CEP63 deficiency promotes p53-dependent microcephaly and reveals a role for the centrosome in meiotic recombination

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作者
Marko Marjanović
Carlos Sánchez-Huertas
Berta Terré
Rocío Gómez
Jan Frederik Scheel
Sarai Pacheco
Philip A. Knobel
Ana Martínez-Marchal
Suvi Aivio
Lluís Palenzuela
Uwe Wolfrum
Peter J. McKinnon
José A. Suja
Ignasi Roig
Vincenzo Costanzo
Jens Lüders
Travis H. Stracker
机构
[1] Institute for Research in Biomedicine (IRB Barcelona),Division of Molecular Medicine
[2] Ruđer Bošković Institute,Departamento de Biología
[3] Edificio de Biológicas,Department of Cell and Matrix Biology
[4] Universidad Autónoma de Madrid,Department of Cell Biology
[5] Institute of Zoology,Department of Genetics
[6] Johannes Gutenberg University,undefined
[7] Genome Integrity and Instability Group,undefined
[8] Institut de Biotecnologia i Biomedicina,undefined
[9] Universitat Autònoma de Barcelona,undefined
[10] Cytology and Histology Unit,undefined
[11] Physiology and Immunology,undefined
[12] Universitat Autònoma de Barcelona,undefined
[13] St. Jude Children’s Research Hospital,undefined
[14] FIRC Institute of Molecular Oncology,undefined
[15] Present address: Department of Multiphase Chemistry,undefined
[16] Max Planck Institute for Chemistry,undefined
[17] Mainz 55128,undefined
[18] Germany,undefined
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摘要
CEP63 is a centrosomal protein that facilitates centriole duplication and is regulated by the DNA damage response. Mutations in CEP63 cause Seckel syndrome, a human disease characterized by microcephaly and dwarfism. Here we demonstrate that Cep63-deficient mice recapitulate Seckel syndrome pathology. The attrition of neural progenitor cells involves p53-dependent cell death, and brain size is rescued by the deletion of p53. Cell death is not the result of an aberrant DNA damage response but is triggered by centrosome-based mitotic errors. In addition, Cep63 loss severely impairs meiotic recombination, leading to profound male infertility. Cep63-deficient spermatocytes display numerical and structural centrosome aberrations, chromosome entanglements and defective telomere clustering, suggesting that a reduction in centrosome-mediated chromosome movements underlies recombination failure. Our results provide novel insight into the molecular pathology of microcephaly and establish a role for the centrosome in meiotic recombination.
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    NATURE COMMUNICATIONS, 2015, 6
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