Advances and opportunities in unraveling cold-tolerance mechanisms in the world's primary staple food crops.

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY
Plant Genome Pub Date : 2024-03-01 Epub Date: 2023-11-13 DOI:10.1002/tpg2.20402
Sofora Jan, Sachin Rustgi, Rutwik Barmukh, Asif B Shikari, Brenton Leske, Amanuel Bekuma, Darshan Sharma, Wujun Ma, Upendra Kumar, Uttam Kumar, Abhishek Bohra, Rajeev K Varshney, Reyazul Rouf Mir
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Abstract

Temperatures below or above optimal growth conditions are among the major stressors affecting productivity, end-use quality, and distribution of key staple crops including rice (Oryza sativa), wheat (Triticum aestivum), and maize (Zea mays L.). Among temperature stresses, cold stress induces cellular changes that cause oxidative stress and slowdown metabolism, limit growth, and ultimately reduce crop productivity. Perception of cold stress by plant cells leads to the activation of cold-responsive transcription factors and downstream genes, which ultimately impart cold tolerance. The response triggered in crops to cold stress includes gene expression/suppression, the accumulation of sugars upon chilling, and signaling molecules, among others. Much of the information on the effects of cold stress on perception, signal transduction, gene expression, and plant metabolism are available in the model plant Arabidopsis but somewhat lacking in major crops. Hence, a complete understanding of the molecular mechanisms by which staple crops respond to cold stress remain largely unknown. Here, we make an effort to elaborate on the molecular mechanisms employed in response to low-temperature stress. We summarize the effects of cold stress on the growth and development of these crops, the mechanism of cold perception, and the role of various sensors and transducers in cold signaling. We discuss the progress in cold tolerance research at the genome, transcriptome, proteome, and metabolome levels and highlight how these findings provide opportunities for designing cold-tolerant crops for the future.

揭示世界主要粮食作物耐寒机制的进展和机遇。
温度低于或高于最佳生长条件是影响水稻(Oryza sativa)、小麦(Triticum aestivum)和玉米(Zea mays L.)等主要主粮作物生产力、最终利用质量和分布的主要胁迫因素之一。在温度胁迫中,冷胁迫诱导细胞变化,引起氧化应激,减缓代谢,限制生长,最终降低作物产量。植物细胞对冷胁迫的感知导致冷响应转录因子和下游基因的激活,最终赋予植物耐寒性。农作物对寒冷胁迫的反应包括基因表达/抑制、寒冷时糖的积累和信号分子等。许多关于冷胁迫对感知、信号转导、基因表达和植物代谢影响的信息已经在模式植物拟南芥中获得,但在主要作物中有所缺乏。因此,对主要作物对冷胁迫反应的分子机制的完整理解在很大程度上仍然是未知的。在这里,我们将努力阐述低温胁迫响应的分子机制。本文综述了冷胁迫对这些作物生长发育的影响、冷感知的机制以及各种传感器和传感器在冷信号传导中的作用。我们在基因组、转录组、蛋白质组和代谢组水平上讨论了耐寒性研究的进展,并强调了这些发现如何为未来设计耐寒作物提供机会。
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 Genome
Plant Genome PLANT SCIENCES-GENETICS & HEREDITY
CiteScore
6.00
自引率
4.80%
发文量
93
审稿时长
>12 weeks
期刊介绍: The Plant Genome publishes original research investigating all aspects of plant genomics. Technical breakthroughs reporting improvements in the efficiency and speed of acquiring and interpreting plant genomics data are welcome. The editorial board gives preference to novel reports that use innovative genomic applications that advance our understanding of plant biology that may have applications to crop improvement. The journal also publishes invited review articles and perspectives that offer insight and commentary on recent advances in genomics and their potential for agronomic improvement.
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