CAS Key Laboratory of Special Pathogens, Wuhan Institute of Virology, Center for Biosafety Mega-Science, Chinese Academy of Sciences, Wuhan, People's Republic of China.
University of Chinese Academy of Sciences, Beijing, People's Republic of China.
J Virol. 2022 Jul 27;96(14):e0080622. doi: 10.1128/jvi.00806-22. Epub 2022 Jul 7.
Baculoviruses initiate oral infection in the highly alkaline midgut of insects via a group of envelope proteins called infectivity factors (PIFs). To date, no high-resolution structural information has been reported for any PIF. Here, we present the crystal structure of the PIF5 ectodomain (PIF5e) from Autographa californica multiple nucleopolyhedrovirus (AcMNPV) at a 2.2-Å resolution. It revealed an open cavity between the N-terminal E1 domain and the C-terminal E2 domain and a cysteine-rich region with three pairs of disulfide bonds in the E2 domain. Multiple conserved intramolecular interactions within PIF5 are essential for maintaining its tertiary structure. Two conserved arginines (Arg8 and Arg74) play critical roles in E1-E2 interactions, and mutagenesis analysis supported their crucial role in oral infection. Importantly, the reduction in the oral infectivity of the Arg8, Arg74, or cysteine mutant viruses was related to the proteolytic cleavage of PIF5 by the endogenous protease embedded in occlusion bodies during alkaline treatment. This suggested that the structural stability of PIF5 under physiological conditions in the insect midgut is critical for baculoviral oral infectivity. infection mediated by PIFs is the highly complex mechanism by which baculoviruses initiate infection in insects. Previous studies revealed that multiple PIF proteins form a large PIF complex on the envelope of virions, while PIF5 functions independently of the PIF complex. Here, we report the crystal structure of AcMNPV PIF5e, which, to our knowledge, is the first atomic structure reported for a PIF protein. The structure revealed the precise locations of three previously proposed disulfide bonds and other conserved intramolecular interactions, which are important for the structural stability of PIF5 and are also essential for oral infectivity. These findings advance our understanding of the molecular mechanism of baculovirus oral infection under alkaline conditions.
杆状病毒通过一组称为感染因子(PIFs)的包膜蛋白在昆虫的高碱性中肠起始口腔感染。迄今为止,尚无任何 PIF 的高分辨率结构信息。在这里,我们展示了来自加利福尼亚多角体病毒(AcMNPV)的 PIF5 外域(PIF5e)的晶体结构,分辨率为 2.2Å。它揭示了 N 端 E1 结构域和 C 端 E2 结构域之间的一个开放腔,以及 E2 结构域中具有三个对二硫键的富含半胱氨酸的区域。PIF5 内的多个保守的分子内相互作用对于维持其三级结构至关重要。两个保守的精氨酸(Arg8 和 Arg74)在 E1-E2 相互作用中起关键作用,突变分析支持它们在口腔感染中的关键作用。重要的是,Arg8、Arg74 或半胱氨酸突变病毒的口腔感染力降低与碱性处理过程中嵌合体内的内源性蛋白酶对 PIF5 的蛋白水解裂解有关。这表明 PIF5 在昆虫中肠的生理条件下的结构稳定性对于杆状病毒的口腔感染力至关重要。PIF 介导的感染是杆状病毒在昆虫中起始感染的高度复杂机制。以前的研究表明,多个 PIF 蛋白在病毒粒子的包膜上形成一个大的 PIF 复合物,而 PIF5 独立于 PIF 复合物发挥作用。在这里,我们报告了 AcMNPV PIF5e 的晶体结构,据我们所知,这是第一个报道的 PIF 蛋白的原子结构。该结构揭示了先前提出的三个二硫键和其他保守的分子内相互作用的确切位置,这些相互作用对于 PIF5 的结构稳定性很重要,对于口腔感染力也是必不可少的。这些发现增进了我们对碱性条件下杆状病毒口腔感染的分子机制的理解。