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Genome-Wide Identification and Analysis of P-Type Plasma Membrane H+-ATPase Sub-Gene Family in Sunflower and the Role of HHA4 and HHA11 in the Development of Salt Stress Resistance

机译:向日葵P型质膜H + -ATPase亚基因家族的全基因组鉴定和分析以及HHA4和HHA11在抗盐胁迫中的作用

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摘要

The P-type plasma membrane (PM) H -ATPase plays a major role during the growth and development of a plant. It is also involved in plant resistance to a variety of biotic and abiotic factors, including salt stress. The PM H -ATPase gene family has been well characterized in and other crop plants such as rice, cucumber, and potato; however, the same cannot be said in sunflower ( ). In this study, a total of thirteen PM H -ATPase genes were screened from the recently released sunflower genome database with a comprehensive genome-wide analysis. According to a systematic phylogenetic classification with a previously reported species, the sunflower PM H -ATPase genes ( ) were divided into four sub-clusters (I, II, IV, and V). In addition, systematic bioinformatics analyses such as gene structure analysis, chromosome location analysis, subcellular localization predication, conserved motifs, and -acting elements of promoter identification were also done. Semi-quantitative PCR analysis data of in different sunflower tissues revealed the specificity of gene spatiotemporal expression and sub-cluster grouping. Those belonging to sub-cluster I and II exhibited wide expression in almost all of the tissues studied while sub-cluster IV and V seldom showed expression. In addition, the expression of , and was shown to be induced by salt stress. The transgenic plants overexpressing and showed higher salinity tolerance compared with wild-type plants. Further analysis showed that the Na content of transgenic plants decreased under salt stress, which indicates that PM H ATPase participates in the physiological process of Na efflux, resulting in salt resistance of the plants. This study is the first to identify and analyze the sunflower PM H ATPase gene family. It does not only lay foundation for future research but also demonstrates the role played by in salt stress tolerance.
机译:在植物的生长和发育过程中,P型质膜(PM)H -ATPase起着重要作用。它也参与植物对多种生物和非生物因素的抗性,包括盐胁迫。 PM H -ATPase基因家族已在水稻,黄瓜和马铃薯等农作物中得到了很好的鉴定。但是,在向日葵()中不能说相同。在这项研究中,从最近发布的向日葵基因组数据库进行了全面的全基因组分析,筛选出总共13种PM H -ATPase基因。根据以前报道的物种的系统系统发育分类,向日葵PM H -ATPase基因()分为四个亚类(I,II,IV和V)。另外,还进行了系统的生物信息学分析,例如基因结构分析,染色体位置分析,亚细胞定位预测,保守基序和启动子识别的作用元件。不同向日葵组织的半定量PCR分析数据揭示了基因时空表达和亚群分组的特异性。属于亚集群I和II的那些在几乎所有研究的组织中均表现出广泛的表达,而亚集群IV和V很少表现出表达。此外,和的表达被证明是由盐胁迫诱导的。与野生型植物相比,转基因植物过表达并显示出更高的耐盐性。进一步的分析表明,盐胁迫下转基因植物的Na含量降低,表明PM H ATPase参与了Na的外流生理过程,导致植物的耐盐性。这项研究是第一个鉴定和分析向日葵PM H ATPase基因家族的研究。它不仅为未来的研究奠定了基础,而且证明了盐分在耐盐性中的作用。

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