Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.

Maximizing growth and survival in the face of a complex, time-varying environment is a common problem for single-celled organisms in the wild. When offered two different sugars as carbon sources, microorganisms first consume the preferred sugar, then undergo a transient growth delay, the "diaux...

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Main Authors: Jue Wang, Esha Atolia, Bo Hua, Yonatan Savir, Renan Escalante-Chong, Michael Springer
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS Biology
Online Access:http://europepmc.org/articles/PMC4308108?pdf=render
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spelling doaj-bf3e9f87a213437a844cd883065bb6d92021-07-02T08:06:38ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852015-01-01131e100204110.1371/journal.pbio.1002041Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.Jue WangEsha AtoliaBo HuaYonatan SavirRenan Escalante-ChongMichael SpringerMaximizing growth and survival in the face of a complex, time-varying environment is a common problem for single-celled organisms in the wild. When offered two different sugars as carbon sources, microorganisms first consume the preferred sugar, then undergo a transient growth delay, the "diauxic lag," while inducing genes to metabolize the less preferred sugar. This delay is commonly assumed to be an inevitable consequence of selection to maximize use of the preferred sugar. Contrary to this view, we found that many natural isolates of Saccharomyces cerevisiae display short or nonexistent diauxic lags when grown in mixtures of glucose (preferred) and galactose. These strains induce galactose utilization (GAL) genes hours before glucose exhaustion, thereby "preparing" for the transition from glucose to galactose metabolism. The extent of preparation varies across strains, and seems to be determined by the steady-state response of GAL genes to mixtures of glucose and galactose rather than by induction kinetics. Although early GAL gene induction gives strains a competitive advantage once glucose runs out, it comes at a cost while glucose is still present. Costs and benefits correlate with the degree of preparation: strains with higher expression of GAL genes prior to glucose exhaustion experience a larger upfront growth cost but also a shorter diauxic lag. Our results show that classical diauxic growth is only one extreme on a continuum of growth strategies constrained by a cost-benefit tradeoff. This type of continuum is likely to be common in nature, as similar tradeoffs can arise whenever cells evolve to use mixtures of nutrients.http://europepmc.org/articles/PMC4308108?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Jue Wang
Esha Atolia
Bo Hua
Yonatan Savir
Renan Escalante-Chong
Michael Springer
spellingShingle Jue Wang
Esha Atolia
Bo Hua
Yonatan Savir
Renan Escalante-Chong
Michael Springer
Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
PLoS Biology
author_facet Jue Wang
Esha Atolia
Bo Hua
Yonatan Savir
Renan Escalante-Chong
Michael Springer
author_sort Jue Wang
title Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
title_short Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
title_full Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
title_fullStr Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
title_full_unstemmed Natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
title_sort natural variation in preparation for nutrient depletion reveals a cost-benefit tradeoff.
publisher Public Library of Science (PLoS)
series PLoS Biology
issn 1544-9173
1545-7885
publishDate 2015-01-01
description Maximizing growth and survival in the face of a complex, time-varying environment is a common problem for single-celled organisms in the wild. When offered two different sugars as carbon sources, microorganisms first consume the preferred sugar, then undergo a transient growth delay, the "diauxic lag," while inducing genes to metabolize the less preferred sugar. This delay is commonly assumed to be an inevitable consequence of selection to maximize use of the preferred sugar. Contrary to this view, we found that many natural isolates of Saccharomyces cerevisiae display short or nonexistent diauxic lags when grown in mixtures of glucose (preferred) and galactose. These strains induce galactose utilization (GAL) genes hours before glucose exhaustion, thereby "preparing" for the transition from glucose to galactose metabolism. The extent of preparation varies across strains, and seems to be determined by the steady-state response of GAL genes to mixtures of glucose and galactose rather than by induction kinetics. Although early GAL gene induction gives strains a competitive advantage once glucose runs out, it comes at a cost while glucose is still present. Costs and benefits correlate with the degree of preparation: strains with higher expression of GAL genes prior to glucose exhaustion experience a larger upfront growth cost but also a shorter diauxic lag. Our results show that classical diauxic growth is only one extreme on a continuum of growth strategies constrained by a cost-benefit tradeoff. This type of continuum is likely to be common in nature, as similar tradeoffs can arise whenever cells evolve to use mixtures of nutrients.
url http://europepmc.org/articles/PMC4308108?pdf=render
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