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作物微生物组:它们在维持农业方面的作用以及分子和组学技术的进展

Crop microbiome: their role and advances in molecular and omic techniques for the sustenance of agriculture.

作者信息

Rai Shalini, Omar Ayman F, Rehan Medhat, Al-Turki Ahmad, Sagar Alka, Ilyas Noshin, Sayyed R Z, Hasanuzzaman Mirza

机构信息

Department of Biotechnology, SHEPA, Varanasi, India.

Department of Plant Production and Protection, College of Agriculture and Veterinary Medicine, Qassim University, Buraydah, 51452, Saudi Arabia.

出版信息

Planta. 2022 Dec 30;257(2):27. doi: 10.1007/s00425-022-04052-5.

Abstract

This review is an effort to provide in-depth knowledge of microbe's interaction and its role in crop microbiome using combination of advanced molecular and OMICS technology to translate this information for the sustenance of agriculture. Increasing population, climate change and exhaustive agricultural practices either influenced nutrient inputs of soil or generating biological and physico-chemical deterioration of the soils and affecting the agricultural productivity and agro-ecosystems. Alarming concerns toward food security and crop production claim for renewed attention in microbe-based farming practices. Microbes are omnipresent (soil, water, and air) and their close association with plants would help to accomplish sustainable agriculture goals. In the last few decades, the search for beneficial microbes in crop production, soil fertilization, disease management, and plant growth promotion is the thirst for eco-friendly agriculture. The crop microbiome opens new paths to utilize beneficial microbes and manage pathogenic microbes through integrated advanced biotechnology. The crop microbiome helps plants acquire nutrients, growth, resilience against phytopathogens, and tolerance to abiotic stresses, such as heat, drought, and salinity. Despite the emergent functionality of the crop microbiome as a complicated constituent of the plant fitness, our understanding of how the functionality of microbiome influenced by numerous factors including genotype of host, climatic conditions, mobilization of minerals, soil composition, nutrient availability, interaction between nexus of microbes, and interactions with other external microbiomes is partially understood. However, the structure, composition, dynamics, and functional contribution of such cultured and uncultured crop microbiome are least explored. The advanced biotechnological approaches are efficient tools for acquiring the information required to investigate the microbiome and extract data to develop high yield producing and resistant variety crops. This knowledge fills the fundamental gap between the theoretical concepts and the operational use of these advanced tools in crop microbiome studies. Here, we review (1) structure and composition of crop microbiome, (2) microbiome-mediated role associated with crops fitness, (3) Molecular and -omics techniques for exploration of crop microbiome, and (4) current approaches and future prospectives of crop microbiome and its exploitation for sustainable agriculture. Recent -omic approaches are influential tool for mapping, monitoring, modeling, and management of crops microbiome. Identification of crop microbiome, using system biology and rhizho-engineering, can help to develop future bioformulations for disease management, reclamation of stressed agro-ecosystems, and improved productivity of crops. Nano-system approaches combined with triggering molecules of crop microbiome can help in designing of nano-biofertilizers and nano-biopesticides. This combination has numerous merits over the traditional bioinoculants. They stimulate various defense mechanisms in plants facing stress conditions; provide bioavailability of nutrients in the soil, helps mitigate stress conditions; and enhance chances of crops establishment.

摘要

本综述旨在通过结合先进的分子技术和组学技术,深入了解微生物在作物微生物组中的相互作用及其作用,从而将这些信息转化为农业可持续发展的动力。人口增长、气候变化和过度的农业实践,要么影响了土壤的养分输入,要么导致了土壤的生物和理化退化,进而影响了农业生产力和农业生态系统。对粮食安全和作物生产的担忧促使人们重新关注基于微生物的农业实践。微生物无处不在(土壤、水和空气),它们与植物的紧密联系有助于实现可持续农业目标。在过去几十年里,寻找作物生产、土壤施肥、病害管理和植物生长促进方面的有益微生物,是生态友好型农业的迫切需求。作物微生物组为利用有益微生物和通过综合先进生物技术管理致病微生物开辟了新途径。作物微生物组有助于植物获取养分、生长、抵御植物病原体以及耐受非生物胁迫,如高温、干旱和盐度。尽管作物微生物组作为植物适应性的一个复杂组成部分具有新兴功能,但我们对微生物组功能如何受到众多因素影响的理解仍不全面,这些因素包括宿主基因型、气候条件、矿物质的移动、土壤成分、养分有效性、微生物之间的相互作用以及与其他外部微生物组的相互作用。然而,对于这种已培养和未培养的作物微生物组的结构、组成、动态和功能贡献的研究还很少。先进的生物技术方法是获取研究微生物组所需信息并提取数据以培育高产和抗性品种作物的有效工具。这些知识填补了作物微生物组研究中理论概念与这些先进工具实际应用之间存在的基本空白。在此,我们综述了:(1)作物微生物组的结构和组成;(2)微生物组介导的与作物适应性相关的作用;(3)探索作物微生物组的分子技术和组学技术;(4)作物微生物组的当前方法和未来前景及其在可持续农业中的应用。最近的组学方法是绘制、监测、建模和管理作物微生物组的有力工具。利用系统生物学和根际工程鉴定作物微生物组,有助于开发未来用于病害管理、恢复受胁迫农业生态系统以及提高作物生产力的生物制剂。纳米系统方法与作物微生物组的触发分子相结合,有助于设计纳米生物肥料和纳米生物农药。这种组合相对于传统生物接种剂具有许多优点。它们能刺激面临胁迫条件的植物的各种防御机制;提高土壤中养分的生物有效性,有助于缓解胁迫条件;并增加作物定植的机会。

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