Structure-Function Analysis of Herpes Simplex Virus Type 1 gD and gH-gL: Clues from gDgH Chimeras
- 15 June 2003
- journal article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 77 (12) , 6731-42
- https://doi.org/10.1128/jvi.77.12.6731-6742.2003
Abstract
In alphaherpesviruses, glycoprotein B (gB), gD, gH, and gL are essential for virus entry. A replication-competent gL-null pseudorabies virus (PrV) (B. G. Klupp and T. C. Mettenleiter, J. Virol. 73:3014-3022, 1999) was shown to express a gDgH hybrid protein that could replace gD, gH, and gL in cell-cell fusion and null virus complementation assays. To study this phenomenon in herpes simplex virus type 1 (HSV-1), we constructed four gDgH chimeras, joining the first 308 gD amino acids to various gH N-terminal truncations. The chimeras were named for the first amino acid of gH at which each was truncated: 22, 259, 388, and 432. All chimeras were immunoprecipitated with both gD and gH antibodies to conformational epitopes. Normally, transport of gH to the cell surface requires gH-gL complex formation. Chimera 22 contains full-length gH fused to gD308. Unlike PrV gDgH, chimera 22 required gL for transport to the surface of transfected Vero cells. Interestingly, although chimera 259 failed to reach the cell surface, chimeras 388 and 432 exhibited gL-independent transport. To examine gD and gH domain function, each chimera was tested in cell-cell fusion and null virus complementation assays. Unlike PrV gDgH, none of the HSV-1 chimeras substituted for gL for fusion. Only chimera 22 was able to replace gH for fusion and could also replace either gH or gD in the complementation assay. Surprisingly, this chimera performed very poorly as a substitute for gD in the fusion assay despite its ability to complement gD-null virus and bind HSV entry receptors (HveA and nectin-1). Chimeras 388 and 432, which contain the same portion of gD as that in chimera 22, substituted for gD for fusion at 25 to 50% of wild-type levels. However, these chimeras functioned poorly in gD-null virus complementation assays. The results highlight the fact that these two functional assays are measuring two related but distinct processes.Keywords
This publication has 129 references indexed in Scilit:
- Glycoprotein-D–Adjuvant Vaccine to Prevent Genital HerpesNew England Journal of Medicine, 2002
- Structure-Based Analysis of the Herpes Simplex Virus Glycoprotein D Binding Site Present on Herpesvirus Entry Mediator HveA (HVEM)Journal of Virology, 2002
- The Absence of Glycoprotein gL, but Not gC or gK, Severely Impairs Pseudorabies Virus NeuroinvasivenessJournal of Virology, 2001
- Glycoprotein D-Independent Infectivity of Pseudorabies Virus Results in an Alteration of In Vivo Host Range and Correlates with Mutations in Glycoproteins B and HJournal of Virology, 2001
- Herpes simplex virus glycoprotein D bound to the human receptor HveA.Published by Elsevier ,2001
- Cellular Expression of Alphaherpesvirus gD Interferes with Entry of Homologous and Heterologous Alphaherpesviruses by Blocking Access to a Shared gD ReceptorVirology, 2000
- Variability of Herpes Simplex Virus 1 gL and Anti-gL Antibodies That Inhibit Cell Fusion but Not Viral InfectivityVirology, 1996
- Initiation and spread of α-herpesvirus infectionsTrends in Microbiology, 1994
- The properties and sequence of glycoprotein H of herpes simplex virus type 1Virology, 1986
- An Analysis of the Biological Properties of Monoclonal Antibodies against Glycoprotein D of Herpes Simplex Virus and Identification of Amino Acid Substitutions that Confer Resistance to NeutralizationJournal of General Virology, 1986