Drought stress tolerance in rice: a critical insight

IF 0.7 Q4 PLANT SCIENCES Plant Science Today Pub Date : 2023-11-05 DOI:10.14719/pst.2613
Debapriya Choudhury, Chandrama Mukherjee, Shinjan Dey, Sikha Dutta
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Abstract

Drought is currently a serious threat for farming especially in rice cultivation, due to its substantial water requirements throughout its lifecycle. Drought is one of the major environmental constraints disrupting the growth and yield of rice plants, affecting them at physiological, morphological, biochemical and molecular levels. Global climate change exacerbates this issue, leading to substantial economic losses. As rice is a major food crop worldwide, the demand for rice production is increasing in tandem with the expanding human population. Consequently, it has become imperative to utilize drought-prone areas for agriculture and develop drought-tolerant rice genotypes. In addition to conventional breeding methods, the application of multi-omics approaches proves most effective in meeting the need to enhance drought tolerance in rice plants. Protective mechanisms, such as morphological adaptation, physiological acclimatization, cellular adjustments and antioxidant defense, play pivotal roles in helping plants overcome drought stress. Plant-microbial interactions are important for plants to overcome drought-induced adversities. Furthermore, applications of conventional approaches, omics approaches and nanotechnology are very promising for generating climate smart agriculture. Our aim in this review is to focus on drought stress tolerance in rice including drought-tolerant rice genotypes, their adaptation mechanisms, the unveiling the genes, transcription factors, microRNAs (miRNA) involved, microbial assistance and exploring approaches to mitigate drought stress in rice plants. The present review might throw some light on understanding the mechanism of drought stress tolerance in rice, including its molecular crosstalk and biochemical dynamics, for future researchers.
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水稻抗旱性:一个关键的见解
干旱目前是农业特别是水稻种植的严重威胁,因为其整个生命周期都需要大量的水。干旱是影响水稻生长和产量的主要环境因素之一,在生理、形态、生化和分子水平上对水稻产生影响。全球气候变化加剧了这一问题,导致巨大的经济损失。由于大米是世界范围内的主要粮食作物,对大米生产的需求随着人口的增加而增加。因此,利用干旱易发地区发展农业和培育抗旱水稻基因型已成为当务之急。除了传统的育种方法外,多组学方法的应用在提高水稻抗旱性方面是最有效的。植物的形态适应、生理适应、细胞调节和抗氧化防御等保护机制在克服干旱胁迫中起着关键作用。植物与微生物的相互作用对植物克服干旱诱导的逆境非常重要。此外,传统方法、组学方法和纳米技术的应用对于产生气候智能型农业是非常有希望的。本文综述了水稻抗旱基因型及其适应机制,揭示了水稻抗旱基因型、转录因子、参与的microRNAs (miRNA)、微生物的辅助作用,并探讨了缓解水稻干旱胁迫的途径。本文的研究对水稻抗旱机制的分子串扰和生化动力学研究有一定的指导意义。
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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来源期刊
Plant Science Today
Plant Science Today PLANT SCIENCES-
CiteScore
1.50
自引率
11.10%
发文量
177
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