Memory and fitness optimization of bacteria under fluctuating environments.

Bacteria prudently regulate their metabolic phenotypes by sensing the availability of specific nutrients, expressing the required genes for their metabolism, and repressing them after specific metabolites are depleted. It is unclear, however, how genetic networks maintain and transmit phenotypic sta...

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Main Authors: Guillaume Lambert, Edo Kussell
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-09-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC4177670?pdf=render
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spelling doaj-c8e918f006d749cea8bc0fc722d1aa5f2020-11-25T02:33:13ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042014-09-01109e100455610.1371/journal.pgen.1004556Memory and fitness optimization of bacteria under fluctuating environments.Guillaume LambertEdo KussellBacteria prudently regulate their metabolic phenotypes by sensing the availability of specific nutrients, expressing the required genes for their metabolism, and repressing them after specific metabolites are depleted. It is unclear, however, how genetic networks maintain and transmit phenotypic states between generations under rapidly fluctuating environments. By subjecting bacteria to fluctuating carbon sources (glucose and lactose) using microfluidics, we discover two types of non-genetic memory in Escherichia coli and analyze their benefits. First, phenotypic memory conferred by transmission of stable intracellular lac proteins dramatically reduces lag phases under cyclical fluctuations with intermediate timescales (1-10 generations). Second, response memory, a hysteretic behavior in which gene expression persists after removal of its external inducer, enhances adaptation when environments fluctuate over short timescales (< 1 generation). Using a mathematical model we analyze the benefits of memory across environmental fluctuation timescales. We show that memory mechanisms provide an important class of survival strategies in biology that improve long-term fitness under fluctuating environments. These results can be used to understand how organisms adapt to fluctuating levels of nutrients, antibiotics, and other environmental stresses.http://europepmc.org/articles/PMC4177670?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Guillaume Lambert
Edo Kussell
spellingShingle Guillaume Lambert
Edo Kussell
Memory and fitness optimization of bacteria under fluctuating environments.
PLoS Genetics
author_facet Guillaume Lambert
Edo Kussell
author_sort Guillaume Lambert
title Memory and fitness optimization of bacteria under fluctuating environments.
title_short Memory and fitness optimization of bacteria under fluctuating environments.
title_full Memory and fitness optimization of bacteria under fluctuating environments.
title_fullStr Memory and fitness optimization of bacteria under fluctuating environments.
title_full_unstemmed Memory and fitness optimization of bacteria under fluctuating environments.
title_sort memory and fitness optimization of bacteria under fluctuating environments.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2014-09-01
description Bacteria prudently regulate their metabolic phenotypes by sensing the availability of specific nutrients, expressing the required genes for their metabolism, and repressing them after specific metabolites are depleted. It is unclear, however, how genetic networks maintain and transmit phenotypic states between generations under rapidly fluctuating environments. By subjecting bacteria to fluctuating carbon sources (glucose and lactose) using microfluidics, we discover two types of non-genetic memory in Escherichia coli and analyze their benefits. First, phenotypic memory conferred by transmission of stable intracellular lac proteins dramatically reduces lag phases under cyclical fluctuations with intermediate timescales (1-10 generations). Second, response memory, a hysteretic behavior in which gene expression persists after removal of its external inducer, enhances adaptation when environments fluctuate over short timescales (< 1 generation). Using a mathematical model we analyze the benefits of memory across environmental fluctuation timescales. We show that memory mechanisms provide an important class of survival strategies in biology that improve long-term fitness under fluctuating environments. These results can be used to understand how organisms adapt to fluctuating levels of nutrients, antibiotics, and other environmental stresses.
url http://europepmc.org/articles/PMC4177670?pdf=render
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