盐生植物
拟南芥
流出
盐度
酵母
渗透调节剂
生物
植物
转基因作物
转基因
生物化学
细胞生物学
基因
化学
脯氨酸
突变体
生态学
氨基酸
作者
Zhilei Huang,Lirong Yao,Baochun Li,Xiaole Ma,Erjing Si,Ke Yang,Hong Zhang,Yaxiong Meng,Juncheng Wang,H. H. Wang
摘要
Abstract Halophyte Halogeton glomeratus mostly grows in saline desert areas in arid and semi‐arid regions and is able to adapt to adverse conditions such as salinity and drought. Earlier transcriptomic studies revealed activation of the HgS2 gene in the leaf of H. glomeratus seedlings when exposed to saline conditions. To identify the properties of HgS2 in H. glomeratus , we used yeast transformation and overexpression in Arabidopsis . Yeast cells genetically transformed with HgS2 exhibited K + uptake and Na + efflux compared with control (empty vector). Stable overexpression of HgS2 in Arabidopsis improved its resistance to salt stress and led to a notable rise in seed germination in salinity conditions compared to the wild type (WT). Transgenic Arabidopsis regulated ion homeostasis in plant cells by increasing Na + absorption and decreasing K + efflux in leaves, while reducing Na + absorption and K + efflux in roots. In addition, overexpression of HgS2 altered transcription levels of stress response genes and regulated different metabolic pathways in roots and leaves of Arabidopsis . These results offer new insights into the role of HgS2 in plants' salt tolerance.
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