Department of Microbiology and Immunobiology, Harvard Medical School, Boston, MA 02115.
Department of Biostatistics and Computational Biology, Dana-Farber Cancer Institute, Boston, MA 02115.
Proc Natl Acad Sci U S A. 2017 Mar 21;114(12):E2450-E2459. doi: 10.1073/pnas.1616148114. Epub 2017 Mar 8.
Plant-associated microbes are important for the growth and health of their hosts. As a result of numerous prior studies, we know that host genotypes and abiotic factors influence the composition of plant microbiomes. However, the high complexity of these communities challenges detailed studies to define experimentally the mechanisms underlying the dynamics of community assembly and the beneficial effects of such microbiomes on plant hosts. In this work, from the distinctive microbiota assembled by maize roots, through host-mediated selection, we obtained a greatly simplified synthetic bacterial community consisting of seven strains (, , and ) representing three of the four most dominant phyla found in maize roots. By using a selective culture-dependent method to track the abundance of each strain, we investigated the role that each plays in community assembly on roots of axenic maize seedlings. Only the removal of led to the complete loss of the community, and took over. This result suggests that plays the role of keystone species in this model ecosystem. and in vitro, this model community inhibited the phytopathogenic fungus , indicating a clear benefit to the host. Thus, combined with the selective culture-dependent quantification method, our synthetic seven-species community representing the root microbiome has the potential to serve as a useful system to explore how bacterial interspecies interactions affect root microbiome assembly and to dissect the beneficial effects of the root microbiota on hosts under laboratory conditions in the future.
植物相关微生物对其宿主的生长和健康至关重要。由于大量先前的研究,我们知道宿主基因型和非生物因素会影响植物微生物组的组成。然而,这些群落的高度复杂性使得详细研究难以确定群落组装动态的机制以及这些微生物组对植物宿主的有益影响。在这项工作中,通过对玉米根组装的独特微生物群进行研究,通过宿主介导的选择,我们获得了一个由 7 株菌组成的大大简化的合成细菌群落(、、和),它们代表了在玉米根中发现的四个最主要门中的三个。通过使用选择性培养依赖的方法来跟踪每种菌株的丰度,我们研究了每种菌株在无菌玉米幼苗根中对群落组装的作用。只有去除 才会导致群落完全丧失,而 会接管。这一结果表明, 在这个模型生态系统中起着关键种的作用。在体内和体外,这个模型群落都抑制了植物病原菌 ,这表明对宿主有明显的益处。因此,结合选择性培养依赖的定量方法,我们的代表根微生物组的合成七种菌群落有可能成为一个有用的系统,用于探索细菌种间相互作用如何影响根微生物组的组装,并在未来的实验室条件下剖析根微生物组对宿主的有益影响。