Identification of conserved motifs in the Westnile virus envelope essential for particle secretion
BMC MICROBIOLOGY
Authors: Garg, Himanshu; Lee, Raphael T. C.; Tek, Ng Oon; Maurer-Stroh, Sebastian; Joshi, Anjali
Abstract
Background: Enveloped viruses utilize cellular membranes to bud from infected cells. The process of virion assembly and budding is often facilitated by the presence of certain conserved motifs within viral proteins in conjunction with cellular factors. We hence examined the West Nile Virus (WNV) Envelope protein for the presence of any such motifs and their functional characterization. Results: We identified conserved (461)PXAP(464) and (YCYL352)-Y-349 motifs in the WNV envelope glycoprotein bearing resemblance to retroviral late domains. Disruptive mutations of PXAP to LAAL and of the highly conserved Cys(350) in the YCYL motif, led to a severe reduction in WNV particle production. Similar motifs in case of retroviruses are known to interact with components of host sorting machinery like PXAP with Tsg101 and YXXL with Alix. However, in the case of WNV, siRNA mediated depletion of Alix or Tsg101 did not have an effect on WNV release. Molecular modeling suggested that while the (461)PXAP(464) motif is surface accessible and could potentially interact with cellular proteins required for WNV assembly, the (YCYL352)-Y-349 motif was found to be internal with Cys(350) important for protein folding via disulphide bonding. Conclusions: The conserved (461)PXAP(464) and (YCYL352)-Y-349 motifs in the WNV envelope are indispensable for WNV particle production. Although these motifs bear sequence similarity to retroviral late domains and are essential for WNV assembly, they are functionally distinct suggesting that they are not the typical late domain like motifs of retroviruses and may play a role other than Alix/Tsg101 utilization/dependence.
Vaccine-Induced Protection of Rhesus Macaques against Plasma Viremia after Intradermal Infection with a European Lineage 1 Strain of West Nile Virus
PLOS ONE
Authors: Verstrepen, Babs E.; Oostermeijer, Herman; Fagrouch, Zahra; van Heteren, Melanie; Niphuis, Henk; Haaksma, Tom; Kondova, Ivanela; Bogers, Willy M.; de Filette, Marina; Sanders, Niek; Stertman, Linda; Magnusson, Sofia; Lorincz, Orsolya; Lisziewicz, Julianna; Barzon, Luisa; Palu, Giorgio; Diamond, Michael S.; Chabierski, Stefan; Ulbert, Sebastian; Verschoor, Ernst J.
Abstract
The mosquito-borne West Nile virus (WNV) causes human and animal disease with outbreaks in several parts of the world including North America, the Mediterranean countries, Central and East Europe, the Middle East, and Africa. Particularly in elderly people and individuals with an impaired immune system, infection with WNV can progress into a serious neuroinvasive disease. Currently, no treatment or vaccine is available to protect humans against infection or disease. The goal of this study was to develop a WNV-vaccine that is safe to use in these high-risk human target populations. We performed a vaccine efficacy study in non-human primates using the contemporary, pathogenic European WNV genotype 1a challenge strain, WNV-Ita09. Two vaccine strategies were evaluated in rhesus macaques (Macaca mulatta) using recombinant soluble WNV envelope (E) ectodomain adjuvanted with Matrix-M, either with or without DNA priming. The DNA priming immunization was performed with WNV-DermaVir nanoparticles. Both vaccination strategies successfully induced humoral and cellular immune responses that completely protected the macaques against the development of viremia. In addition, the vaccine was well tolerated by all animals. Overall, The WNV E protein adjuvanted with Matrix-M is a promising vaccine candidate for a non-infectious WNV vaccine for use in humans, including at-risk populations.