The Stem of Vesicular Stomatitis Virus G Can Be Replaced With the HIV-1 Env Membrane-Proximal External Region Without Loss of G Function or Membrane-Proximal External Region Antigenic Properties

被引:1
作者
Lorenz, Ivo C. [1 ]
Nguyen, Hanh T. [1 ,2 ]
Kemelman, Marina [1 ]
Lindsay, Ross W. [1 ]
Yuan, Maoli [1 ]
Wright, Kevin J. [1 ]
Arendt, Heather [1 ]
Back, Jaap Willem [3 ]
DeStefano, Joanne [1 ]
Hoffenberg, Simon [1 ]
Morrow, Gavin [1 ]
Jurgens, Christy K. [1 ]
Phogat, Sanjay K. [1 ]
Zamb, Timothy J. [1 ]
Parks, Christopher L. [1 ]
机构
[1] Int AIDS Vaccine Initiat, AIDS Vaccine Design & Dev Lab, Brooklyn, NY 11220 USA
[2] Suny Downstate Med Ctr, Program Mol & Cellular Biol, Sch Grad Studies, Brooklyn, NY 11203 USA
[3] Pepscan Therapeut, Lelystad, Netherlands
关键词
NEUTRALIZING ANTIBODIES; ENVELOPE GLYCOPROTEIN; MEDIATED FUSION; VIRAL GLYCOPROTEIN; EPITOPE-SCAFFOLDS; TYPE-1; ENVELOPE; GP41; ECTODOMAIN; VACCINE DESIGN; COMBINING SITE; HEAVY-CHAIN;
D O I
10.1089/aid.2013.0206
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The structure of the HIV-1 envelope membrane-proximal external region (MPER) is influenced by its association with the lipid bilayer on the surface of virus particles and infected cells. To develop a replicating vaccine vector displaying MPER sequences in association with membrane, Env epitopes recognized by the broadly neutralizing antibodies 2F5, 4E10, or both were grafted into the membrane-proximal stem region of the vesicular stomatitis virus (VSV) glycoprotein (G). VSV encoding functional G-MPER chimeras based on G from the Indiana or New Jersey serotype propagated efficiently, although grafting of both epitopes (G-2F5-4E10) modestly reduced replication and resulted in the acquisition of one to two adaptive mutations in the grafted MPER sequence. Monoclonal antibodies 2F5 and 4E10 efficiently neutralized VSV G-MPER vectors and bound to virus particles in solution, indicating that the epitopes were accessible in the preattachment form of the G-MPER chimeras. Overall, our results showed that the HIV Env MPER could functionally substitute for the VSV G-stem region implying that both perform similar functions even though they are from unrelated viruses. Furthermore, we found that the MPER sequence grafts induced low but detectable MPER-specific antibody responses in rabbits vaccinated with live VSV, although additional vector and immunogen modifications or use of a heterologous prime-boost vaccination regimen will be required to increase the magnitude of the immune response.
引用
收藏
页码:1130 / 1144
页数:15
相关论文
共 50 条
[31]   The Membrane-Proximal Region of C-C Chemokine Receptor Type 5 Participates in the Infection of HIV-1 [J].
Tan, Yue ;
Tong, Pei ;
Wang, Junyi ;
Zhao, Lei ;
Li, Jing ;
Yu, Yang ;
Chen, Ying-Hua ;
Wang, Ji .
FRONTIERS IN IMMUNOLOGY, 2017, 8
[32]   Development and immunological assessment of VLP-based immunogens exposing the membrane-proximal region of the HIV-1 gp41 protein [J].
Benen, Thomas D. ;
Tonks, Paul ;
Kliche, Alexander ;
Kapzan, Ruth ;
Heeney, Jonathan L. ;
Wagner, Ralf .
JOURNAL OF BIOMEDICAL SCIENCE, 2014, 21
[33]   A novel modified peptide derived from membrane-proximal external region of human immunodeficiency virus type 1 envelope significantly enhances retrovirus infection [J].
