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甘蓝型油菜质膜 H+-ATPase 基因的鉴定与特性分析及 BnHA9 基因在耐盐性中的功能分析。

Identification and characterization of the plasma membrane H-ATPase genes in Brassica napus and functional analysis of BnHA9 in salt tolerance.

机构信息

Hybrid Rapeseed Research Center of Shaanxi Province, Yangling, 712100, Shaanxi, China.

College of Horticulture, Northwest A&F University, Yangling, 712100, China.

出版信息

Plant Physiol Biochem. 2024 May;210:108566. doi: 10.1016/j.plaphy.2024.108566. Epub 2024 Mar 26.

DOI:10.1016/j.plaphy.2024.108566
PMID:38554537
Abstract

As a primary proton pump, plasma membrane (PM) H-ATPase plays critical roles in regulating plant growth, development, and stress responses. PM H-ATPases have been well characterized in many plant species. However, no comprehensive study of PM H-ATPase genes has been performed in Brassica napus (rapeseed). In this study, we identified 32 PM H-ATPase genes (BnHAs) in the rapeseed genome, and they were distributed on 16 chromosomes. Phylogenetical and gene duplication analyses showed that the BnHA genes were classified into five subfamilies, and the segmental duplication mainly contributed to the expansion of the rapeseed PM H-ATPase gene family. The conserved domain and subcellular analyses indicated that BnHAs encoded canonical PM H-ATPase proteins with 14 highly conserved domains and localized on PM. Cis-acting regulatory element and expression pattern analyses indicated that the expression of BnHAs possessed tissue developmental stage specificity. The 25 upstream open reading frames with the canonical initiation codon ATG were predicted in the 5' untranslated regions of 11 BnHA genes and could be used as potential target sites for improving rapeseed traits. Protein interaction analysis showed that BnBRI1.c associated with BnHA2 and BnHA17, indicating that the conserved activity regulation mechanism of BnHAs may be present in rapeseed. BnHA9 overexpression in Arabidopsis enhanced the salt tolerance of the transgenic plants. Thus, our results lay a foundation for further research exploring the biological functions of PM H-ATPases in rapeseed.

摘要

作为一种主要的质子泵,质膜(PM)H-ATPase 在调节植物生长、发育和应激反应方面发挥着关键作用。PM H-ATPase 在许多植物物种中得到了很好的描述。然而,在甘蓝型油菜(油菜)中,尚未对 PM H-ATPase 基因进行全面研究。在本研究中,我们在油菜基因组中鉴定了 32 个 PM H-ATPase 基因(BnHAs),它们分布在 16 条染色体上。系统发育和基因复制分析表明,BnHA 基因分为五个亚家族,片段复制主要导致油菜 PM H-ATPase 基因家族的扩张。保守结构域和亚细胞分析表明,BnHAs 编码具有 14 个高度保守结构域的典型 PM H-ATPase 蛋白,并定位于 PM 上。顺式作用调控元件和表达模式分析表明,BnHAs 的表达具有组织发育阶段特异性。在 11 个 BnHA 基因的 5'非翻译区预测了 25 个具有典型起始密码子 ATG 的上游开放阅读框,可作为改良油菜性状的潜在靶标。蛋白相互作用分析表明,BnBRI1.c 与 BnHA2 和 BnHA17 相关,表明油菜中 BnHAs 的保守活性调节机制可能存在。在拟南芥中过表达 BnHA9 增强了转基因植物的耐盐性。因此,我们的研究结果为进一步研究 PM H-ATPase 在油菜中的生物学功能奠定了基础。

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