Laboratory Evolution to Alternating Substrate Environments Yields Distinct Phenotypic and Genetic Adaptive Strategies

被引:64
|
作者
Sandberg, Troy E. [1 ]
Lloyd, Colton J. [1 ]
Palsson, Bernhard O. [1 ,2 ]
Feist, Adam M. [1 ,2 ]
机构
[1] Univ Calif San Diego, Dept Bioengn, San Diego, CA 92103 USA
[2] Tech Univ Denmark, Novo Nordisk Fdn, Ctr Biosustainabil, Lyngby, Denmark
关键词
adaptive laboratory evolution; Escherichia coli; adaptive mutations; phenotypic variation; GENOME-SCALE MODELS; ESCHERICHIA-COLI; METABOLISM; GROWTH; MUTATIONS; ADAPTATION; GLUCOSE; RECONSTRUCTION; MAINTENANCE; EXPRESSION;
D O I
10.1128/AEM.00410-17
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Adaptive laboratory evolution (ALE) experiments are often designed to maintain a static culturing environment to minimize confounding variables that could influence the adaptive process, but dynamic nutrient conditions occur frequently in natural and bioprocessing settings. To study the nature of carbon substrate fitness tradeoffs, we evolved batch cultures of Escherichia coli via serial propagation into tubes alternating between glucose and either xylose, glycerol, or acetate. Genome sequencing of evolved cultures revealed several genetic changes preferentially selected for under dynamic conditions and different adaptation strategies depending on the substrates being switched between; in some environments, a persistent "generalist" strain developed, while in another, two "specialist" subpopulations arose that alternated dominance. Diauxic lag phenotype varied across the generalists and specialists, in one case being completely abolished, while gene expression data distinguished the transcriptional strategies implemented by strains in pursuit of growth optimality. Genome-scale metabolic modeling techniques were then used to help explain the inherent substrate differences giving rise to the observed distinct adaptive strategies. This study gives insight into the population dynamics of adaptation in an alternating environment and into the underlying metabolic and genetic mechanisms. Furthermore, ALE-generated optimized strains have phenotypes with potential industrial bioprocessing applications. IMPORTANCE Evolution and natural selection inexorably lead to an organism's improved fitness in a given environment, whether in a laboratory or natural setting. However, despite the frequent natural occurrence of complex and dynamic growth environments, laboratory evolution experiments typically maintain simple, static culturing environments so as to reduce selection pressure complexity. In this study, we investigated the adaptive strategies underlying evolution to fluctuating environments by evolving Escherichia coli to conditions of frequently switching growth substrate. Characterization of evolved strains via a number of different data types revealed the various genetic and phenotypic changes implemented in pursuit of growth optimality and how these differed across the different growth substrates and switching protocols. This work not only helps to establish general principles of adaptation to complex environments but also suggests strategies for experimental design to achieve desired evolutionary outcomes.
引用
收藏
页数:15
相关论文
共 36 条
  • [31] Improvement of macrolactins production by the genetic adaptation of Bacillus siamensis A72 to saline stress via adaptive laboratory evolution
    Yuman Gan
    Meng Bai
    Xiao Lin
    Kai Liu
    Bingyao Huang
    Xiaodong Jiang
    Yonghong Liu
    Chenghai Gao
    Microbial Cell Factories, 21
  • [32] Transcriptomic analysis using RNA sequencing and phenotypic analysis of Salmonella enterica after acid exposure for different time durations using adaptive laboratory evolution
    Ghoshal, Mrinalini
    Bechtel, Tyler D.
    Gibbons, John G.
    McLandsborough, Lynne
    FRONTIERS IN MICROBIOLOGY, 2024, 15
  • [33] Genetic changes during a laboratory adaptive evolution process that allowed fast growth in glucose to an Escherichia coli strain lacking the major glucose transport system
    Aguilar, Cesar
    Escalante, Adelfo
    Flores, Noemi
    de Anda, Ramon
    Riveros-McKay, Fernando
    Gosset, Guillermo
    Morett, Enrique
    Bolivar, Francisco
    BMC GENOMICS, 2012, 13
  • [34] Genetic changes during a laboratory adaptive evolution process that allowed fast growth in glucose to an Escherichia coli strain lacking the major glucose transport system
    César Aguilar
    Adelfo Escalante
    Noemí Flores
    Ramón de Anda
    Fernando Riveros-McKay
    Guillermo Gosset
    Enrique Morett
    Francisco Bolívar
    BMC Genomics, 13
  • [35] Adaptive laboratory evolution and metabolic regulation of genetic Escherichia coli W3110 toward low-carbon footprint production of 5-aminolevulinic acid
    Ting, Wan-Wen
    Ng, I-Son
    JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2022, 141
  • [36] Adaptive Social Learning Strategies in Temporally and Spatially Varying Environments How Temporal vs. Spatial Variation, Number of Cultural Traits, and Costs of Learning Influence the Evolution of Conformist-Biased Transmission, Payoff-Biased Transmission, and Individual Learning
    Nakahashi, Wataru
    Wakano, Joe Yuichiro
    Henrich, Joseph
    HUMAN NATURE-AN INTERDISCIPLINARY BIOSOCIAL PERSPECTIVE, 2012, 23 (04): : 386 - 418