SIZ1 SUMOylates 并稳定 WRI1,在高温胁迫下保护种子充实和脂肪酸的生物合成

Ruihua Huang, Mengrui Wen, Bojin Feng, Pingzhi Wu, Xiaoqing Zhong, Yifeng Yang, Minghui Liu, Hongqing Li, Chengwei Yang, Changlian Peng, Shengchun Zhang
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引用次数: 0

摘要

高温胁迫阻碍种子灌浆,降低种子品质和作物产量。然而,这一过程的分子机制尚不清楚。在这里,我们发现含有SAP和MIZ1结构域的LIGASE1 (SIZ1)是拟南芥(Arabidopsis thaliana)在长时间高温下种子灌浆的关键调节因子。SIZ1和WRI1在种子灌浆过程中共表达,过表达任一基因均能增强种子灌浆,促进高温胁迫下脂肪酸的生物合成。遗传和生化分析表明,SIZ1通过促进Lys-257和Lys-266位点的summoylation来稳定WRI1,从而抑制其与cullin3泛素E3连接酶接头蛋白BTB/POZMATH (BPM)的相互作用,阻止其泛素化和降解。这些SUMOylation位点的突变加速了wr1的降解,损害了它在高温胁迫下种子灌浆中的功能。此外,高温胁迫诱导了SIZ1的表达并降低了WRI1的水平,表明SIZ1介导的SUMOylation抵消了高温胁迫诱导的WRI1不稳定性。这些发现证实了SIZ1是高温胁迫下维持wr1稳定性和种子灌浆的关键因子,为解决农业生产中长期高温胁迫提供了宝贵的遗传资源和理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SIZ1 SUMOylates and stabilizes WRI1 to safeguard seed filling and fatty acid biosynthesis under high-temperature stress
High-temperature stress hinders seed filling, reducing seed quality and crop yield. However, the molecular mechanisms underlying this process remain unclear. Here, we identify SAP AND MIZ1 DOMAIN-CONTAINING LIGASE1 (SIZ1) as a key regulator of seed filling under prolonged high temperatures in Arabidopsis (Arabidopsis thaliana). SIZ1 and WRINKLED1 (WRI1) are co-expressed during seed filling, and overexpressing either gene enhances seed filling and promotes fatty acid biosynthesis under high-temperature stress. Genetic and biochemical analyses revealed that SIZ1 stabilizes WRI1 by promoting its SUMOylation at Lys-257 and Lys-266, thereby inhibiting its interaction with the CULLIN3-based ubiquitin E3 ligase adaptor protein BTB/POZMATH (BPM) and preventing its ubiquitination and degradation. Mutating these SUMOylation sites accelerates WRI1 degradation, impairing its function in seed filling under high-temperature stress. Furthermore, high-temperature stress induces SIZ1 expression and reduces WRI1 levels, suggesting that SIZ1-mediated SUMOylation counteracts high-temperature stress-induced WRI1 instability. These findings establish SIZ1 as a crucial factor maintaining WRI1 stability and seed filling under high-temperature stress, providing valuable genetic resources and a theoretical foundation for addressing prolonged high-temperature stress in agricultural production.
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