephalic choroid plexuses subsequently transition from exhibiting single short cilia to multiple long motile cilia at 29HH (E8). Primary cilia and long motile cilia were only rarely observed on talpid 3 ependymal cells. Electron microscopy determined that talpid 3 ependymal cells do develop multiple centrosomes in accordance with FOXJ1 expression, but these fail to migrate to the apical surface of ependymal cells although axoneme formation was sometimes observed. Conclusions: TALPID3, which normally localises to the proximal centrosome, is essential for centrosomal migration prior to ciliogenesis but is not directly required for de novo centriologenesis, multiciliated fate, or axoneme formation. Developmental Dynamics 242:923–931, 2013 . © 2013 Wiley Periodicals, Inc.