Tubulin glycylases and glutamylases have distinct functions in stabilization and motility of ependymal cilia

Author:

Bosch Grau Montserrat1234,Gonzalez Curto Gloria4567,Rocha Cecilia1234,Magiera Maria M.1234,Marques Sousa Patricia1234,Giordano Tiziana1234,Spassky Nathalie4567,Janke Carsten1234

Affiliation:

1. Institut Curie, 91405 Orsay, France

2. Centre National de la Recherche Scientifique (CNRS) UMR3306, 91405 Orsay, France

3. Institut National de la Santé et de la Recherche Médicale (INSERM) U1005, 91405 Orsay, France

4. PSL Research University, 75005 Paris, France

5. Ecole Normale Supérieure (ENS), Institut de Biologie de l’ENS, 75005 Paris, France

6. INSERM U1024, 75005 Paris, France

7. CNRS UMR8197, 75005 Paris, France

Abstract

Microtubules are subject to a variety of posttranslational modifications that potentially regulate cytoskeletal functions. Two modifications, glutamylation and glycylation, are highly enriched in the axonemes of most eukaryotes, and might therefore play particularly important roles in cilia and flagella. Here we systematically analyze the dynamics of glutamylation and glycylation in developing mouse ependymal cilia and the expression of the corresponding enzymes in the brain. By systematically screening enzymes of the TTLL family for specific functions in ependymal cilia, we demonstrate that the glycylating enzymes TTLL3 and TTLL8 were required for stability and maintenance of ependymal cilia, whereas the polyglutamylase TTLL6 was necessary for coordinated beating behavior. Our work provides evidence for a functional separation of glutamylating and glycylating enzymes in mammalian ependymal cilia. It further advances the elucidation of the functions of tubulin posttranslational modifications in motile cilia of the mammalian brain and their potential importance in brain development and disease.

Publisher

Rockefeller University Press

Subject

Cell Biology

Reference34 articles.

1. CSAP localizes to polyglutamylated microtubules and promotes proper cilia function and zebrafish development;Backer;Mol. Biol. Cell.,2012

2. Improved methods for preserving macromolecular structures and visualizing them by fluorescence and scanning electron microscopy;Bell;Scanning Microsc.,1995

3. Efficient in vivo electroporation of the postnatal rodent forebrain;Boutin;PLoS ONE.,2008

4. Axonemal tubulin polyglycylation probed with two monoclonal antibodies: widespread evolutionary distribution, appearance during spermatozoan maturation and possible function in motility;Bré;J. Cell Sci.,1996

5. Forebrain ependymal cells are Notch-dependent and generate neuroblasts and astrocytes after stroke;Carlén;Nat. Neurosci.,2009

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