4.4 Article

Synchronous Waves of Failed Soft Sweeps in the Laboratory: Remarkably Rampant Clonal Interference of Alleles at a Single Locus

Journal

GENETICS
Volume 193, Issue 3, Pages 943-+

Publisher

GENETICS SOC AM
DOI: 10.1534/genetics.112.148502

Keywords

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Funding

  1. National Science Foundation [DEB-0845893]
  2. National Institutes of Health [R01 GM078209]
  3. Direct For Biological Sciences
  4. Division Of Environmental Biology [0845893] Funding Source: National Science Foundation

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It has increasingly been recognized that adapting populations of microbes contain not one, but many lineages continually arising and competing at once. This process, termed clonal interference, alters the rate and dynamics of adaptation and biases winning mutations toward those with the largest selective effect. Here we uncovered a dramatic example of clonal interference between multiple similar mutations occurring at the same locus within replicate populations of Methylobacterium extorquens AM1. Because these mutational events involved the transposition of an insertion sequence into a narrow window of a single gene, they were both readily detectable at low frequencies and could be distinguished due to differences in insertion sites. This allowed us to detect up to 17 beneficial alleles of this type coexisting in a single population. Despite conferring a large selective benefit, the majority of these alleles rose and then fell in frequency due to other lineages emerging that were more fit. By comparing allele-frequency dynamics to the trajectories of fitness gains by these populations, we estimated the fitness values of the genotypes that contained these mutations. Collectively across all populations, these alleles arose upon backgrounds with a wide range of fitness values. Within any single population, however, multiple alleles tended to rise and fall synchronously during a single wave of multiple genotypes with nearly identical fitness values. These results suggest that alleles of large benefit arose repeatedly in failed soft sweeps during narrow windows of adaptation due to the combined effects of epistasis and clonal interference.

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