Institute of Agriculture & Life Science, Gyeongsang National University, Jinju 52828, Korea.
Plant Molecular Biology and Biotechnology Research Center, Gyeongsang National University, Jinju 52828, Korea.
Int J Mol Sci. 2021 May 31;22(11):5957. doi: 10.3390/ijms22115957.
Although recent studies suggest that the plant cytoskeleton is associated with plant stress responses, such as salt, cold, and drought, the molecular mechanism underlying microtubule function in plant salt stress response remains unclear. We performed a comparative proteomic analysis between control suspension-cultured cells (A0) and salt-adapted cells (A120) established from root callus to investigate plant adaptation mechanisms to long-term salt stress. We identified 50 differentially expressed proteins (45 up- and 5 down-regulated proteins) in A120 cells compared with A0 cells. Gene ontology enrichment and protein network analyses indicated that differentially expressed proteins in A120 cells were strongly associated with cell structure-associated clusters, including cytoskeleton and cell wall biogenesis. Gene expression analysis revealed that expressions of cytoskeleton-related genes, such as , , , , , and , and a cell wall biogenesis-related gene, , were induced in salt-adapted A120 cells. Moreover, the loss-of-function mutant of gene, , showed a hypersensitive phenotype to salt stress. Consistent overexpression of gene in rice transgenic plants enhanced tolerance to salt stress. Our results suggest that microtubules play crucial roles in plant adaptation and tolerance to salt stress. The modulation of microtubule-related gene expression can be an effective strategy for developing salt-tolerant crops.
尽管最近的研究表明植物细胞骨架与植物应激反应(如盐、冷和干旱)有关,但微管在植物盐胁迫反应中的功能的分子机制尚不清楚。我们对来自根愈伤组织的对照悬浮培养细胞(A0)和盐适应细胞(A120)进行了比较蛋白质组学分析,以研究植物适应长期盐胁迫的机制。与 A0 细胞相比,我们在 A120 细胞中鉴定到 50 个差异表达蛋白(45 个上调和 5 个下调蛋白)。基因本体富集和蛋白质网络分析表明,A120 细胞中差异表达的蛋白与细胞结构相关簇(包括细胞骨架和细胞壁生物发生)密切相关。基因表达分析显示,在盐适应的 A120 细胞中,细胞骨架相关基因如、、、、、和、以及细胞壁生物发生相关基因、的表达被诱导。此外, 基因的功能丧失突变体 ,表现出对盐胁迫的敏感表型。在水稻转基因植物中过表达 基因可增强对盐胁迫的耐受性。我们的研究结果表明,微管在植物适应和耐受盐胁迫中发挥着重要作用。调节微管相关基因的表达可能是开发耐盐作物的有效策略。