脱落酸
渗透压
光合作用
光防护
转录组
渗透调节剂
生物化学
糖
抗氧化剂
化学
冷应激
类黄酮生物合成
氧化应激
渗透性休克
生物
植物生理学
氧化磷酸化
碳水化合物代谢
新陈代谢
代谢途径
代谢组学
植物
生物合成
冷敏
类黄酮
代谢组
食品科学
细胞生物学
活性氧
耐寒性
衰老
作者
Lei Liu,Mengni Feng,Jiaqi Li,Jinyi Wang,Rui Guo,Juqi Chai,Liang Si,Nan Sun,Changhong Guo
摘要
Combined saline-alkali and cold stresses severely constrain plant growth at middle and high latitudes. Plants have evolved cross-adaptation mechanisms wherein exposure to one stress enhances resistance to another. However, the specific mechanisms driving cross-adaptation between saline-alkali and cold stresses in alfalfa (Medicago sativa L.) remain to be elucidated. Here, we performed integrated transcriptomic and metabolomic analyses coupled with functional validation to elucidate these mechanisms. We found that saline-alkali pretreatment significantly enhanced the tolerance of alfalfa to subsequent cold stress. Compared to cold stress alone, cross-stress conditions increased osmolyte content and photosynthetic efficiency, while alleviating cellular oxidative damage. Integrated omics analyses revealed that cross-stress specifically activated flavonoid biosynthesis, carbohydrate metabolism and abscisic acid (ABA) biosynthesis and signaling pathways. This promoted the accumulation of endogenous ABA, flavonoids, and carbohydrates. Weighted gene co-expression network analysis identified MsNCED3 as a critical hub gene. Exogenous ABA improved photoprotection and sugar accumulation, and enhanced cold tolerance. MsNCED3 overexpression in alfalfa validated its pivotal role in cross-adaptation by elevating ABA levels and mitigating oxidative damage. In conclusion, we found that MsNCED3-mediated ABA accumulation, along with enhanced antioxidant and osmotic adjustment capabilities, serve as key mechanisms underlying the cross-adaptation of alfalfa to saline-alkali and cold stresses.
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