Hossain Mohammad Mobarak, Ahmed Sharif, Alam Mohammad Saiful, Hossain Akbar
On-Farm Research Division, Bangaldesh Wheat and Maize Research Institute, Nashipur, Dinajpur, 5200, Bangladesh.
International Rice Research Institute Bangladesh Office, Banani, Dhaka, 1213, Bangladesh.
Heliyon. 2024 Dec 7;10(24):e41072. doi: 10.1016/j.heliyon.2024.e41072. eCollection 2024 Dec 30.
Heat shock, a transient exposure to high temperatures, is a substantial hazard to rice ( L.) production and sustainability. The objective of this review paper is to summarize the impact of heat shock on rice and explore approaches to mitigate its adverse effects to achieve sustainable production. Rice is a staple food for billions of people globally and is extremely sensitive to heat shock. Higher temperatures disturb various physiological and biochemical processes, resulting in decreased growth, development, and ultimately lower grain yield. Heat shock negatively affects important agronomic traits, such as panicle differentiation, pollen viability, fertilization, grain filling, and, ultimately, grain quality. To manage heat shock and sustain rice production, several strategies have been explored, such as modifications to sowing schedules, the substitution of heat-tolerant cultivars for sensitive genotypes, and the use of growth regulators. To improve rice under heat shock, various approaches could be taken: (1) cultivating cultivars that flower early in the morning by adjusting sowing/planting times, modified irrigation, and fertilization; (2) inducing acclimation via growth regulators and organic stimulants and chemicals; (3) breeding genetically resistant cultivars through the integration of appropriate genes; and (4) genetic modification techniques for heat-shock tolerance. Overall, effectively managing heat-shock stress in rice requires a comprehensive strategy that includes developing and using heat shock-tolerant cultivars, adopting suitable cultural practices, utilizing external substances, and applying biotechnological tools. Implementing these strategies collectively will help achieve sustainable rice production in the face of increasing heat-shock conditions.
热激,即短暂暴露于高温环境,是水稻生产及可持续性面临的重大危害。本文综述的目的是总结热激对水稻的影响,并探索减轻其不利影响以实现可持续生产的方法。水稻是全球数十亿人的主食,对热激极为敏感。较高温度会干扰各种生理和生化过程,导致生长、发育减缓,最终降低谷物产量。热激对重要农艺性状产生负面影响,如穗分化、花粉活力、受精、灌浆,最终影响谷物品质。为应对热激并维持水稻生产,人们探索了多种策略,如调整播种时间表、用耐热品种替代敏感基因型以及使用生长调节剂。为在热激条件下改良水稻,可采取多种方法:(1)通过调整播种/种植时间、改良灌溉和施肥来培育清晨开花的品种;(2)通过生长调节剂、有机刺激剂和化学物质诱导驯化;(3)通过整合合适基因培育遗传抗性品种;(4)采用热激耐受的基因编辑技术。总体而言,有效管理水稻热激胁迫需要综合策略,包括培育和使用耐热品种、采用合适的栽培措施、利用外部物质以及应用生物技术工具。面对日益增加的热激条件,共同实施这些策略将有助于实现水稻的可持续生产。