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Complex formation by human cytomegalovirus glycoproteins M (gpUL100) and N (gpUL73)
M Mach1, B Kropff, P Dal Monte
1Institut für Klinische und Molekulare Virologie, Universität Erlangen-Nürnberg, Erlangen, Germany. mlmach@viro.med.uni-erlangen.de
Abstract:
The envelope glycoproteins of human cytomegalovirus (HCMV) virions are incompletely characterized. We have analyzed complex formation between glycoprotein M (gM or gpUL100) and a second glycoprotein. gM-homologous proteins are conserved throughout the herpesvirus family and represent type III membrane proteins containing multiple hydrophobic sequences. In extracellular HCMV particles, gM was found to be complexed through disulfide bonds to a second protein with an apparent molecular mass of 50 to 60 kDa. The 50- to 60-kDa protein was found to be derived from reading frame UL73 of HCMV strain AD169. UL73-homologous genes are also conserved within herpesviruses. When transiently expressed by itself, the UL73 gene product consisted of a protein of 18 kDa. However, in the presence of gM, the UL73 gene product was posttranslationally modified to the 50- to 60-kDa species. Thus, gM and the UL73 gene product, which represents the gN homolog of herpesviruses, form a disulfide-linked complex in HCMV virions. Transient expression of gM and gN followed by fluorescence imaging with monoclonal antibodies against either protein demonstrated that complex formation was required for transport of the proteins from the endoplasmic reticulum to the Golgi and trans-Golgi compartments. Finally, we tested the gM-gN complex for reactivity with sera from HCMV-seropositive donors. Whereas most sera failed to react with either gM or gN when expressed alone, 62% of sera were positive for the gM-gN complex. Because a murine monoclonal antibody reactive with gN in the gM-gN complex efficiently neutralizes infectious virus, the gM-gN complex may represent a major antigenic target of antiviral antibody responses.
Insights
Human cytomegalovirus (HCMV) glycoprotein M (gM) forms a disulfide-linked complex with glycoprotein N (gN). This gM-gN complex is essential for viral protein transport and is a key target for antiviral antibodies.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Human cytomegalovirus (HCMV) envelope glycoproteins are not fully understood.
- Glycoprotein M (gM) is conserved in herpesviruses and is a type III membrane protein.
Purpose of the Study:
- To characterize complex formation between HCMV gM and a second glycoprotein.
- To investigate the role of this complex in viral protein transport and antigenicity.
Main Methods:
- Analysis of protein complex formation using disulfide bonds.
- Transient expression of viral genes and post-translational modification analysis.
- Fluorescence imaging and monoclonal antibody assays.
- Serological testing with HCMV-seropositive donor sera.
Main Results:
- HCMV gM forms a disulfide-linked complex with a protein derived from reading frame UL73, identified as glycoprotein N (gN).
- The UL73 gene product (gN) is post-translationally modified to a higher molecular mass (50-60 kDa) in the presence of gM.
- Complex formation is crucial for the transport of gM and gN from the endoplasmic reticulum to the Golgi apparatus.
- The gM-gN complex is recognized by 62% of sera from HCMV-seropositive individuals, unlike gM or gN expressed alone.
- A monoclonal antibody targeting gN within the complex effectively neutralizes HCMV infectivity.
Conclusions:
- HCMV gM and gN form a critical disulfide-linked complex essential for viral protein trafficking.
- The gM-gN complex represents a significant antigenic target for HCMV-specific antibody responses.
- This complex holds potential as a target for antiviral therapies and vaccine development.
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