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A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts

During the emergence of new host–microbe symbioses, microbial fitness results from the ability to complete the different steps of symbiotic life cycles, where each step imposes specific selective pressures. However, the relative contribution of these different selective pressures to the adaptive tra...

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Autores principales: Doin de Moura, Ginaini Grazielli, Mouffok, Saida, Gaudu, Nil, Cazalé, Anne-Claire, Milhes, Marine, Bulach, Tabatha, Valière, Sophie, Roche, David, Ferdy, Jean-Baptiste, Masson-Boivin, Catherine, Capela, Delphine, Remigi, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10220510/
https://www.ncbi.nlm.nih.gov/pubmed/37186547
http://dx.doi.org/10.1093/molbev/msad116
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author Doin de Moura, Ginaini Grazielli
Mouffok, Saida
Gaudu, Nil
Cazalé, Anne-Claire
Milhes, Marine
Bulach, Tabatha
Valière, Sophie
Roche, David
Ferdy, Jean-Baptiste
Masson-Boivin, Catherine
Capela, Delphine
Remigi, Philippe
author_facet Doin de Moura, Ginaini Grazielli
Mouffok, Saida
Gaudu, Nil
Cazalé, Anne-Claire
Milhes, Marine
Bulach, Tabatha
Valière, Sophie
Roche, David
Ferdy, Jean-Baptiste
Masson-Boivin, Catherine
Capela, Delphine
Remigi, Philippe
author_sort Doin de Moura, Ginaini Grazielli
collection PubMed
description During the emergence of new host–microbe symbioses, microbial fitness results from the ability to complete the different steps of symbiotic life cycles, where each step imposes specific selective pressures. However, the relative contribution of these different selective pressures to the adaptive trajectories of microbial symbionts is still poorly known. Here, we characterized the dynamics of phenotypic adaptation to a simplified symbiotic life cycle during the experimental evolution of a plant pathogenic bacterium into a legume symbiont. We observed that fast adaptation was predominantly explained by improved competitiveness for host entry, which outweighed adaptation to within-host proliferation. Whole-population sequencing of bacteria at regular time intervals along this evolution experiment revealed the continuous accumulation of new mutations (fuelled by a transient hypermutagenesis phase occurring at each cycle before host entry, a phenomenon described in previous work) and sequential sweeps of cohorts of mutations with similar temporal trajectories. The identification of adaptive mutations within the fixed mutational cohorts showed that several adaptive mutations can co-occur in the same cohort. Moreover, all adaptive mutations improved competitiveness for host entry, while only a subset of those also improved within-host proliferation. Computer simulations predict that this effect emerges from the presence of a strong selective bottleneck at host entry occurring before within-host proliferation and just after the hypermutagenesis phase in the rhizosphere. Together, these results show how selective bottlenecks can alter the relative influence of selective pressures acting during bacterial adaptation to multistep infection processes.
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spelling pubmed-102205102023-05-28 A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts Doin de Moura, Ginaini Grazielli Mouffok, Saida Gaudu, Nil Cazalé, Anne-Claire Milhes, Marine Bulach, Tabatha Valière, Sophie Roche, David Ferdy, Jean-Baptiste Masson-Boivin, Catherine Capela, Delphine Remigi, Philippe Mol Biol Evol Discoveries During the emergence of new host–microbe symbioses, microbial fitness results from the ability to complete the different steps of symbiotic life cycles, where each step imposes specific selective pressures. However, the relative contribution of these different selective pressures to the adaptive trajectories of microbial symbionts is still poorly known. Here, we characterized the dynamics of phenotypic adaptation to a simplified symbiotic life cycle during the experimental evolution of a plant pathogenic bacterium into a legume symbiont. We observed that fast adaptation was predominantly explained by improved competitiveness for host entry, which outweighed adaptation to within-host proliferation. Whole-population sequencing of bacteria at regular time intervals along this evolution experiment revealed the continuous accumulation of new mutations (fuelled by a transient hypermutagenesis phase occurring at each cycle before host entry, a phenomenon described in previous work) and sequential sweeps of cohorts of mutations with similar temporal trajectories. The identification of adaptive mutations within the fixed mutational cohorts showed that several adaptive mutations can co-occur in the same cohort. Moreover, all adaptive mutations improved competitiveness for host entry, while only a subset of those also improved within-host proliferation. Computer simulations predict that this effect emerges from the presence of a strong selective bottleneck at host entry occurring before within-host proliferation and just after the hypermutagenesis phase in the rhizosphere. Together, these results show how selective bottlenecks can alter the relative influence of selective pressures acting during bacterial adaptation to multistep infection processes. Oxford University Press 2023-05-15 /pmc/articles/PMC10220510/ /pubmed/37186547 http://dx.doi.org/10.1093/molbev/msad116 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of Society for Molecular Biology and Evolution. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Discoveries
Doin de Moura, Ginaini Grazielli
Mouffok, Saida
Gaudu, Nil
Cazalé, Anne-Claire
Milhes, Marine
Bulach, Tabatha
Valière, Sophie
Roche, David
Ferdy, Jean-Baptiste
Masson-Boivin, Catherine
Capela, Delphine
Remigi, Philippe
A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title_full A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title_fullStr A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title_full_unstemmed A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title_short A Selective Bottleneck During Host Entry Drives the Evolution of New Legume Symbionts
title_sort selective bottleneck during host entry drives the evolution of new legume symbionts
topic Discoveries
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10220510/
https://www.ncbi.nlm.nih.gov/pubmed/37186547
http://dx.doi.org/10.1093/molbev/msad116
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