Ibrahim Ehab A
Cross Pollinated Vegetable Crops Research Department, Horticulture Research Institute, Agricultural Research Center, 9 Cairo University St., Orman, Giza, Egypt.
Plant Sci. 2025 Aug;357:112533. doi: 10.1016/j.plantsci.2025.112533. Epub 2025 Apr 29.
Salinity stress is an important abiotic stress that negatively affects plant growth and yield as it causes oxidative damage, osmotic stress, and ionic balance disturbances. To overcome these problems, the naturally occurring disaccharide trehalose has received increasing attention due to its multiple roles in functions essential in enhancing plant tolerance to salt. This review examines the current information on how trehalose enhances salinity tolerance, highlighting its biochemical, physiological, and signaling functions. Trehalose scavenges reactive oxygen species and activates important antioxidant enzymes to stabilize cellular structures, maintain osmotic equilibrium, and reduce oxidative damage. Furthermore, it boosts photosynthetic efficiency by maintaining chloroplast integrity and stabilizing photosystems and metabolic enzymes under saline conditions. As climate change increases the severity of salt stress, incorporating trehalose into crop management practices has promising potential to advance sustainable agriculture and ensure global food security. Despite significant progress, the specific mechanisms of trehalose's action, especially its role in signaling pathways and its interactions with other metabolites, remain active research areas. This review explores the potential applications of trehalose in sustainable agriculture while providing a foundation for further research into its mechanisms in regulating plant growth, development, and stress resistance.
盐胁迫是一种重要的非生物胁迫,它会对植物生长和产量产生负面影响,因为它会导致氧化损伤、渗透胁迫和离子平衡紊乱。为了克服这些问题,天然存在的二糖海藻糖因其在增强植物耐盐性的重要功能中所起的多种作用而受到越来越多的关注。本文综述了目前关于海藻糖如何提高耐盐性的信息,重点介绍了其生化、生理和信号传导功能。海藻糖清除活性氧并激活重要的抗氧化酶,以稳定细胞结构、维持渗透平衡并减少氧化损伤。此外,它通过在盐胁迫条件下维持叶绿体完整性、稳定光合系统和代谢酶来提高光合效率。随着气候变化加剧盐胁迫的严重性,将海藻糖纳入作物管理实践对于推进可持续农业和确保全球粮食安全具有广阔的潜力。尽管取得了重大进展,但海藻糖作用的具体机制,尤其是其在信号通路中的作用以及与其他代谢物相互作用,仍然是活跃的研究领域。本文探讨了海藻糖在可持续农业中的潜在应用,同时为进一步研究其调节植物生长、发育和抗逆性的机制提供了基础。