Tuning SAS-6 architecture with monobodies impairs distinct steps of centriole assembly.

Détails

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Etat: Public
Version: Final published version
Licence: CC BY 4.0
ID Serval
serval:BIB_F93FC2AC5884
Type
Article: article d'un périodique ou d'un magazine.
Collection
Publications
Institution
Titre
Tuning SAS-6 architecture with monobodies impairs distinct steps of centriole assembly.
Périodique
Nature communications
Auteur⸱e⸱s
Hatzopoulos G.N., Kükenshöner T., Banterle N., Favez T., Flückiger I., Hamel V., Andany S., Fantner G.E., Hantschel O., Gönczy P.
ISSN
2041-1723 (Electronic)
ISSN-L
2041-1723
Statut éditorial
Publié
Date de publication
21/06/2021
Peer-reviewed
Oui
Volume
12
Numéro
1
Pages
3805
Langue
anglais
Notes
Publication types: Journal Article ; Research Support, Non-U.S. Gov't
Publication Status: epublish
Résumé
Centrioles are evolutionarily conserved multi-protein organelles essential for forming cilia and centrosomes. Centriole biogenesis begins with self-assembly of SAS-6 proteins into 9-fold symmetrical ring polymers, which then stack into a cartwheel that scaffolds organelle formation. The importance of this architecture has been difficult to decipher notably because of the lack of precise tools to modulate the underlying assembly reaction. Here, we developed monobodies against Chlamydomonas reinhardtii SAS-6, characterizing three in detail with X-ray crystallography, atomic force microscopy and cryo-electron microscopy. This revealed distinct monobody-target interaction modes, as well as specific consequences on ring assembly and stacking. Of particular interest, monobody MB <sub>CRS6</sub> -15 induces a conformational change in CrSAS-6, resulting in the formation of a helix instead of a ring. Furthermore, we show that this alteration impairs centriole biogenesis in human cells. Overall, our findings identify monobodies as powerful molecular levers to alter the architecture of multi-protein complexes and tune centriole assembly.
Mots-clé
Algal Proteins/chemistry, Algal Proteins/metabolism, Carrier Proteins/chemistry, Carrier Proteins/metabolism, Cell Cycle Proteins/antagonists & inhibitors, Cell Cycle Proteins/chemistry, Cell Cycle Proteins/metabolism, Centrioles/metabolism, Centrioles/ultrastructure, Chlamydomonas reinhardtii/metabolism, Chlamydomonas reinhardtii/ultrastructure, Cryoelectron Microscopy, Crystallography, X-Ray, Microscopy, Atomic Force, Models, Molecular, Protein Binding, Protein Multimerization, Protein Structure, Tertiary
Pubmed
Web of science
Open Access
Oui
Création de la notice
12/07/2021 12:51
Dernière modification de la notice
08/08/2024 6:42
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