Orthoflaviviruses are major human pathogens that cause substantial morbidity and mortality worldwide. The viral envelope (E) mediates entry of orthoflaviviruses into host cells by interacting with cellular receptors, including members of the low-density lipoprotein receptor (LDLR) family. Here, we determined cryo-electron microscopy (cryo-EM) structures of yellow fever virus (YFV) E bound to low-density lipoprotein receptor-related protein 4 (LRP4) and LRP8, and of tick-borne encephalitis virus (TBEV) E bound to LRP8. Structural and functional studies reveal that YFV engages two low-density lipoprotein receptor class A (LA) repeats of LRP4 and LRP8 primarily through domain III (DIII) and the DI–DIII linker of its E protein, with each LA repeat making distinct contacts. In contrast, TBEV relies on a distinct surface on domain II (DII) of its E protein to interact with LRP8. Despite these differences, both viruses require engagement of two sequential receptor LA repeats for binding. Our findings identify key determinants of receptor specificity for these two orthoflaviviruses, with implications for vaccine development and therapeutic antibody targeting.
Chenggong Ji, Laurentia V. Tjang, Biswajit Das et al.· bioRxiv· 0 citations
Alphaviruses are arthropod-borne viruses that recognize cellular receptors in both vertebrate hosts and mosquito vectors to complete their transmission cycle, yet how they maintain recognition of receptors across evolutionarily divergent host species remains unresolved. Among alphaviruses, chikungunya virus (CHIKV), which is primarily vectored in urban settings by Aedes species mosquitoes, is the most widespread, and causes explosive outbreaks that can involve hundreds of thousands to millions of cases annually. The cell adhesion protein Lachesin is a mosquito-specific cellular receptor for CHIKV and multiple other arthritogenic alphaviruses. The envelope E2–E1 glycoproteins of these alphaviruses broadly recognize Lachesin orthologs from diverse mosquito species, but not other insects or arachnids. Lachesin genetic manipulation to prevent mosquito virus infection without interfering with endogenous receptor function could have a major impact for CHIKV control. Here, we determined high-resolution cryo-electron microscopy (cryo-EM) structures of alphaviruses bound to Aedes albopictus Lachesin. Comparative analysis of Lachesin-bound CHIKV, Semliki Forest virus (SFV), and Middelburg virus (MIDV) revealed that these three genetically divergent viruses use a similar surface to recognize Lachesin domain 1, but with reorganized E2–E1 glycoprotein contact residues. We show that a soluble Ae. albopictus Lachesin receptor decoy protein blocks the E2–E1-mediated entry of CHIKV and other arthritogenic alphaviruses into mammalian cells with greater breadth than a vertebrate receptor MXRA8 decoy and protects against lethal SFV challenge and CHIKV pathogenesis in murine models. Additionally, we identified a naturally occurring single residue Lachesin polymorphism that is found in some Anopheles (malaria vector) mosquitoes, and fully ablates CHIKV E2–E1 recognition, informing strategies for mosquito-targeted genetic interventions that could prevent mosquito vector infection and virus transmission. These findings define distinct determinants of receptor binding in mosquitoes and humans for arthritogenic alphaviruses, with implications for countermeasure development and outbreak preparedness.
Xiao-Yi Fan, Wanyu Li, Jesse S. Plung et al.· bioRxiv· 0 citations
Poxviruses are double-stranded DNA viruses with large genomes. Among them, monkeypox virus (MPXV) has been responsible for two recent public health emergencies as declared by the World Health Organization1. The MPXV polymerase comprises three subunits-a catalytic subunit (F8) and a heterodimeric processivity factor (A22 and E4). The viral polymerase must coordinate activities with the hexameric helicase-primase (E5) to initiate replication of the viral genome2. Although structures of MPXV E5 (refs. 3,4) and the polymerase5-7 in isolation are available, how they assemble into a functional replisome remains unclear. In isolation, E5 is in an autoinhibited conformation and has very weak helicase activity3,4, and the mechanism for helicase activation is unclear. Here we used cryo-electron microscopy to determine the structures of DNA-bound MPXV replisomes comprising the polymerase holoenzyme (F8, A22 and E4) and the E5 helicase hexamer. We show that, during replisome assembly, E5 undergoes large-scale conformational changes that allow two of its primase domains to interact with the polymerase F8 thumb and A22 subunit. Biochemical assays and single-molecule experiments reveal that this E5 conformational change is coupled to helicase activation and enhances primase activity. Taken together, these findings identify fundamental mechanisms governing coordinated helicase and polymerase activities during DNA replication for an important class of viral pathogens.
Zi-Shuo Yu, Pradeep Sathyanarayana, Joel M. J. Tan et al.· Nature· 0 citations
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