Zhang, Lishuang ;
Jiang, Chunlai ;
Zhang, Huayan ;
Gong, Xin ;
Yang, Lan ;
Miao, Liang ;
Shi, Yuhua ;
Zhang, Yan ;
Kong, Wei ;
Zhang, Chuntao ;
Shan, Yaming .
JOURNAL OF PEPTIDE SCIENCE, 2014, 20 (01) :46-54
[34]   Liposomal vaccines incorporating molecular adjuvants and intrastructural T-cell help promote the immunogenicity of HIV membrane-proximal external region peptides [J].
Hanson, Melissa C. ;
Abraham, Wuhbet ;
Crespo, Monica P. ;
Chen, Stephanie H. ;
Liu, Haipeng ;
Szeto, Greg Lee ;
Kim, Mikyung ;
Reinherz, Ellis L. ;
Irvine, Darrell J. .
VACCINE, 2015, 33 (07) :861-868
[35]   Generation of Long-Lived Bone Marrow Plasma Cells Secreting Antibodies Specific for the HIV-1 gp41 Membrane-Proximal External Region in the Absence of Polyreactivity [J].
Donius, Luke R. ;
Cheng, Yuxing ;
Choi, Jaewon ;
Sun, Zhen-Yu J. ;
Hanson, Melissa ;
Zhang, Michael ;
Gierahn, Todd M. ;
Marquez, Susanna ;
Uduman, Mohammed ;
Kleinstein, Steven H. ;
Irvine, Darrell ;
Love, J. Christopher ;
Reinherz, Ellis L. ;
Kim, Mikyung .
JOURNAL OF VIROLOGY, 2016, 90 (19) :8875-8890
[36]   Folded Monomers and Hexamers of the Ectodomain of the HIV gp41 Membrane Fusion Protein: Potential Roles in Fusion and Synergy Between the Fusion Peptide, Hairpin, and Membrane-Proximal External Region [J].
Banerjee, Koyeli ;
Weliky, David P. .
BIOCHEMISTRY, 2014, 53 (46) :7184-7198
[37]   Conformational Properties of Peptides Corresponding to the Ebolavirus GP2 Membrane-Proximal External Region in the Presence of Micelle-Forming Surfactants and Lipids [J].
Regula, Lauren K. ;
Harris, Richard ;
Wang, Fang ;
Higgins, Chelsea D. ;
Koellhoffer, Jayne F. ;
Zhao, Yue ;
Chandran, Kartik ;
Gao, Jianmin ;
Girvin, Mark E. ;
Lai, Jonathan R. .
BIOCHEMISTRY, 2013, 52 (20) :3393-3404
[38]   Development and immunological assessment of VLP-based immunogens exposing the membrane-proximal region of the HIV-1 gp41 protein [J].
Thomas D Benen ;
Paul Tonks ;
Alexander Kliche ;
Ruth Kapzan ;
Jonathan L Heeney ;
Ralf Wagner .
Journal of Biomedical Science, 21
[39]   Rational Design of Membrane Proximal External Region Lipopeptides Containing Chemical Modifications for HIV-1 Vaccination [J].
Venditto, Vincent J. ;
Watson, Douglas S. ;
Motion, Michael ;
Montefiori, David ;
Szoka, Francis C., Jr. .
CLINICAL AND VACCINE IMMUNOLOGY, 2013, 20 (01) :39-45
[40]   N-terminal residues of an HIV-1 gp41 membrane-proximal external region antigen influence broadly neutralizing 2F5-like antibodies [J].
Li, Dezhi ;
Liu, Jie ;
Zhang, Li ;
Xu, Tianshu ;
Chen, Junheng ;
Wang, Liping ;
Zhao, Qi .
VIROLOGICA SINICA, 2015, 30 (06) :449-456