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豆类的耐旱性:生理学与微生物组的作用

Drought Tolerance of Legumes: Physiology and the Role of the Microbiome.

作者信息

Petrushin Ivan S, Vasilev Ilia A, Markova Yulia A

机构信息

Siberian Institute of Plant Physiology and Biochemistry, Siberian Branch of the Russian Academy of Sciences, Irkutsk 664033, Russia.

出版信息

Curr Issues Mol Biol. 2023 Jul 28;45(8):6311-6324. doi: 10.3390/cimb45080398.

Abstract

Water scarcity and global warming make drought-tolerant plant species more in-demand than ever. The most drastic damage exerted by drought occurs during the critical growth stages of seed development and reproduction. In the course of their evolution, plants form a variety of drought-tolerance mechanisms, including recruiting beneficial microorganisms. Legumes (one of the three largest groups of higher plants) have unique features and the potential to adapt to abiotic stress. The available literature discusses the genetic (breeding) and physiological aspects of drought tolerance in legumes, neglecting the role of the microbiome. Our review aims to fill this gap: starting with the physiological mechanisms of legume drought adaptation, we describe the symbiotic relationship of the plant host with the microbial community and its role in facing drought. We consider two types of studies related to microbiomes in low-water conditions: comparisons and microbiome engineering (modulation). The first type of research includes diversity shifts and the isolation of microorganisms from the various plant niches to which they belong. The second type focuses on manipulating the plant holobiont through microbiome engineering-a promising biotech strategy to improve the yield and stress-resistance of legumes.

摘要

水资源短缺和全球变暖使得耐旱植物物种的需求比以往任何时候都更加迫切。干旱造成的最严重损害发生在种子发育和繁殖的关键生长阶段。在进化过程中,植物形成了多种耐旱机制,包括招募有益微生物。豆科植物(三大高等植物类群之一)具有独特的特征和适应非生物胁迫的潜力。现有文献讨论了豆科植物耐旱性的遗传(育种)和生理方面,而忽略了微生物组的作用。我们的综述旨在填补这一空白:从豆科植物干旱适应的生理机制入手,我们描述了植物宿主与微生物群落的共生关系及其在应对干旱中的作用。我们考虑了与低水条件下微生物组相关的两类研究:比较研究和微生物组工程(调控)。第一类研究包括多样性变化以及从它们所属的各种植物生态位中分离微生物。第二类研究则侧重于通过微生物组工程来操纵植物全生物——这是一种有前景的生物技术策略,可提高豆科植物的产量和抗逆性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f3b/10453936/f6265b336335/cimb-45-00398-g001.jpg

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