The chaperone-client network subordinates cell-cycle entry to growth and stress
The chaperone-client network subordinates cell-cycle entry to growth and stress
Abstract The precise coordination of growth and proliferation has a universal prevalence in cell homeostasis. As a prominent property, cell size is modulated by the coordination between these processes in bacterial, yeast and mammalian cells, but the underlying molecular mechanisms are largely unknown. Here we show that multifunctional chaperone systems play a concerted and limiting role in cell-cycle entry, specifically driving nuclear accumulation of the G1 Cdk-cyclin complex. Based on these findings, we establish and test a molecular competition model that recapitulates cell-cycle-entry dependence on growth rate. As key predictions at a single-cell level, we show that availability of the Ydj1 chaperone and nuclear accumulation of the G1 cyclin Cln3 are inversely dependent on growth rate and readily respond to changes in protein synthesis and stress conditions that alter protein folding requirements. Thus, chaperone workload would subordinate Start to the biosynthetic machinery and dynamically adjust proliferation to the growth potential of the cell.
Csik¨¢sz-Nagy Attila、Aldea Mart¨a、Yahya Galal、Moreno David F.、Parisi Eva、Vaggi Federico
Randall Division of Cell and Molecular Biophysics and Institute of Mathematical and Molecular Biomedicine, King?ˉs College London||P¨¢zm¨¢ny P¨|ter Catholic UniversityMolecular Biology Institute of Barcelona (IBMB)||Department of Basic Sciences, Universitat Internacional de CatalunyaMolecular Biology Institute of Barcelona (IBMB)||Department of Microbiology and Immunology, Zagazig UniversityMolecular Biology Institute of Barcelona (IBMB)Molecular Biology Institute of Barcelona (IBMB)Department of Informatics, Ecole Normale Sup¨|rieure
细胞生物学分子生物学生物化学
cell cyclecell sizechaperonecyclingrowth ratestressmolecular competitionStart
Csik¨¢sz-Nagy Attila,Aldea Mart¨a,Yahya Galal,Moreno David F.,Parisi Eva,Vaggi Federico.The chaperone-client network subordinates cell-cycle entry to growth and stress[EB/OL].(2025-03-28)[2025-05-25].https://www.biorxiv.org/content/10.1101/485714.点此复制
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