Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>

<p>Abstract</p> <p>Background</p> <p>To maintain populations of microbial cells under controlled conditions of growth and environment for an indefinite duration is a prerequisite for experimentally evolving natural isolates of wild-type species or recombinant strains. T...

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Main Authors: Mutzel Rupert, Bellalou Jacques, de Crécy-Lagard Valérie A, Marlière Philippe
Format: Article
Language:English
Published: BMC 2001-11-01
Series:BMC Biotechnology
Online Access:http://www.biomedcentral.com/1472-6750/1/10
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spelling doaj-b8e0f2240f874e0f8600b3696be5b4552020-11-25T03:54:59ZengBMCBMC Biotechnology1472-67502001-11-01111010.1186/1472-6750-1-10Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>Mutzel RupertBellalou Jacquesde Crécy-Lagard Valérie AMarlière Philippe<p>Abstract</p> <p>Background</p> <p>To maintain populations of microbial cells under controlled conditions of growth and environment for an indefinite duration is a prerequisite for experimentally evolving natural isolates of wild-type species or recombinant strains. This goal is beyond the scope of current continuous culture apparatus because these devices positively select mutants that evade dilution, primarily through attachment to vessel surfaces, resulting in persistent sub-populations of uncontrollable size and growth rate.</p> <p>Results</p> <p>To overcome this drawback, a device with two growth chambers periodically undergoing transient phases of sterilization was designed. The robustness of this device was assessed by propagating an <it>E. coli</it> strain under permanent thymine starvation for over 880 days, i.e. metabolic conditions notoriously known to lead to cell death and clogging of cultivation vessels. Ten thousand generations were required to obtain a descendant lineage that could resist thymine starvation and had recovered wild-type growth rate.</p> <p>Conclusions</p> <p>This approach provides a technological framework for the diversification and improvement of microbial strains by long-term adaptation to inescapable metabolic constraints. An <it>E. coli</it> strain that is totally resistant to thymineless death was selected.</p> http://www.biomedcentral.com/1472-6750/1/10
collection DOAJ
language English
format Article
sources DOAJ
author Mutzel Rupert
Bellalou Jacques
de Crécy-Lagard Valérie A
Marlière Philippe
spellingShingle Mutzel Rupert
Bellalou Jacques
de Crécy-Lagard Valérie A
Marlière Philippe
Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
BMC Biotechnology
author_facet Mutzel Rupert
Bellalou Jacques
de Crécy-Lagard Valérie A
Marlière Philippe
author_sort Mutzel Rupert
title Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
title_short Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
title_full Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
title_fullStr Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
title_full_unstemmed Long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>Escherichia coli</it>
title_sort long term adaptation of a microbial population to a permanent metabolic constraint: overcoming thymineless death by experimental evolution of <it>escherichia coli</it>
publisher BMC
series BMC Biotechnology
issn 1472-6750
publishDate 2001-11-01
description <p>Abstract</p> <p>Background</p> <p>To maintain populations of microbial cells under controlled conditions of growth and environment for an indefinite duration is a prerequisite for experimentally evolving natural isolates of wild-type species or recombinant strains. This goal is beyond the scope of current continuous culture apparatus because these devices positively select mutants that evade dilution, primarily through attachment to vessel surfaces, resulting in persistent sub-populations of uncontrollable size and growth rate.</p> <p>Results</p> <p>To overcome this drawback, a device with two growth chambers periodically undergoing transient phases of sterilization was designed. The robustness of this device was assessed by propagating an <it>E. coli</it> strain under permanent thymine starvation for over 880 days, i.e. metabolic conditions notoriously known to lead to cell death and clogging of cultivation vessels. Ten thousand generations were required to obtain a descendant lineage that could resist thymine starvation and had recovered wild-type growth rate.</p> <p>Conclusions</p> <p>This approach provides a technological framework for the diversification and improvement of microbial strains by long-term adaptation to inescapable metabolic constraints. An <it>E. coli</it> strain that is totally resistant to thymineless death was selected.</p>
url http://www.biomedcentral.com/1472-6750/1/10
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