Distributing tasks via multiple input pathways increase cellular survival in stress
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Published version
Author(s)
Type
Journal Article
Abstract
Improving in one aspect of a task can undermine performance in another, but how such opposing demands play out in single cells and impact on fitness is mostly unknown. Here we study budding yeast in dynamic environments of hyperosmotic stress and show how the corresponding signalling network increases cellular survival both by assigning the requirements of high response speed and high response accuracy to two separate input pathways and by having these pathways interact to converge on Hog1, a p38 MAP kinase. Cells with only the less accurate, reflex-like pathway are fitter in sudden stress, whereas cells with only the slow, more accurate pathway are fitter in increasing but fluctuating stress. Our results demonstrate that cellular signalling is vulnerable to trade-offs in performance, but that these trade-offs can be mitigated by assigning the opposing tasks to different signalling subnetworks. Such division of labour could function broadly within cellular signal transduction.
Date Issued
2017-05-17
Date Acceptance
2017-05-12
Citation
eLife, 2017, 6
ISSN
2050-084X
Publisher
eLife Sciences Publications
Journal / Book Title
eLife
Volume
6
Copyright Statement
© Copyright Granados et al. Thisarticle is distributed under the
terms of the Creative Commons
Attribution License, which
permits unrestricted use and
redistribution provided that the
original author and source are
credited
terms of the Creative Commons
Attribution License, which
permits unrestricted use and
redistribution provided that the
original author and source are
credited
License URL
Sponsor
Engineering & Physical Science Research Council (EPSRC)
Engineering & Physical Science Research Council (EPSRC)
Grant Number
EP/G007446/1
BMPF_P66770
Subjects
Science & Technology
Life Sciences & Biomedicine
Biology
Life Sciences & Biomedicine - Other Topics
HOG MAPK PATHWAY
TRANSCRIPTION FACTOR TRANSLOCATION
GENE-EXPRESSION
OSMOTIC-STRESS
SACCHAROMYCES-CEREVISIAE
BACTERIAL CHEMOTAXIS
SIGNAL-TRANSDUCTION
PERFECT ADAPTATION
DECISION-MAKING
BUDDING YEAST
MAP kinase
S. cerevisiae
cellular perception
computational biology
microfluidics
signal transduction
speed-accuracy trade-off
stress response
systems biology
Publication Status
Published
Article Number
e21415