A single-point mutation in the rubella virus E1 glycoprotein promotes rescue of recombinant vesicular stomatitis virus

被引:2
|
作者
Das, Pratyush Kumar [1 ]
Gonzalez, Paulina Alatriste [1 ]
Jangra, Rohit K. [2 ]
Yin, Peiqi [1 ]
Kielian, Margaret [1 ]
机构
[1] Albert Einstein Coll Med, Dept Cell Biol, Bronx, NY 10461 USA
[2] Louisiana State Univ, Hlth Sci Ctr Shreveport, Dept Microbiol & Immunol, Shreveport, LA USA
来源
MBIO | 2024年 / 15卷 / 03期
关键词
rubella; rubivirus; vesicular stomatitis virus; virus budding; virus fusion; STRUCTURAL PROTEINS; CAPSID PROTEIN; MEMBRANE; ANTIBODY; SIGNAL; PEPTIDE; GOLGI; E2; TRANSMEMBRANE; PARTICLES;
D O I
10.1128/mbio.02373-23
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Rubella virus (RuV) is an enveloped plus-sense RNA virus and a member of the Rubivirus genus. RuV infection in pregnant women can lead to miscarriage or an array of severe birth defects known as congenital rubella syndrome. Novel rubiviruses were recently discovered in various mammals, highlighting the spillover potential of other rubiviruses to humans. Many features of the rubivirus infection cycle remain unexplored. To promote the study of rubivirus biology, here, we generated replication-competent recombinant VSV-RuV (rVSV-RuV) encoding the RuV transmembrane glycoproteins E2 and E1. Sequencing of rVSV-RuV showed that the RuV glycoproteins acquired a single-point mutation W448R in the E1 transmembrane domain. The E1 W448R mutation did not detectably alter the intracellular expression, processing, glycosylation, colocalization, or dimerization of the E2 and E1 glycoproteins. Nonetheless, the mutation enhanced the incorporation of RuV E2/E1 into VSV particles, which bud from the plasma membrane rather than the RuV budding site in the Golgi. Neutralization by E1 antibodies, calcium dependence, and cell tropism were comparable between WT-RuV and either rVSV-RuV or RuV containing the E1 W448R mutation. However, the E1 W448R mutation strongly shifted the threshold for the acid pH-triggered virus fusion reaction, from pH 6.2 for the WT RuV to pH 5.5 for the mutant. These results suggest that the increased resistance of the mutant RuV E1 to acidic pH promotes the ability of viral envelope proteins to generate infectious rVSV and provide insights into the regulation of RuV fusion during virus entry and exit.IMPORTANCERubella virus (RuV) infection in pregnant women can cause miscarriage or severe fetal birth defects. While a highly effective vaccine has been developed, RuV cases are still a significant problem in areas with inadequate vaccine coverage. In addition, related viruses have recently been discovered in mammals, such as bats and mice, leading to concerns about potential virus spillover to humans. To facilitate studies of RuV biology, here, we generated and characterized a replication-competent vesicular stomatitis virus encoding the RuV glycoproteins (rVSV-RuV). Sequence analysis of rVSV-RuV identified a single-point mutation in the transmembrane region of the E1 glycoprotein. While the overall properties of rVSV-RuV are similar to those of WT-RuV, the mutation caused a marked shift in the pH dependence of virus membrane fusion. Together, our studies of rVSV-RuV and the identified W448R mutation expand our understanding of rubivirus biology and provide new tools for its study. Rubella virus (RuV) infection in pregnant women can cause miscarriage or severe fetal birth defects. While a highly effective vaccine has been developed, RuV cases are still a significant problem in areas with inadequate vaccine coverage. In addition, related viruses have recently been discovered in mammals, such as bats and mice, leading to concerns about potential virus spillover to humans. To facilitate studies of RuV biology, here, we generated and characterized a replication-competent vesicular stomatitis virus encoding the RuV glycoproteins (rVSV-RuV). Sequence analysis of rVSV-RuV identified a single-point mutation in the transmembrane region of the E1 glycoprotein. While the overall properties of rVSV-RuV are similar to those of WT-RuV, the mutation caused a marked shift in the pH dependence of virus membrane fusion. Together, our studies of rVSV-RuV and the identified W448R mutation expand our understanding of rubivirus biology and provide new tools for its study.
