Cao Shulin, Zhang Shijie, Hao Chaofeng, Liu Huiquan, Xu Jin-Rong, Jin Qiaojun
State Key Laboratory of Crop Stress Biology for Arid Areas, College of Plant Protection, Northwest A&F University, Yangling, Shaanxi, China.
Dept. of Botany and Plant Pathology, Purdue University, West Lafayette, Indiana, USA.
Sci Rep. 2016 Mar 2;6:22333. doi: 10.1038/srep22333.
Fusarium graminearum is an important pathogen of wheat and barley. In addition to severe yield losses, infested grains are often contaminated with harmful mycotoxins. In this study, we characterized the functions of FgSSN3 kinase gene in different developmental and infection processes and gene regulation in F. graminearum. The FgSSN3 deletion mutant had a nutrient-dependent growth defects and abnormal conidium morphology. It was significantly reduced in DON production, TRI gene expression, and virulence. Deletion of FgSSN3 also resulted in up-regulation of HTF1 and PCS1 expression in juvenile cultures, and repression of TRI genes in DON-producing cultures. In addition, Fgssn3 was female sterile and defective in hypopodium formation and infectious growth. RNA-seq analysis showed that FgSsn3 is involved in the transcriptional regulation of a wide variety genes acting as either a repressor or activator. FgSsn3 physically interacted with C-type cyclin Cid1 and the cid1 mutant had similar phenotypes with Fgssn3, indicating that FgSsn3 and Cid1 form the CDK-cyclin pair as a component of the mediator complex in F. graminearum. Taken together, our results indicate that FgSSN3 is important for secondary metabolism, sexual reproduction, and plant infection, as a subunit of mediator complex contributing to transcriptional regulation of diverse genes.
禾谷镰刀菌是小麦和大麦的一种重要病原体。除了造成严重的产量损失外,受侵染的谷物还常常被有害的霉菌毒素污染。在本研究中,我们对禾谷镰刀菌中FgSSN3激酶基因在不同发育和感染过程中的功能以及基因调控进行了表征。FgSSN3缺失突变体具有营养依赖性生长缺陷和分生孢子形态异常。其脱氧雪腐镰刀菌烯醇(DON)产量、TRI基因表达和毒力均显著降低。FgSSN3的缺失还导致幼龄培养物中HTF1和PCS1表达上调,以及产DON培养物中TRI基因的抑制。此外,Fgssn3雌性不育,在附着胞形成和侵染性生长方面存在缺陷。RNA测序分析表明,FgSsn3作为阻遏物或激活剂参与了多种基因的转录调控。FgSsn3与C型细胞周期蛋白Cid1发生物理相互作用,且cid1突变体与Fgssn3具有相似的表型,这表明FgSsn3和Cid1作为禾谷镰刀菌中介体复合物的一个组成部分形成了CDK-细胞周期蛋白对。综上所述,我们的结果表明,FgSSN3作为中介体复合物的一个亚基,对次生代谢、有性生殖和植物感染很重要,有助于多种基因的转录调控。