Wang Shuangchao, Zhang Jingze, Nzabanita Clement, Zhang Mingming, Nie Jianhua, Guo Lihua
State Key Laboratory of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, China.
Functional and Evolutionary Entomology, Gembloux Agro-Bio Tech, University of Liège, 5030 Gembloux, Belgium.
J Fungi (Basel). 2022 Nov 7;8(11):1171. doi: 10.3390/jof8111171.
Fungal viruses are widespread in fungi infecting plants, insects and animals. High-throughput sequencing has rapidly led to the discovery of fungal viruses. However, the interactive exploration between fungi and viruses is relatively limited. RNA silencing is the fundamental antivirus pathway in fungi. small RNA (sRNA) pattern was regulated by Fusarium graminearum hypovirus 1 (FgHV1) infection, indicating the activation of RNA silencing in virus defense. In this study, we focused on the function of an uncharacterized protein sized at 20 kD (p20) encoded by FgHV1. In the agro-infiltration assay, p20 was identified as a novel fungal RNA silencing suppressor. p20 can block systemic RNA silencing signals besides local RNA silencing suppression. We further elucidated the RNA silencing suppression mechanism of p20. The single-strand sRNA, instead of double-strand sRNA, can be incorporated by p20 in electrophoretic mobility shift assay. p20 binds sRNA originating from virus and non-virus sources in a non-sequence-specific manner. In addition, The 22 and 23-nt sRNA abundance and pathways related to RNA processing and redox regulation were regulated by p20. Our study revealed the first fungal virus-encoded RNA silencing suppressor with sRNA binding capability.
真菌病毒广泛存在于感染植物、昆虫和动物的真菌中。高通量测序迅速推动了真菌病毒的发现。然而,真菌与病毒之间的相互作用探索相对有限。RNA沉默是真菌中基本的抗病毒途径。禾谷镰刀菌低毒病毒1(FgHV1)感染可调节小RNA(sRNA)模式,表明病毒防御中RNA沉默被激活。在本研究中,我们聚焦于FgHV1编码的一种大小为20 kD的未知蛋白(p20)的功能。在农杆菌浸润试验中,p20被鉴定为一种新型的真菌RNA沉默抑制因子。除了抑制局部RNA沉默外,p20还能阻断系统性RNA沉默信号。我们进一步阐明了p20的RNA沉默抑制机制。在电泳迁移率变动分析中,单链sRNA而非双链sRNA可被p20结合。p20以非序列特异性方式结合源自病毒和非病毒来源的sRNA。此外,p20可调节22和23 nt的sRNA丰度以及与RNA加工和氧化还原调节相关的途径。我们的研究揭示了首个具有sRNA结合能力的真菌病毒编码的RNA沉默抑制因子。