引用
收藏
页数:19
相关论文
共 40 条
  • [1] Two Point Mutations in the Glycoprotein of SFTSV Enhance the Propagation Recombinant Vesicular Stomatitis Virus Vectors at Assembly Step
    Hu, Qiang
    Zhang, Yuhang
    Jiang, Jiafu
    Zheng, Aihua
    VIRUSES-BASEL, 2023, 15 (03):
  • [2] Protective efficacy of a recombinant Newcastle disease virus expressing glycoprotein of vesicular stomatitis virus in mice
    Minmin Zhang
    Jinying Ge
    Xiaofang Li
    Weiye Chen
    Xijun Wang
    Zhiyuan Wen
    Zhigao Bu
    Virology Journal, 13
  • [3] Protective efficacy of a recombinant Newcastle disease virus expressing glycoprotein of vesicular stomatitis virus in mice
    Zhang, Minmin
    Ge, Jinying
    Li, Xiaofang
    Chen, Weiye
    Wang, Xijun
    Wen, Zhiyuan
    Bu, Zhigao
    VIROLOGY JOURNAL, 2016, 13
  • [4] EFFECTS OF DISULFIDE BRIDGES IN GLYCOPROTEIN E1 ON FUSOGENIC ACTIVITY OF RUBELLA VIRUS
    Liu, X. L.
    Wu, B.
    Zhang, W. Q.
    Song, Y. Y.
    Xu, H. Z.
    Wang, G. T.
    Wang, Z. Y.
    ACTA VIROLOGICA, 2009, 53 (01) : 29 - 34
  • [5] Recombinant vesicular stomatitis virus glycoprotein carrying a foot-and-mouth disease virus epitope as a vaccine candidate
    Lee, Hyang-Sim
    Park, Sun-Young
    Kim, Ah-Young
    Lee, Sang-Oh
    Kim, Jae-Seok
    Kim, Hyejin
    Youn, Hee-Jeong
    Ko, Young-Joon
    JOURNAL OF VETERINARY MEDICAL SCIENCE, 2020, 82 (08) : 1155 - 1159
  • [6] Single injection recombinant vesicular stomatitis virus vaccines protect ferrets against lethal Nipah virus disease
    Mire, Chad E.
    Versteeg, Krista M.
    Cross, Robert W.
    Agans, Krystle N.
    Fenton, Karla A.
    Whitt, Michael A.
    Geisbert, Thomas W.
    VIROLOGY JOURNAL, 2013, 10
  • [7] Single injection recombinant vesicular stomatitis virus vaccines protect ferrets against lethal Nipah virus disease
    Chad E Mire
    Krista M Versteeg
    Robert W Cross
    Krystle N Agans
    Karla A Fenton
    Michael A Whitt
    Thomas W Geisbert
    Virology Journal, 10
  • [8] The Multiplicity of Infection of Recombinant Vaccinia Virus Expressing the T7 RNA Polymerase Determines the Rescue Efficiency of Vesicular Stomatitis Virus
    Yang, Fan
    Tan, Jinlong
    Fang, Yongxiang
    Chen, Guohua
    Zhang, Yongzhi
    Hu, Qianqian
    Han, Wuweiyi
    Liu, Yongsheng
    Fu, Baoquan
    Jing, Zhizhong
    Li, Weike
    FRONTIERS IN MICROBIOLOGY, 2022, 13
  • [9] Rubella virus pseudotypes and a cell-cell fusion assay as tools for functional analysis of the rubella virus E2 and E1 envelope glycoproteins
    Claus, Claudia
    Hofmann, Joerg
    Uberla, Klaus
    Liebert, U. G.
    JOURNAL OF GENERAL VIROLOGY, 2006, 87 : 3029 - 3037
  • [10] A single amino acid substitution in the Borna disease virus glycoprotein enhances the infectivity titer of vesicular stomatitis virus pseudotyped virus by altering membrane fusion activity
    Akiba, Yusa
    Matsugo, Hiromichi
    Kanda, Takehiro
    Sakai, Modoka
    Makino, Akiko
    Tomonaga, Keizo
    MICROBIOLOGY AND IMMUNOLOGY, 2024, 68 (11) : 381 - 392