Zhejiang Academy of Agricultural Sciences, Hangzhou, Zhejiang Province, China.
Department of Biological Sciences, Texas Tech University, Lubbock, Texas, United States of America.
PLoS One. 2018 Aug 9;13(8):e0201716. doi: 10.1371/journal.pone.0201716. eCollection 2018.
Sumoylation is one of the post translational modifications, which affects cellular processes in plants through conjugation of small ubiquitin like modifier (SUMO) to target substrate proteins. Response to various abiotic environmental stresses is one of the major cellular functions regulated by SUMO conjugation. SIZ1 is a SUMO E3 ligase, facilitating a vital step in the sumoylation pathway. In this report, it is demonstrated that over-expression of the rice gene OsSIZ1 in Arabidopsis leads to increased tolerance to multiple abiotic stresses. For example, OsSIZ1-overexpressing plants exhibited enhanced tolerance to salt, drought, and heat stresses, and generated greater seed yields under a variety of stress conditions. Furthermore, OsSIZ1-overexpressing plants were able to exclude sodium ions more efficiently when grown in saline soils and accumulate higher potassium ions as compared to wild-type plants. Further analysis revealed that OsSIZ1-overexpressing plants expressed higher transcript levels of P5CS, a gene involved in the biosynthesis of proline, under both salt and drought stress conditions. Therefore, proline here is acting as an osmoprotectant to alleviate damages caused by drought and salt stresses. These results demonstrate that the rice gene OsSIZ1 has a great potential to be used for improving crop's tolerance to several abiotic stresses.
SUMO 化是一种翻译后修饰,它通过将小泛素样修饰物 (SUMO) 连接到靶标底物蛋白上来影响植物细胞的过程。对各种非生物环境胁迫的反应是 SUMO 连接调节的主要细胞功能之一。SIZ1 是 SUMO E3 连接酶,促进 SUMO 化途径中的一个重要步骤。在本报告中,证明了在拟南芥中过表达水稻基因 OsSIZ1 导致对多种非生物胁迫的耐受性增加。例如,OsSIZ1 过表达植物表现出对盐、干旱和热胁迫的耐受性增强,并在各种胁迫条件下产生更高的种子产量。此外,与野生型植物相比,在盐渍土壤中生长时,OsSIZ1 过表达植物能够更有效地排除钠离子并积累更高水平的钾离子。进一步的分析表明,在盐和干旱胁迫条件下,OsSIZ1 过表达植物表达更高水平的 P5CS 基因,该基因参与脯氨酸的生物合成。因此,脯氨酸在这里作为一种渗透保护剂来减轻干旱和盐胁迫造成的损害。这些结果表明,水稻基因 OsSIZ1 具有很大的潜力可用于提高作物对几种非生物胁迫的耐受性。