Literature DB >> 25220058

A unique set of centrosome proteins requires pericentrin for spindle-pole localization and spindle orientation.

Chun-Ting Chen1, Heidi Hehnly1, Qing Yu2, Cecilia Lo2, Stephen Doxsey1, Debby Farkas2, Guoqiang Zheng1, Sambra D Redick1, Hui-Fang Hung1, Rajeev Samtani2, Agata Jurczyk1, Schahram Akbarian3,4, Carol Wise5, Andrew Jackson6, Michael Bober7, Yin Guo3.   

Abstract

Majewski osteodysplastic primordial dwarfism type II (MOPDII) is caused by mutations in the centrosome gene pericentrin (PCNT) that lead to severe pre- and postnatal growth retardation. As in MOPDII patients, disruption of pericentrin (Pcnt) in mice caused a number of abnormalities including microcephaly, aberrant hemodynamics analyzed by in utero echocardiography, and cardiovascular anomalies; the latter being associated with mortality, as in the human condition. To identify the mechanisms underlying these defects, we tested for changes in cell and molecular function. All Pcnt(-/-) mouse tissues and cells examined showed spindle misorientation. This mouse phenotype was associated with misdirected ventricular septal growth in the heart, decreased proliferative symmetric divisions in brain neural progenitors, and increased misoriented divisions in fibroblasts; the same phenotype was seen in fibroblasts from three MOPDII individuals. Misoriented spindles were associated with disrupted astral microtubules and near complete loss of a unique set of centrosome proteins from spindle poles (ninein, Cep215, centriolin). All these proteins appear to be crucial for microtubule anchoring and all interacted with Pcnt, suggesting that Pcnt serves as a molecular scaffold for this functionally linked set of spindle pole proteins. Importantly, Pcnt disruption had no detectable effect on localization of proteins involved in the cortical polarity pathway (NuMA, p150(glued), aPKC). Not only do these data reveal a spindle-pole-localized complex for spindle orientation, but they identify key spindle symmetry proteins involved in the pathogenesis of MOPDII.
Copyright © 2014 Elsevier Ltd. All rights reserved.

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Year:  2014        PMID: 25220058      PMCID: PMC4190007          DOI: 10.1016/j.cub.2014.08.029

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  32 in total

1.  Zygotic development without functional mitotic centrosomes.

Authors:  T L Megraw; L R Kao; T C Kaufman
Journal:  Curr Biol       Date:  2001-01-23       Impact factor: 10.834

2.  Loss of centrosome integrity induces p38-p53-p21-dependent G1-S arrest.

Authors:  Keith Mikule; Benedicte Delaval; Philipp Kaldis; Agata Jurcyzk; Polla Hergert; Stephen Doxsey
Journal:  Nat Cell Biol       Date:  2007-02       Impact factor: 28.824

Review 3.  Cell division orientation in animals.

Authors:  Taryn E Gillies; Clemens Cabernard
Journal:  Curr Biol       Date:  2011-08-09       Impact factor: 10.834

4.  Mutations in the pericentrin (PCNT) gene cause primordial dwarfism.

Authors:  Anita Rauch; Christian T Thiel; Detlev Schindler; Ursula Wick; Yanick J Crow; Arif B Ekici; Anthonie J van Essen; Timm O Goecke; Lihadh Al-Gazali; Krystyna H Chrzanowska; Christiane Zweier; Han G Brunner; Kristin Becker; Cynthia J Curry; Bruno Dallapiccola; Koenraad Devriendt; Arnd Dörfler; Esther Kinning; André Megarbane; Peter Meinecke; Robert K Semple; Stephanie Spranger; Annick Toutain; Richard C Trembath; Egbert Voss; Louise Wilson; Raoul Hennekam; Francis de Zegher; Helmuth-Günther Dörr; André Reis
Journal:  Science       Date:  2008-01-03       Impact factor: 47.728

Review 5.  Majewski osteodysplastic primordial dwarfism type II (MOPD II): natural history and clinical findings.

Authors:  Judith G Hall; Christina Flora; Charles I Scott; Richard M Pauli; Kimi I Tanaka
Journal:  Am J Med Genet A       Date:  2004-09-15       Impact factor: 2.802

6.  The first case of CDK5RAP2-related primary microcephaly in a non-consanguineous patient identified by next generation sequencing.

