干旱胁迫下植物与微生物相互作用的分子洞察力和基于 omics 的理解

Aditya Sharma, Prassan Choudhary, Hillol Chakdar, Pratyoosh Shukla
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摘要

不利环境条件的有害影响始终具有挑战性,仍然是全球植物发展和生产的主要问题。植物通过生理、生化和形态适应以及获得有益微生物的相互支持来应对这些限制。由于植物的许多应激反应性状都受到微生物活动的影响,植物与微生物之间形成了复杂的相互作用,以应对不利的环境条件。根瘤、内生或附生微生物产生的大量生物活性代谢物可直接或间接改变根系结构、叶片产量和防御反应。虽然植物与微生物之间的相互作用已被证明能提高植物的养分吸收能力和抗逆性,但其基本机制尚未完全明了。由基因组学、转录组学和代谢组学支持的 "多组学 "应用对于研究和了解干旱胁迫条件下植物与微生物相互作用的生化、生理和分子方面非常有用。本综述探讨了各种微生物介导的植物干旱胁迫恢复机制。此外,还讨论了植物对干旱胁迫的适应性,并深入探讨了提高干旱胁迫适应性的最新分子技术和方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Molecular insights and omics-based understanding of plant–microbe interactions under drought stress

The detrimental effects of adverse environmental conditions are always challenging and remain a major concern for plant development and production worldwide. Plants deal with such constraints by physiological, biochemical, and morphological adaptations as well as acquiring mutual support of beneficial microorganisms. As many stress-responsive traits of plants are influenced by microbial activities, plants have developed a sophisticated interaction with microbes to cope with adverse environmental conditions. The production of numerous bioactive metabolites by rhizospheric, endo-, or epiphytic microorganisms can directly or indirectly alter the root system architecture, foliage production, and defense responses. Although plant–microbe interactions have been shown to improve nutrient uptake and stress resilience in plants, the underlying mechanisms are not fully understood. “Multi-omics” application supported by genomics, transcriptomics, and metabolomics has been quite useful to investigate and understand the biochemical, physiological, and molecular aspects of plant–microbe interactions under drought stress conditions. The present review explores various microbe-mediated mechanisms for drought stress resilience in plants. In addition, plant adaptation to drought stress is discussed, and insights into the latest molecular techniques and approaches available to improve drought-stress resilience are provided.

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