Transmission of synthetic seed bacterial communities to radish seedlings: impact on microbiota assembly and plant phenotype

Marie Simonin, Anne Préveaux, Coralie Marais, Tiffany Garin, Gontran Arnault, Alain Sarniguet, Matthieu Barret
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Abstract

Seed-borne microorganisms can be pioneer taxa during germination and seedling emergence. Still, the identity and phenotypic effects of these taxa that constitute a primary inoculum of plant microbiota is mostly unknown. Here, we studied the transmission of bacteria from radish seeds to seedlings using the inoculation of individual seed-borne strains and synthetic communities (SynComs) under in vitro conditions. The SynComs were composed of highly abundant and prevalent, sub-dominant, or rare bacterial seed taxa. We monitored the transmission of each strain alone or in communities using gyrB gene amplicon sequencing and assessed their impacts on germination and seedling phenotype. All strains and SynComs successfully colonized seedlings and we were able to reconstruct a richness gradient (6, 8 and 12 strains) on both seeds and seedlings. Stenotrophomonas rhizophila became dominant on seedlings of the three SynComs but most strains had variable transmission success (i.e increasing, stable or decreasing during seed to seedling transition) that also depended on the SynCom richness. Most individual strains had no effect on seedling phenotypes, with the exception of Pseudomonas viridiflava and Paenibacillus sp. which had detrimental effects on germination and seedling development. Abnormal seedling morphologies were also observed with SynComs but their proportions decreased at the highest richness level. Interestingly, some bacterial strains previously identified as core taxa of radish seeds (Pseudomonas viridiflava, Erwinia persicina) were associated with detrimental effects on seedling phenotypes either in isolation or in SynComs. These results confirm that the plant core microbiome includes pathogenic and not only commensal or mutualistic taxa. Altogether, these results show that SynCom inoculation can effectively manipulate seed and seedling microbiota diversity and thus represents a promising tool to better understand the early stages of plant microbiota assembly. This study also highlights strong differences between native seed-borne taxa in the colonization and survival on plant habitats.
合成种子细菌群落在萝卜幼苗中的传播:对微生物群聚集和植株表型的影响
在种子萌发和出苗过程中,种传微生物是先锋类群。尽管如此,这些构成植物微生物群初级接种体的分类群的身份和表型效应大多是未知的。本研究在体外条件下,采用单株种传菌和合成菌群(SynComs)接种,研究了细菌从萝卜种子向幼苗的传播。SynComs由高度丰富和流行的、亚优势的或罕见的细菌种子分类群组成。我们利用gyrB基因扩增子测序监测了每个菌株单独或在社区中的传播,并评估了它们对发芽和幼苗表型的影响。所有菌株和SynComs都成功定植于幼苗,我们能够在种子和幼苗上重建一个丰富度梯度(6,8和12株)。嗜根窄养单胞菌在三种SynCom的幼苗上占主导地位,但大多数菌株的传播成功率不同(即在种子到幼苗的过渡过程中增加、稳定或减少),这也取决于SynCom的丰富度。除绿黄假单胞菌和Paenibacillus sp.对种子萌发和幼苗发育有不利影响外,大多数菌株对幼苗表型没有影响。在丰富度最高的情况下,SynComs的幼苗形态也出现异常,但比例有所下降。有趣的是,一些以前被确定为萝卜种子核心分类群的菌株(绿黄假单胞菌,桃毛杆菌)在分离或SynComs中对幼苗表型产生有害影响。这些结果证实,植物核心微生物群不仅包括共生或共生的类群,还包括致病的类群。总之,这些结果表明,接种SynCom可以有效地控制种子和幼苗的微生物群多样性,从而为更好地了解植物微生物群的早期组装提供了一个有前途的工具。本研究还强调了本地种子传种类群在植物生境上的定植和生存存在的巨大差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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