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Overexpression of S-Adenosyl-l-Methionine Synthetase 2 from Sugar Beet M14 Increased Arabidopsis Tolerance to Salt and Oxidative Stress

机译:甜菜M14的S-腺苷-1-蛋氨酸合成酶2的过表达提高了拟南芥对盐和氧化胁迫的耐受性

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摘要

The sugar beet monosomic addition line M14 is a unique germplasm that contains genetic materials from Beta vulgaris L. and Beta corolliflora Zoss, and shows tolerance to salt stress. Our study focuses on exploring the molecular mechanism of the salt tolerance of the sugar beet M14. In order to identify differentially expressed genes in M14 under salt stress, a subtractive cDNA library was generated by suppression subtractive hybridization (SSH). A total of 36 unique sequences were identified in the library and their putative functions were analyzed. One of the genes, S-adenosylmethionine synthetase (SAMS), is the key enzyme involved in the biosynthesis of S-adenosylmethionine (SAM), a precursor of polyamines. To determine the potential role of SAMS in salt tolerance, we isolated BvM14-SAMS2 from the salt-tolerant sugar beet M14. The expression of BvM14-SAMS2 in leaves and roots was greatly induced by salt stress. Overexpression of BvM14-SAMS2 in Arabidopsis resulted in enhanced salt and H2O2 tolerance. Furthermore, we obtained a knock-down T-DNA insertion mutant of AtSAMS3, which shares the highest homology with BvM14-SAMS2. Interestingly, the mutant atsam3 showed sensitivity to salt and H2O2 stress. We also found that the antioxidant system and polyamine metabolism play an important role in salt and H2O2 tolerance in the BvM14-SAMS2-overexpressed plants. To our knowledge, the function of the sugar beet SAMS has not been reported before. Our results have provided new insights into SAMS functions in sugar beet.
机译:甜菜单基因组附加系M14是独特的种质,其中包含甜菜和甜菜的遗传物质,并显示出对盐胁迫的耐受性。我们的研究集中在探索甜菜M14耐盐性的分子机制。为了鉴定在盐胁迫下M14中的差异表达基因,通过抑制性消减杂交(SSH)产生了消减cDNA文库。在该文库中总共鉴定出36个独特序列,并分析了其推定功能。基因之一是S-腺苷甲硫氨酸合成酶(SAMS),是参与多胺前体S-腺苷甲硫氨酸(SAM)生物合成的关键酶。为了确定SAMS在耐盐性中的潜在作用,我们从耐盐甜菜M14中分离了BvM14-SAMS2。盐胁迫极大地诱导了BvM14-SAMS2在叶和根中的表达。 BvM14-SAMS2在拟南芥中的过表达导致盐和H2O2耐受性增强。此外,我们获得了AtSAMS3的敲除T-DNA插入突变体,与BvM14-SAMS2具有最高的同源性。有趣的是,突变体atsam3对盐和H2O2胁迫表现出敏感性。我们还发现抗氧化剂系统和多胺代谢在BvM14-SAMS2过表达的植物中对盐和H2O2的耐受性中起重要作用。据我们所知,甜菜SAMS的功能以前尚未报道。我们的结果为甜菜中的SAMS功能提供了新的见解。

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