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深度发现为植物微生物组科学的艰难部署提供了信息。

Deep discovery informs difficult deployment in plant microbiome science.

机构信息

Department of Biology, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA; Howard Hughes Medical Institute, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.

Department of Biological Sciences, "Luiz de Queiroz" College of Agriculture (ESALQ), University of São Paulo (USP), Piracicaba, SP, Brazil.

出版信息

Cell. 2023 Oct 12;186(21):4496-4513. doi: 10.1016/j.cell.2023.08.035.

Abstract

Plant-associated microbiota can extend plant immune system function, improve nutrient acquisition and availability, and alleviate abiotic stresses. Thus, naturally beneficial microbial therapeutics are enticing tools to improve plant productivity. The basic definition of plant microbiota across species and ecosystems, combined with the development of reductionist experimental models and the manipulation of plant phenotypes with microbes, has fueled interest in its translation to agriculture. However, the great majority of microbes exhibiting plant-productivity traits in the lab and greenhouse fail in the field. Therapeutic microbes must reach détente, the establishment of uneasy homeostasis, with the plant immune system, invade heterogeneous pre-established plant-associated communities, and persist in a new and potentially remodeled community. Environmental conditions can alter community structure and thus impact the engraftment of therapeutic microbes. We survey recent breakthroughs, challenges, and opportunities in translating beneficial microbes from the lab to the field.

摘要

植物相关微生物组可以扩展植物免疫系统功能,改善养分获取和利用,并减轻非生物胁迫。因此,天然有益的微生物疗法是一种诱人的工具,可以提高植物生产力。不同物种和生态系统中植物微生物组的基本定义,结合简化实验模型的发展和利用微生物对植物表型的操作,激发了将其应用于农业的兴趣。然而,在实验室和温室中表现出提高植物生产力特性的绝大多数微生物在田间却失败了。治疗性微生物必须与植物免疫系统达成和解,即建立不稳定的内稳态,侵入异质的预先建立的植物相关群落,并在新的、可能被重塑的群落中持续存在。环境条件可以改变群落结构,从而影响治疗性微生物的定植。我们调查了将有益微生物从实验室转化到田间的最新突破、挑战和机遇。

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