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转座子插入测序在农业科学中的应用。

Application of Transposon Insertion Sequencing to Agricultural Science.

作者信息

Fabian Belinda K, Tetu Sasha G, Paulsen Ian T

机构信息

ARC Centre of Excellence in Synthetic Biology, Macquarie University, Sydney, NSW, Australia.

Department of Molecular Sciences, Macquarie University, Sydney, NSW, Australia.

出版信息

Front Plant Sci. 2020 Mar 18;11:291. doi: 10.3389/fpls.2020.00291. eCollection 2020.

Abstract

Many plant-associated bacteria have the ability to positively affect plant growth and there is growing interest in utilizing such bacteria in agricultural settings to reduce reliance on pesticides and fertilizers. However, our capacity to utilize microbes in this way is currently limited due to patchy understanding of bacterial-plant interactions at a molecular level. Traditional methods of studying molecular interactions have sought to characterize the function of one gene at a time, but the slow pace of this work means the functions of the vast majority of bacterial genes remain unknown or poorly understood. New approaches to improve and speed up investigations into the functions of bacterial genes in agricultural systems will facilitate efforts to optimize microbial communities and develop microbe-based products. Techniques enabling high-throughput gene functional analysis, such as transposon insertion sequencing analyses, have great potential to be widely applied to determine key aspects of plant-bacterial interactions. Transposon insertion sequencing combines saturation transposon mutagenesis and high-throughput sequencing to simultaneously investigate the function of all the non-essential genes in a bacterial genome. This technique can be used for both and studies to identify genes involved in microbe-plant interactions, stress tolerance and pathogen virulence. The information provided by such investigations will rapidly accelerate the rate of bacterial gene functional determination and provide insights into the genes and pathways that underlie biotic interactions, metabolism, and survival of agriculturally relevant bacteria. This knowledge could be used to select the most appropriate plant growth promoting bacteria for a specific set of conditions, formulating crop inoculants, or developing crop protection products. This review provides an overview of transposon insertion sequencing, outlines how this approach has been applied to study plant-associated bacteria, and proposes new applications of these techniques for the benefit of agriculture.

摘要

许多与植物相关的细菌具有积极影响植物生长的能力,并且人们越来越有兴趣在农业环境中利用这类细菌,以减少对农药和化肥的依赖。然而,由于在分子水平上对细菌与植物相互作用的理解不全面,我们目前以这种方式利用微生物的能力有限。传统的研究分子相互作用的方法试图一次表征一个基因的功能,但这项工作的缓慢进程意味着绝大多数细菌基因的功能仍然未知或了解甚少。改进和加快对农业系统中细菌基因功能研究的新方法,将有助于优化微生物群落和开发基于微生物的产品。能够进行高通量基因功能分析的技术,如转座子插入测序分析,在广泛应用于确定植物与细菌相互作用的关键方面具有巨大潜力。转座子插入测序将饱和转座子诱变和高通量测序相结合,以同时研究细菌基因组中所有非必需基因的功能。这项技术可用于正向和反向遗传学研究,以鉴定参与微生物与植物相互作用、胁迫耐受性和病原体毒力的基因。此类研究提供的信息将迅速加快细菌基因功能的确定速度,并深入了解与农业相关细菌的生物相互作用、代谢和生存所依据的基因和途径。这些知识可用于为特定条件选择最合适的促进植物生长的细菌、配制作物接种剂或开发作物保护产品。本综述概述了转座子插入测序,概述了该方法如何应用于研究与植物相关的细菌,并提出了这些技术的新应用以造福农业。

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