A cyclin-dependent kinase-mediated phosphorylation switch of disordered protein condensation

Publication date

2023-12

Authors

Valverde, Juan Manuel
Dubra, Geronimo
Phillips, Michael
Haider, Austin
Elena-Real, Carlos
Fournet, Aurélie
Alghoul, Emile
Chahar, Dhanvantri
Andrés-Sanchez, Nuria
Paloni, Matteo

Editors

Advisors

Supervisors

Document Type

Article

Collections

Open Access logo

License

cc_by

Abstract

Cell cycle transitions result from global changes in protein phosphorylation states triggered by cyclin-dependent kinases (CDKs). To understand how this complexity produces an ordered and rapid cellular reorganisation, we generated a high-resolution map of changing phosphosites throughout unperturbed early cell cycles in single Xenopus embryos, derived the emergent principles through systems biology analysis, and tested them by biophysical modelling and biochemical experiments. We found that most dynamic phosphosites share two key characteristics: they occur on highly disordered proteins that localise to membraneless organelles, and are CDK targets. Furthermore, CDK-mediated multisite phosphorylation can switch homotypic interactions of such proteins between favourable and inhibitory modes for biomolecular condensate formation. These results provide insight into the molecular mechanisms and kinetics of mitotic cellular reorganisation.

Keywords

General Chemistry, General Biochemistry,Genetics and Molecular Biology, General Physics and Astronomy

Citation

Valverde, J M, Dubra, G, Phillips, M, Haider, A, Elena-Real, C, Fournet, A, Alghoul, E, Chahar, D, Andrés-Sanchez, N, Paloni, M, Bernadó, P, van Mierlo, G, Vermeulen, M, van den Toorn, H, Heck, A J R, Constantinou, A, Barducci, A, Ghosh, K, Sibille, N, Knipscheer, P, Krasinska, L, Fisher, D & Altelaar, M 2023, 'A cyclin-dependent kinase-mediated phosphorylation switch of disordered protein condensation', Nature Communications, vol. 14, no. 1, 6316. https://doi.org/10.1038/s41467-023-42049-0