Ruan Mingxiu, Zhao Heng, Wen Yujing, Chen Hao, He Feng, Hou Xingbo, Song Xiaoqin, Jiang Haiyang, Ruan Yong-Ling, Wu Leiming
The National Engineering Laboratory of Crop Resistance Breeding, School of Life Sciences, Anhui Agricultural University, Hefei, 230036, China.
State Key Laboratory of Crop Stress Biology in Arid Areas and College of Horticulture, Northwest A&F University, Yangling, 712100, China.
Stress Biol. 2024 Apr 26;4(1):24. doi: 10.1007/s44154-024-00165-x.
As one of the most important food and feed crops worldwide, maize suffers much more tremendous damages under heat stress compared to other plants, which seriously inhibits plant growth and reduces productivity. To mitigate the heat-induced damages and adapt to high temperature environment, plants have evolved a series of molecular mechanisms to sense, respond and adapt high temperatures and heat stress. In this review, we summarized recent advances in molecular regulations underlying high temperature sensing, heat stress response and memory in maize, especially focusing on several important pathways and signals in high temperature sensing, and the complex transcriptional regulation of ZmHSFs (Heat Shock Factors) in heat stress response. In addition, we highlighted interactions between ZmHSFs and several epigenetic regulation factors in coordinately regulating heat stress response and memory. Finally, we laid out strategies to systematically elucidate the regulatory network of maize heat stress response, and discussed approaches for breeding future heat-tolerance maize.
作为全球最重要的粮食和饲料作物之一,与其他植物相比,玉米在热胁迫下遭受的损害要大得多,这严重抑制了植物生长并降低了生产力。为了减轻热诱导的损害并适应高温环境,植物进化出了一系列分子机制来感知、响应和适应高温及热胁迫。在本综述中,我们总结了玉米高温感知、热胁迫响应和记忆的分子调控方面的最新进展,特别关注高温感知中的几个重要途径和信号,以及热胁迫响应中ZmHSFs(热激因子)的复杂转录调控。此外,我们强调了ZmHSFs与几种表观遗传调控因子在协同调节热胁迫响应和记忆中的相互作用。最后,我们提出了系统阐明玉米热胁迫响应调控网络的策略,并讨论了培育未来耐热玉米的方法。