砧木
化学
抗氧化剂
活性氧
生物化学
光合作用
氧化应激
嫁接
脂质过氧化
叶绿体
植物
有机酸
谷胱甘肽
下调和上调
细胞生物学
盐(化学)
脯氨酸
新陈代谢
生物合成
转录组
酶
盐度
苹果属植物
园艺
生物
谷胱甘肽合成酶
食品科学
作者
Zhiyu Liu,Chunmei Zhu,zhijun zhang,Dongliang Zhang,Anqi Xie,Z. Zhang,Wenting Zhai,Junli Sun,Baolong Zhao
标识
DOI:10.1016/j.indcrop.2026.122641
摘要
Saline–alkali stress inflicts more severe damage on grapevines compared to salt stress alone. Grafting onto stress-tolerant rootstocks represents a key strategy for improving crop resilience, making it essential to understand how such rootstocks modulate scion responses to these distinct stresses. However, the molecular mechanisms underlying their differential tolerance remain largely elusive. Here, we compared self-grafted (CS/CS) and hetero-grafted (CS/1103 P) Cabernet Sauvignon under salt and saline–alkali stress using morphophysiological and transcriptomic analyses. Saline–alkali stress led to more severe membrane lipid peroxidation, chloroplast ultrastructural damage, reactive oxygen species accumulation, and photosynthetic inhibition compared with salt stress alone. Rootstock 1103 P markedly enhanced stress tolerance in grafted plants, as evidenced by lower H 2 O 2 and MDA levels, higher antioxidant enzyme activities, and scion-specific upregulation of VvGAD1 , which promoted γ-aminobutyric acid (GABA) accumulation. Functional validation assays showed that VvGAD1 overexpression increased callus antioxidant capacity, stabilized ion homeostasis, enhanced organic acid metabolism, and elevated the expression of stress-responsive genes under both salt and saline–alkali stress. Exogenous GABA further induced endogenous GABA biosynthesis and mitigated stress injury. Collectively, these results indicate that VvGAD1 primarily confers salt stress tolerance by maintaining ion balance and strengthening antioxidant defenses, while also contributing to organic acid metabolism and pH homeostasis under saline–alkali conditions. These findings have important implications for the breeding of stress-resistant grape cultivars. • The rootstock 1103 P enhances scion tolerance by upregulating VvGAD1 expression. • The VvGAD1 gene promotes GABA accumulation to counteract multiple stresses. • VvGAD1 plays a dual role in GABA-mediated tolerance mechanisms.
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