College of Plant Protection, Nanjing Agricultural University, Nanjing, China.
State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-products, Key Laboratory of Biotechnology in Plant Protection of MOA of China and Zhejiang Province, Institute of Plant Virology, Ningbo University, Ningbo, China.
Front Immunol. 2021 Jan 8;11:613957. doi: 10.3389/fimmu.2020.613957. eCollection 2020.
The Toll pathway plays an important role in defense against infection of various pathogenic microorganisms, including viruses. However, current understanding of Toll pathway was mainly restricted in mammal and some model insects such as and mosquitoes. Whether plant viruses can also activate the Toll signaling pathway in vector insects is still unknown. In this study, using rice stripe virus (RSV) and its insect vector (small brown planthopper, ) as a model, we found that the Toll pathway was activated upon RSV infection. In comparison of viruliferous and non-viruliferous planthoppers, we found that four Toll pathway core genes (, , , and ) were upregulated in viruliferous planthoppers. When the planthoppers infected with RSV, the expressions of and were rapidly upregulated at the early stage (1 and 3 days post-infection), whereas was upregulated at the late stage (9 days post-infection). Furthermore, induction of Toll pathway was initiated by interaction between a Toll receptor and RSV nucleocapsid protein (NP). Knockdown of increased the proliferation of RSV in vector insect, and the ds-treated insects exhibited higher mortality than that of ds-treated ones. Our results provide the first evidence that the Toll signaling pathway of an insect vector is potentially activated through the direct interaction between Toll receptor and a protein encoded by a plant virus, indicating that Toll immune pathway is an important strategy against plant virus infection in an insect vector.
Toll 通路在抵御包括病毒在内的各种病原微生物感染中发挥着重要作用。然而,目前对 Toll 通路的认识主要局限于哺乳动物和一些模式昆虫,如 和蚊子。植物病毒是否也能激活媒介昆虫中的 Toll 信号通路尚不清楚。在本研究中,以水稻条纹病毒(RSV)及其昆虫媒介(褐飞虱)为模型,我们发现 RSV 感染能激活 Toll 信号通路。与带毒和不带毒的褐飞虱相比,我们发现带毒褐飞虱中四个 Toll 通路核心基因( 、 、 、 )上调。当褐飞虱感染 RSV 时, 和 在前两个时期(感染后 1 天和 3 天)迅速上调,而 在晚期(感染后 9 天)上调。此外,Toll 通路的诱导是由 Toll 受体与 RSV 核衣壳蛋白(NP)的相互作用启动的。 基因的敲低增加了 RSV 在媒介昆虫中的增殖,ds 处理的昆虫死亡率高于 ds 处理的昆虫。我们的研究结果首次证明,昆虫媒介的 Toll 信号通路可能通过 Toll 受体与植物病毒编码的一种蛋白的直接相互作用而被激活,表明 Toll 免疫通路是昆虫媒介抵御植物病毒感染的重要策略。