Authors:  Christopher A Tan; Scott Topper; Catherine Ward Melver; Jennifer Stein; Amanda Reeder; Kelly Arndt; Soma Das
Journal:  Brain Dev       Date:  2013-05-28       Impact factor: 1.961

7.  Studies of microcephalic primordial dwarfism II: the osteodysplastic type II of primordial dwarfism.

Authors:  F Majewski; M Ranke; A Schinzel
Journal:  Am J Med Genet       Date:  1982-05

8.  Direct interaction of pericentrin with cytoplasmic dynein light intermediate chain contributes to mitotic spindle organization.

Authors:  A Purohit; S H Tynan; R Vallee; S J Doxsey
Journal:  J Cell Biol       Date:  1999-11-01       Impact factor: 10.539

Review 9.  Pericentrin in cellular function and disease.

Authors:  Benedicte Delaval; Stephen J Doxsey
Journal:  J Cell Biol       Date:  2009-12-01       Impact factor: 10.539

10.  Importance of the CEP215-pericentrin interaction for centrosome maturation during mitosis.

Authors:  Seongjae Kim; Kunsoo Rhee
Journal:  PLoS One       Date:  2014-01-22       Impact factor: 3.240

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  49 in total

Review 1.  New frontiers: discovering cilia-independent functions of cilia proteins.

Authors:  Anastassiia Vertii; Alison Bright; Benedicte Delaval; Heidi Hehnly; Stephen Doxsey
Journal:  EMBO Rep       Date:  2015-09-09       Impact factor: 8.807

2.  Centrosomal ALIX regulates mitotic spindle orientation by modulating astral microtubule dynamics.

Authors:  Lene Malerød; Roland Le Borgne; Anette Lie-Jensen; Åsmund Husabø Eikenes; Andreas Brech; Knut Liestøl; Harald Stenmark; Kaisa Haglund
Journal:  EMBO J       Date:  2018-06-01       Impact factor: 11.598

3.  Error-prone meiotic division and subfertility in mice with oocyte-conditional knockdown of pericentrin.

Authors:  Claudia Baumann; Xiaotian Wang; Luhan Yang; Maria M Viveiros
Journal:  J Cell Sci       Date:  2017-02-13       Impact factor: 5.285

Review 4.  The Centrosome, a Multitalented Renaissance Organelle.

Authors:  Anastassiia Vertii; Heidi Hehnly; Stephen Doxsey
Journal:  Cold Spring Harb Perspect Biol       Date:  2016-12-01       Impact factor: 10.005

5.  The dual role of the centrosome in organizing the microtubule network in interphase.

Authors:  Maria P Gavilan; Pablo Gandolfo; Fernando R Balestra; Francisco Arias; Michel Bornens; Rosa M Rios
Journal:  EMBO Rep       Date:  2018-09-17       Impact factor: 8.807

6.  Centriolin, a centriole-appendage protein, regulates peripheral spindle migration and asymmetric division in mouse meiotic oocytes.

Authors:  Tian-Yi Sun; Hai-Yang Wang; Jung-Woo Kwon; Bao Yuan; In-Won Lee; Xiang-Shun Cui; Nam-Hyung Kim
Journal:  Cell Cycle       Date:  2017-01-11       Impact factor: 4.534

7.  Drosophila pericentrin-like protein promotes the formation of primordial germ cells.

Authors:  Junnan Fang; Dorothy A Lerit
Journal:  Genesis       Date:  2019-11-27       Impact factor: 2.487

Review 8.  Regulation of mitotic spindle orientation: an integrated view.

Authors:  Florencia di Pietro; Arnaud Echard; Xavier Morin
Journal:  EMBO Rep       Date:  2016-07-18       Impact factor: 8.807

9.  PCNT point mutations and familial intracranial aneurysms.

Authors:  Oswaldo Lorenzo-Betancor; Patrick R Blackburn; Emily Edwards; Rocío Vázquez-do-Campo; Eric W Klee; Catherine Labbé; Kyndall Hodges; Patrick Glover; Ashley N Sigafoos; Alexandra I Soto; Ronald L Walton; Stephen Doxsey; Michael B Bober; Sarah Jennings; Karl J Clark; Yan Asmann; David Miller; William D Freeman; James Meschia; Owen A Ross
Journal:  Neurology       Date:  2018-11-09       Impact factor: 9.910

10.  The Mother Centriole Appendage Protein Cenexin Modulates Lumen Formation through Spindle Orientation.

Authors:  Hui-Fang Hung; Heidi Hehnly; Stephen Doxsey
Journal:  Curr Biol       Date:  2016-03-03       Impact factor: 10.834

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