Halophyte Nitraria billardieri CIPK25 promotes photosynthesis in Arabidopsis under salt stress

盐生植物 拟南芥 光合作用 生物 非生物胁迫 转录组 植物 细胞生物学 生物化学 基因 基因表达 盐度 突变体 生态学
作者
Lu Lu,Xinru Wu,Yao Tang,Liming Zhu,Zhaodong Hao,Jingbo Zhang,Xinle Li,Jisen Shi,Jinhui Chen,Tielong Cheng
出处
期刊:Frontiers in Plant Science [Frontiers Media SA]
卷期号:13 被引量:4
标识
DOI:10.3389/fpls.2022.1052463
摘要

The calcineurin B-like (CBL)-interacting protein kinases (CIPKs), a type of plant-specific genes in the calcium signaling pathway, function in response to adverse environments. However, few halophyte derived CIPKs have been studied for their role in plant physiological and developmental adaptation during abiotic stresses, which inhibits the potential application of these genes to improve environmental adaptability of glycophytes. In this study, we constructed Nitraria billardieri CIPK25 overexpressing Arabidopsis and analyzed the seedling development under salt treatment. Our results show that Arabidopsis with NbCIPK25 expression exhibits more vigorous growth than wild type plants under salt condition. To gain insight into the molecular mechanisms underlying salt tolerance, we profiled the transcriptome of WT and transgenic plants via RNA-seq. GO and KEGG analyses revealed that upregulated genes in NbCIPK25 overexpressing seedlings under salt stress are enriched in photosynthesis related terms; Calvin-cycle genes including glyceraldehyde-3-phosphate dehydrogenases (GAPDHs) are significantly upregulated in transgenic plants, which is consistent with a decreased level of NADPH (GAPDH substrate) and increased level of NADP + . Accordingly, NbCIPK25 overexpressing plants exhibited more efficient photosynthesis; soluble sugar and proteins, as photosynthesis products, showed a higher accumulation in transgenic plants. These results provide molecular insight into how NbCIPK25 promotes the expression of genes involved in photosynthesis, thereby maintaining plant growth under salt stress. Our finding supports the potential application of halophyte-derived NbCIPK25 in genetic modification for better salt adaptation.
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