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Ubiquitin-proteasome system controls ciliogenesis at the initial step of axoneme extension

Authors :
Tohru Kiyono
Fumio Matsuzaki
Yoshitaka Kawakami
Naoki Goshima
Kousuke Kasahara
Saho Era
Shigenobu Yonemura
Yoshifumi Kawamura
Masaki Inagaki
Source :
Nature Communications
Publication Year :
2014
Publisher :
Springer Science and Business Media LLC, 2014.

Abstract

Primary cilia are microtubule-based sensory organelles that organize numerous key signals during developments and tissue homeostasis. Ciliary microtubule doublet, named axoneme, is grown directly from the distal end of mother centrioles through a multistep process upon cell cycle exit; however, the instructive signals that initiate these events are poorly understood. Here we show that ubiquitin-proteasome machinery removes trichoplein, a negative regulator of ciliogenesis, from mother centrioles and thereby causes Aurora-A inactivation, leading to ciliogenesis. Ciliogenesis is blocked if centriolar trichoplein is stabilized by treatment with proteasome inhibitors or by expression of non-ubiquitylatable trichoplein mutant (K50/57R). Started from two-stepped global E3 screening, we have identified KCTD17 as a substrate-adaptor for Cul3-RING E3 ligases (CRL3s) that polyubiquitylates trichoplein. Depletion of KCTD17 specifically arrests ciliogenesis at the initial step of axoneme extension through aberrant trichoplein-Aurora-A activity. Thus, CRL3-KCTD17 targets trichoplein to proteolysis to initiate the axoneme extension during ciliogenesis.<br />Biogenesis of the primary cilium begins after cell cycle exit, but the regulatory steps for its formation are poorly defined. Here the authors show that proteasome-mediated removal of the ciliogenesis inhibitor, trichoplein, from mother centrioles initiates the first step of ciliogenesis.

Details

ISSN :
20411723
Volume :
5
Database :
OpenAIRE
Journal :
Nature Communications
Accession number :
edsair.doi.dedup.....bd136954e18fdf095d799c2cb60ef7bd
Full Text :
https://doi.org/10.1038/ncomms6081