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研究在自然栖息地中与[具体内容缺失]相互作用的最丰富且普遍存在的非致病性叶际细菌的遗传多样性。

Investigating genetic diversity within the most abundant and prevalent non-pathogenic leaf-associated bacteria interacting with in natural habitats.

作者信息

Ramírez-Sánchez Daniela, Gibelin-Viala Chrystel, Mayjonade Baptiste, Duflos Rémi, Belmonte Elodie, Pailler Vincent, Bartoli Claudia, Carrere Sébastien, Vailleau Fabienne, Roux Fabrice

机构信息

LIPME, INRAE, CNRS, Université de Toulouse, Castanet-Tolosan, France.

Gentyane, UMR 1095 GDEC, INRAE, Université Clermont Auvergne, Clermont-Ferrand, France.

出版信息

Front Microbiol. 2022 Sep 23;13:984832. doi: 10.3389/fmicb.2022.984832. eCollection 2022.

Abstract

Microbiota modulates plant health and appears as a promising lever to develop innovative, sustainable and eco-friendly agro-ecosystems. Key patterns of microbiota assemblages in plants have been revealed by an extensive number of studies based on taxonomic profiling by metabarcoding. However, understanding the functionality of microbiota is still in its infancy and relies on reductionist approaches primarily based on the establishment of representative microbial collections. In , most of these microbial collections include one strain per OTU isolated from a limited number of habitats, thereby neglecting the ecological potential of genetic diversity within microbial species. With this study, we aimed at estimating the extent of genetic variation between strains within the most abundant and prevalent leaf-associated non-pathogenic bacterial species in located south-west of France. By combining a culture-based collection approach consisting of the isolation of more than 7,000 bacterial colonies with an informative-driven approach, we isolated 35 pure strains from eight non-pathogenic bacterial species. We detected significant intra-specific genetic variation at the genomic level and for growth rate in synthetic media. In addition, significant host genetic variation was detected in response to most bacterial strains in conditions, albeit dependent on the developmental stage at which plants were inoculated, with the presence of both negative and positive responses on plant growth. Our study provides new genetic and genomic resources for a better understanding of the plant-microbe ecological interactions at the microbiota level. We also highlight the need of considering genetic variation in both non-pathogenic bacterial species and to decipher the genetic and molecular mechanisms involved in the ecologically relevant dialog between hosts and leaf microbiota.

摘要

微生物群调节植物健康,并且似乎是发展创新、可持续和生态友好型农业生态系统的一个有前景的手段。基于宏条形码分类分析的大量研究揭示了植物中微生物群组装的关键模式。然而,对微生物群功能的理解仍处于起步阶段,并且主要依赖于基于建立代表性微生物集合的简化方法。在这些方法中,大多数微生物集合每个操作分类单元(OTU)仅包含从有限数量的栖息地分离出的一个菌株,从而忽略了微生物物种内遗传多样性的生态潜力。在本研究中,我们旨在估计法国西南部最丰富和普遍的叶相关非致病细菌物种内菌株之间的遗传变异程度。通过将一种基于培养的集合方法(包括分离7000多个细菌菌落)与一种信息驱动方法相结合,我们从8种非致病细菌物种中分离出35个纯菌株。我们在基因组水平以及合成培养基中的生长速率方面检测到了显著的种内遗传变异。此外,在接种条件下,对大多数细菌菌株检测到了显著的宿主遗传变异,尽管这取决于接种植物时的发育阶段,对植物生长既有负面反应也有正面反应。我们的研究提供了新的遗传和基因组资源,以更好地理解微生物群水平上的植物 - 微生物生态相互作用。我们还强调需要考虑非致病细菌物种和宿主中的遗传变异,以破译宿主与叶微生物群之间生态相关对话中涉及的遗传和分子机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8dfa/9537739/5c613174ff45/fmicb-13-984832-g001.jpg

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