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Marburg virus glycoprotein GP2: pH-dependent stability of the ectodomain α-helical bundle
Joseph S Harrison1, Jayne F Koellhoffer, Kartik Chandran
1Department of Biochemistry, Albert Einstein College of Medicine, Bronx, New York 10461, United States.
Abstract:
Marburg virus (MARV) and Ebola virus (EBOV) constitute the family Filoviridae of enveloped viruses (filoviruses) that cause severe hemorrhagic fever. Infection by MARV requires fusion between the host cell and viral membranes, a process that is mediated by the two subunits of the envelope glycoprotein, GP1 (surface subunit) and GP2 (transmembrane subunit). Upon viral attachment and uptake, it is believed that the MARV viral fusion machinery is triggered by host factors and environmental conditions found in the endosome. Next, conformational rearrangements in the GP2 ectodomain result in the formation of a highly stable six-helix bundle; this refolding event provides the energetic driving force for membrane fusion. Both GP1 and GP2 from EBOV have been extensively studied, but there is little information available for the MARV glycoproteins. Here we have expressed two variants of the MARV GP2 ectodomain in Escherichia coli and analyzed their biophysical properties. Circular dichroism indicates that the MARV GP2 ectodomain adopts an α-helical conformation, and one variant sediments as a trimer by equilibrium analytical ultracentrifugation. Denaturation studies indicate the α-helical structure is highly stable at pH 5.3 (unfolding energy, ΔG(unf,H(2)O), of 33.4 ± 2.5 kcal/mol and melting temperature, T(m), of 75.3 ± 2.1 °C for one variant). Furthermore, we found the α-helical stability to be strongly dependent on pH, with higher stability under lower-pH conditions (T(m) values ranging from ~92 °C at pH 4.0 to ~38 °C at pH 8.0). Mutational analysis suggests two glutamic acid residues (E579 and E580) are partially responsible for this pH-dependent behavior. On the basis of these results, we hypothesize that the pH-dependent folding stability of the MARV GP2 ectodomain provides a mechanism for controlling conformational preferences such that the six-helix bundle "postfusion" state is preferred under conditions of appropriately matured endosomes.
Insights
Marburg virus GP2 ectodomain is highly stable and pH-dependent, suggesting a mechanism for viral fusion control. This research provides insights into filovirus entry and potential therapeutic targets.
Area of Science:
- Virology
- Structural Biology
- Biochemistry
Background:
- Marburg virus (MARV) and Ebola virus (EBOV) are filoviruses causing severe hemorrhagic fever.
- MARV infection requires envelope glycoprotein (GP) mediated membrane fusion, involving GP1 and GP2 subunits.
- The GP2 ectodomain undergoes conformational changes to form a stable six-helix bundle, driving membrane fusion.
Purpose of the Study:
- To investigate the biophysical properties of the Marburg virus GP2 ectodomain.
- To understand the structural stability and pH-dependent behavior of MARV GP2.
- To elucidate the role of MARV GP2 in viral entry and fusion.
Main Methods:
- Expression and purification of two MARV GP2 ectodomain variants in E. coli.
- Circular dichroism (CD) spectroscopy to analyze secondary structure.
- Equilibrium analytical ultracentrifugation to determine oligomeric state.
- Chemical denaturation studies to assess protein stability (unfolding energy, melting temperature).
- pH-dependent stability assays and mutational analysis (E579, E580).
Main Results:
- MARV GP2 ectodomain adopts a stable alpha-helical conformation.
- One variant was identified as a trimer.
- The GP2 ectodomain exhibits high stability at acidic pH (e.g., pH 5.3, ΔG(unf,H(2)O) = 33.4 ± 2.5 kcal/mol, Tm = 75.3 ± 2.1 °C).
- Protein stability is strongly pH-dependent, with increased stability at lower pH.
- Two glutamic acid residues (E579 and E580) contribute to this pH sensitivity.
Conclusions:
- The Marburg virus GP2 ectodomain is a stable, alpha-helical structure.
- Its pH-dependent stability suggests a regulatory mechanism for viral fusion.
- This pH-sensing capability likely facilitates the formation of the postfusion six-helix bundle in endosomal compartments.
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