Centriolar satellites expedite mother centriole remodeling to promote ciliogenesis

Author:

Hall Emma A1ORCID,Kumar Dhivya2ORCID,Prosser Suzanna L3,Yeyati Patricia L1,Herranz-Pérez Vicente45ORCID,García-Verdugo Jose Manuel4,Rose Lorraine1,McKie Lisa1,Dodd Daniel O1,Tennant Peter A1,Megaw Roly1ORCID,Murphy Laura C6,Ferreira Marisa F1ORCID,Grimes Graeme1,Williams Lucy1,Quidwai Tooba1ORCID,Pelletier Laurence37ORCID,Reiter Jeremy F28ORCID,Mill Pleasantine1ORCID

Affiliation:

1. MRC Human Genetics Unit, Institute of Genetics and Cancer, University of Edinburgh

2. Department of Biochemistry and Biophysics, Cardiovascular Research Institute, University of California

3. Lunenfeld-Tanenbaum Research Institute, Sinai Health System

4. Cavanilles Institute of Biodiversity and Evolutionary Biology, University of Valencia

5. Predepartamental Unit of Medicine, Jaume I University

6. Institute of Genetics and Cancer, University of Edinburgh

7. Department of Molecular Genetics, University of Toronto

8. Chan Zuckerberg Biohub

Abstract

Centrosomes are orbited by centriolar satellites, dynamic multiprotein assemblies nucleated by Pericentriolar material 1 (PCM1). To study the requirement for centriolar satellites, we generated mice lacking PCM1, a crucial component of satellites. Pcm1−/− mice display partially penetrant perinatal lethality with survivors exhibiting hydrocephalus, oligospermia, and cerebellar hypoplasia, and variably expressive phenotypes such as hydronephrosis. As many of these phenotypes have been observed in human ciliopathies and satellites are implicated in cilia biology, we investigated whether cilia were affected. PCM1 was dispensable for ciliogenesis in many cell types, whereas Pcm1−/− multiciliated ependymal cells and human PCM1−/− retinal pigmented epithelial 1 (RPE1) cells showed reduced ciliogenesis. PCM1−/− RPE1 cells displayed reduced docking of the mother centriole to the ciliary vesicle and removal of CP110 and CEP97 from the distal mother centriole, indicating compromised early ciliogenesis. Similarly, Pcm1−/− ependymal cells exhibited reduced removal of CP110 from basal bodies in vivo. We propose that PCM1 and centriolar satellites facilitate efficient trafficking of proteins to and from centrioles, including the departure of CP110 and CEP97 to initiate ciliogenesis, and that the threshold to trigger ciliogenesis differs between cell types.

Funder

Medical Research Council

European Commission

Canadian Institutes of Health Research

National Institutes of Health

Jane Coffin Childs Memorial Fund for Medical Research

Sandler Foundation

Krembil Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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