Cell cycle–independent integration of stress signals by Xbp1 promotes Non-G1/G0 quiescence entry

Author:

Argüello-Miranda Orlando12ORCID,Marchand Ashley J.1,Kennedy Taylor13ORCID,Russo Marielle A.X.1ORCID,Noh Jungsik2ORCID

Affiliation:

1. Department of Cell Biology, University of Texas Southwestern Medical Center, Dallas, TX

2. Lyda Hill Department of Bioinformatics, University of Texas Southwestern Medical Center, Dallas, TX

3. School of Natural Sciences and Mathematics, University of Texas at Dallas, Richardson, TX

Abstract

Cellular quiescence is a nonproliferative state required for cell survival under stress and during development. In most quiescent cells, proliferation is stopped in a reversible state of low Cdk1 kinase activity; in many organisms, however, quiescent states with high-Cdk1 activity can also be established through still uncharacterized stress or developmental mechanisms. Here, we used a microfluidics approach coupled to phenotypic classification by machine learning to identify stress pathways associated with starvation-triggered high-Cdk1 quiescent states in Saccharomyces cerevisiae. We found that low- and high-Cdk1 quiescent states shared a core of stress-associated processes, such as autophagy, protein aggregation, and mitochondrial up-regulation, but differed in the nuclear accumulation of the stress transcription factors Xbp1, Gln3, and Sfp1. The decision between low- or high-Cdk1 quiescence was controlled by cell cycle–independent accumulation of Xbp1, which acted as a time-delayed integrator of the duration of stress stimuli. Our results show how cell cycle–independent stress-activated factors promote cellular quiescence outside G1/G0.

Funder

Cancer Prevention and Research Institute of Texas

Welch Foundation

National Institute of General Medical Sciences

National Institutes of Health

Publisher

Rockefeller University Press

Subject

Cell Biology

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