
Xue WANG, Li JIANG, Yao GE, Yiping ZOU, Qingsheng CAI, Yan XIA, Laiqing LOU. Halotolerant plant growth-promoting bacteria Enterobacter sp. Av16 and Acinetobacter sp. Av23 enhance seed germination and seedling photosynthesis of Apocynum pictum under salt stress[J]. Journal of Zhejiang University Science B,in press.Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/jzus.B2500049 @article{title="Halotolerant plant growth-promoting bacteria Enterobacter sp. Av16 and Acinetobacter sp. Av23 enhance seed germination and seedling photosynthesis of Apocynum pictum under salt stress", %0 Journal Article TY - JOUR
耐盐植物促生菌Enterobacter sp. Av16和Acinetobacter sp. Av23减轻盐胁迫对白麻(Apocynum pictum)种子萌发和幼苗光合作用的抑制1南京农业大学生命科学学院, 中国南京, 210095 2中国科学院新疆生态与地理研究所荒漠与绿洲生态国家重点实验室, 中国乌鲁木齐, 830011 摘要:为提升药用、茶用和纤维用盐生植物白麻(Apocynum pictum Schrenk)在盐碱地的栽培潜力,探究了耐盐植物促生菌(PGPB)对其种子萌发和幼苗生长的调控作用。研究结果表明,接种Enterobacter sp. Av16和Acinetobacter sp. Av23均可显著提高白麻种子的发芽率,并缓解盐胁迫对其幼苗生长的抑制作用。在盐胁迫下,PGPB可增加白麻的叶宽、叶长和叶面积,并提高叶片中光合色素(如叶绿素a+b和类胡萝卜素)的含量。更重要的是,PGPB分别通过稳定光系统和优化电子传递过程来减轻盐胁迫造成的光合机构损伤,主要表现在PGPB增加叶绿体反应中心密度(RC/CSm)以及提高电子向光系统I的转移效率(δRo和ΦRo)。此外,在盐胁迫下,PGPB能改善叶绿素荧光特性和关键光合参数,如最大量子产率(ΦPo)、光合性能指数(PIabs和PItotal)、胞间CO2浓度、蒸腾速率和净光合速率(Pn)等;PGPB还可通过激活植物体内的抗氧化酶,如超氧化物歧化酶(SOD)和过氧化氢酶(CAT),来减少活性氧(ROS)在白麻幼苗中的积累,从而降低其受到的氧化胁迫。综上所述,PGPB可分别通过稳定光系统、提高气孔气体交换能力和减轻氧化损伤,增强白麻的种子萌发和光合能力。上述发现为利用PGPB提升白麻抗盐能力和盐碱地栽培适应性提供了重要理论依据。 关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
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