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Hierarchical genotype networks and incipient ecological speciation in Q$\beta$ phage quasispecies

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arxiv 2411.07110 v1 pith:2TIAJOAO submitted 2024-11-11 q-bio.PE nlin.AOphysics.bio-phq-bio.MN

classification q-bio.PEnlin.AOphysics.bio-phq-bio.MN
keywords genotypenetworksdifferentmutantpopulationsbetaconnectedcore
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abstract

Understanding how viral mutant spectra organize and explore genotype space is essential for unraveling the mechanisms driving evolution at the finest scale. Here we use deep-sequencing data of an amplicon in the A2 protein of the RNA bacteriophage Q$\beta$ to reconstruct genotype networks with tens of thousands of different haplotypes. The study of populations evolved under different temperature regimes uncovers generic topological features conditioned by fundamental structural motifs of genotype networks -- tetrahedrons, triangles, and squares -- that govern their local architecture. Mutant swarms display a hierarchical structure where sequences cluster around a highly connected and abundant sequence core that sustains population diversity. The immediate neighborhood of this core is comprehensively sampled, with no signs of selection, while a few mutations away sampling becomes dynamical and sparse, showing signs of purifying selection. By aggregating genotype networks from populations adapted to different temperatures, we capture the early stages of evolutionary divergence, with overlapping populations that remain connected through short mutational paths. Even at the time scale of these experiments, evolutionary pathways might be multiple, preventing the backward reconstruction of unique trajectories once mutations have been fixed. This analysis provides a detailed view of the local, fine-scale processes shaping viral quasispecies evolution and underscores the usefulness of genotype networks as an enlightening visualization of the organization of mutant swarms.

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  1. Genotype networks drive oscillating endemicity and epidemic trajectories in viral evolution

    q-bio.PE 2025-06 conditional novelty 6.0 of 10

    In the SIMS model, star-like mutational clusters cause oscillatory seasonal outbreaks while lattice-like networks give stable endemic states, and simulated strain emergence order correlates with H3N2 sampling times.

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