Negative frequency-dependent selection maintains coexisting genotypes during fluctuating selection

被引:8
作者
Turner, Caroline B. [1 ]
Buskirk, Sean W. [2 ,4 ]
Harris, Katrina B. [1 ]
Cooper, Vaughn S. [3 ]
机构
[1] Univ Pittsburgh, Dept Microbiol & Mol Genet, Pittsburgh, PA USA
[2] Univ New Hampshire, Dept Mol Cellular & Biomed Sci, Durham, NH 03824 USA
[3] Univ Pittsburgh, Ctr Evolutionary Biol & Med, Dept Microbiol & Mol Genet, Pittsburgh, PA 15260 USA
[4] West Chester Univ, Dept Biol, W Chester, PA USA
关键词
adaptation; bacteria; experimental evolution; population ecology; TERM EXPERIMENTAL EVOLUTION; ESCHERICHIA-COLI; ADAPTIVE EVOLUTION; TRADE-OFFS; ADAPTATION; ENVIRONMENTS; GENERALISTS; MAINTENANCE; POPULATIONS; SPECIALISTS;
D O I
10.1111/mec.15307
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Natural environments are rarely static; rather selection can fluctuate on timescales ranging from hours to centuries. However, it is unclear how adaptation to fluctuating environments differs from adaptation to constant environments at the genetic level. For bacteria, one key axis of environmental variation is selection for planktonic or biofilm modes of growth. We conducted an evolution experiment with Burkholderia cenocepacia, comparing the evolutionary dynamics of populations evolving under constant selection for either biofilm formation or planktonic growth with populations in which selection fluctuated between the two environments on a weekly basis. Populations evolved in the fluctuating environment shared many of the same genetic targets of selection as those evolved in constant biofilm selection, but were genetically distinct from the constant planktonic populations. In the fluctuating environment, mutations in the biofilm-regulating genes wspA and rpfR rose to high frequency in all replicate populations. A mutation in wspA first rose rapidly and nearly fixed during the initial biofilm phase but was subsequently displaced by a collection of rpfR mutants upon the shift to the planktonic phase. The wspA and rpfR genotypes coexisted via negative frequency-dependent selection around an equilibrium frequency that shifted between the environments. The maintenance of coexisting genotypes in the fluctuating environment was unexpected. Under temporally fluctuating environments, coexistence of two genotypes is only predicted under a narrow range of conditions, but the frequency-dependent interactions we observed provide a mechanism that can increase the likelihood of coexistence in fluctuating environments.
引用
收藏
页码:138 / 148
页数:11
相关论文
共 44 条
[31]   Complex dynamics occur in a single-locus, multiallelic model of general frequency-dependent selection [J].
Trotter, Meredith V. ;
Spencer, Hamish G. .
THEORETICAL POPULATION BIOLOGY, 2009, 76 (04) :292-298
[32]   Dose-dependent selection drives lineage replacement during the experimental evolution of SDHI fungicide resistance in Zymoseptoria tritici [J].
Gutierrez-Alonso, Omar ;
Hawkins, Nichola J. ;
Cools, Hans J. ;
Shaw, Michael W. ;
Fraaije, Bart A. .
EVOLUTIONARY APPLICATIONS, 2017, 10 (10) :1055-1066
[33]   Pervasive Recombination and Sympatric Genome Diversification Driven by Frequency-Dependent Selection in Borrelia burgdorferi, the Lyme Disease Bacterium [J].
Haven, James ;
Vargas, Levy C. ;
Mongodin, Emmanuel F. ;
Xue, Vincent ;
Hernandez, Yozen ;
Pagan, Pedro ;
Fraser-Liggett, Claire M. ;
Schutzer, Steven E. ;
Luft, Benjamin J. ;
Casjens, Sherwood R. ;
Qiu, Wei-Gang .
GENETICS, 2011, 189 (03) :951-U341
[34]   Trade-offs between microbial growth phases lead to frequency-dependent and non-transitive selection [J].
Manhart, Michael ;
Adkar, Bharat V. ;
Shakhnovich, Eugene I. .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2018, 285 (1872)
[35]   Positively Frequency-Dependent Interference Competition Maintains Diversity and Pervades a Natural Population of Cooperative Microbes [J].
Rendueles, Olaya ;
Amherd, Michaela ;
Velicer, Gregory J. .
CURRENT BIOLOGY, 2015, 25 (13) :1673-1681
[36]   High variability in a mating type linked region in the dry rot fungus Serpula lacrymans caused by frequency-dependent selection? [J].
Engh, Ingeborg Bjorvand ;
Skrede, Inger ;
Saetre, Glenn-Peter ;
Kauserud, Havard .
BMC GENETICS, 2010, 11
[37]   A microbial modified prisoner's dilemma game: how frequency-dependent selection can lead to random phase variation [J].
Wolf, DM ;
Vazirani, VV ;
Arkin, AP .
JOURNAL OF THEORETICAL BIOLOGY, 2005, 234 (02) :255-262
[38]   Fluctuating selection and rapid evolution of oaks during recent climatic transitions [J].
Caignard, Thomas ;
Truffaut, Laura ;
Delzon, Sylvain ;
Dencausse, Benjamin ;
Lecacheux, Laura ;
Torres-Ruiz, Jose M. ;
Kremer, Antoine .
PLANTS PEOPLE PLANET, 2024, 6 (01) :221-237
[39]   Frequency-Dependent and Correlational Selection Pressures Have Conflicting Consequences for Assortative Mating in a Color-Polymorphic Lizard, Uta stansburiana [J].
Lancaster, Lesley T. ;
McAdam, Andrew G. ;
Hipsley, Christy A. ;
Sinervo, Barry R. .
AMERICAN NATURALIST, 2014, 184 (02) :188-197
[40]   Density-Dependent Selection during Range Expansion Affects Expansion Load in Life History Traits [J].
Urquhart-Cronish, Mackenzie ;
Angert, Amy L. ;
Otto, Sarah P. ;
Macpherson, Ailene .
AMERICAN NATURALIST, 2024, 203 (03) :382-392