How microscopic epistasis and clonal interference shape the fitness trajectory in a spin glass model of microbial long-term evolution

Как микроскопический эпистаз и клональная интерференция формируют траекторию приспособленности в спин-стекольной модели длительной эволюции микроорганизмов
Nicholas M. Boffi, Yipei Guo, Chris H. Rycroft, Ariel Amir
2024-02-20

clonal interferencefitness trajectoriesmicroscopic epistasisserial dilutionspin glass model
The adaptive dynamics of evolving microbial populations takes place on a complex fitness landscape generated by epistatic interactions. The population generically consists of multiple competing strains, a phenomenon known as clonal interference. Microscopic epistasis and clonal interference are central aspects of evolution in microbes, but their combined effects on the functional form of the population’s mean fitness are poorly understood. Here, we develop a computational method that resolves the full microscopic complexity of a simulated evolving population subject to a standard serial dilution protocol. Through extensive numerical experimentation, we find that stronger microscopic epistasis gives rise to fitness trajectories with slower growth independent of the number of competing strains, which we quantify with power-law fits and understand mechanistically via a random walk model that neglects dynamical correlations between genes. We show that increasing the level of clonal interference leads to fitness trajectories with faster growth (in functional form) without microscopic epistasis, but leaves the rate of growth invariant when epistasis is sufficiently strong, indicating that the role of clonal interference depends intimately on the underlying fitness landscape. The simulation package for this work may be found at https://github.com/nmboffi/spin_glass_evodyn .
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A computational method resolves full microscopic population dynamics under a standard serial dilution protocol in a spin-glass fitness landscape.
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Stronger microscopic epistasis produces slower mean-fitness trajectories, independent of the number of competing strains, as quantified by power-law fits.
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The slowing effect of epistasis is mechanistically explained by a random-walk model that neglects dynamical correlations between genes.
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The study provides an open simulation package for investigating epistasis and clonal interference in microbial evolution.
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Without microscopic epistasis, increased clonal interference accelerates fitness growth in functional form; under sufficiently strong epistasis, it does not change the growth rate.

Evolving microbial populations on complex epistatic fitness landscapes, modeled as spin glasses under serial dilution

How microscopic epistasis and clonal interference affect the functional form and growth rate of the population mean-fitness trajectory

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2024-02-20
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Nicholas M. Boffi
Yipei Guo
Chris H. Rycroft
Ariel Amir
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