Zhang Yi, Lyu Shanwu, Hu Zhifang, Yang Xuangang, Zhu Hongbo, Deng Shulin
Key Laboratory of South China Agricultural Plant Molecular Analysis and Genetic Improvement & Guangdong Provincial Key Laboratory of Applied Botany, South China Botanical Garden, Chinese Academy of Sciences, Guangzhou 510650, China.
College of Coastal Agricultural Sciences, Guangdong Ocean University, Zhanjiang, China.
Plant Sci. 2023 May;330:111645. doi: 10.1016/j.plantsci.2023.111645. Epub 2023 Feb 23.
Sumoylation is a crucial post-translation modification (PTM) that is the covalent attachment of SUMO molecules to the substrate catalyzed by enzyme cascade. Sumoylation is essential in almost every physiological process of plants, particularly in response to abiotic stress. However, little is known about sumoylation in sweet potato (Ipomoea batatas), the world's seventh most important food crop. In this study, 17 sweet potato SUMO system genes have been cloned and functionally characterized. Multiple sequence alignment and phylogenetic analysis showed sweet potato SUMO system proteins had conserved domains and activity sites. IbSUMOs, IbSAE1, and IbSCE1 were localized in the cytoplasm and nucleus. E3 SUMO ligases showed nuclear or punctate localization. In vitro sumoylation assay confirmed the catalytic activity of sweet potato SUMO system components. Heterologous expression of IbSIZ1 genes in Arabidopsis atsiz1 mutant rescued the defective germination and growth phenotype. IbSCE1a/b and IbSIZ1a/b/c were salt and drought responsive genes. Heterologous expression of IbSCE1a/b/c improved the drought tolerance of Arabidopsis thaliana, while IbSIZ1a/b/c significantly enhanced the salt and drought tolerance. Our findings define that the SUMO system in sweet potato shared with conserved function but also possessed specific characterization. The resources presented here would facilitate uncovering the significance of sumoylation in sweet potato.
SUMO化是一种关键的翻译后修饰(PTM),它是由酶级联催化将SUMO分子共价连接到底物上。SUMO化在植物的几乎每个生理过程中都至关重要,尤其是在应对非生物胁迫时。然而,对于世界第七大重要粮食作物甘薯(Ipomoea batatas)中的SUMO化了解甚少。在本研究中,已克隆并对17个甘薯SUMO系统基因进行了功能表征。多序列比对和系统发育分析表明,甘薯SUMO系统蛋白具有保守结构域和活性位点。IbSUMOs、IbSAE1和IbSCE1定位于细胞质和细胞核。E3 SUMO连接酶表现出核定位或点状定位。体外SUMO化试验证实了甘薯SUMO系统组分的催化活性。IbSIZ1基因在拟南芥atsiz1突变体中的异源表达挽救了有缺陷的萌发和生长表型。IbSCE1a/b和IbSIZ1a/b/c是盐和干旱响应基因。IbSCE1a/b/c的异源表达提高了拟南芥的耐旱性,而IbSIZ1a/b/c显著增强了盐和干旱耐受性。我们的研究结果表明,甘薯中的SUMO系统具有保守功能,但也具有特定特征。本文提供的资源将有助于揭示SUMO化在甘薯中的重要性。