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Low-pH triggering of human metapneumovirus fusion: essential residues and importance in entry
Rachel M Schowalter1, Andres Chang, Jessica G Robach
1Department of Molecular and Cellular Biochemistry, University of Kentucky, Lexington, Kentucky 40536-0509, USA.
Abstract:
Human metapneumovirus (HMPV) is a significant respiratory pathogen classified in the Pneumovirinae subfamily of the paramyxovirus family. Recently, we demonstrated that HMPV F protein-promoted cell-cell fusion is stimulated by exposure to low pH, in contrast to what is observed for other paramyxovirus F proteins. In the present study, we examined the potential role of histidine protonation in HMPV F fusion and investigated the role of low pH in HMPV viral entry. Mutagenesis of the three ectodomain histidine residues of the HMPV F protein demonstrated that the mutation of a histidine in the heptad repeat B linker domain (H435) ablated fusion activity without altering cell surface expression or proteolytic processing significantly. Modeling of the HMPV F protein revealed several basic residues surrounding this histidine residue, and the mutation of these residues also reduced fusion activity. These results suggest that electrostatic repulsion in the heptad repeat B linker region may contribute to the triggering of HMPV F. In addition, we examined the effect of inhibitors of endosomal acidification or endocytosis on the entry of a recombinant green fluorescent protein-expressing HMPV. Interestingly, chemicals that raise the pH of endocytic vesicles resulted in a 30 to 50% decrease in HMPV infection, while the inhibitors of endocytosis reduced infection by as much as 90%. These data suggest that HMPV utilizes an endocytic entry mechanism, in contrast to what has been hypothesized for most paramyxoviruses. In addition, our results indicate that HMPV uses the low pH of the endocytic pathway to enhance infectivity, though the role of low pH likely differs from classically described mechanisms.
Insights
Human metapneumovirus (HMPV) fusion is triggered by histidine protonation and low pH. HMPV enters cells via endocytosis, with low pH enhancing infectivity, differing from other paramyxoviruses.
Area of Science:
- Virology
- Molecular Biology
Background:
- Human metapneumovirus (HMPV) is a notable respiratory pathogen in the paramyxovirus family.
- Unlike other paramyxoviruses, HMPV F protein-mediated fusion is enhanced by low pH.
Purpose of the Study:
- To investigate the role of histidine protonation in HMPV F protein-mediated fusion.
- To explore the mechanism and pH dependence of HMPV viral entry.
Main Methods:
- Site-directed mutagenesis of ectodomain histidine residues in the HMPV F protein.
- Computational modeling of the HMPV F protein structure.
- Assessing HMPV infection in the presence of endosomal acidification and endocytosis inhibitors.
Main Results:
- Mutation of histidine 435 (H435) in the heptad repeat B linker domain abolished HMPV F fusion activity.
- Modeling suggested basic residues surrounding H435 contribute to fusion triggering via electrostatic repulsion.
- Low pH-raising agents decreased HMPV infection by 30-50%, while endocytosis inhibitors reduced it by up to 90%.
Conclusions:
- Histidine protonation and electrostatic interactions in the HMPV F protein's heptad repeat B region are critical for triggering fusion.
- HMPV employs an endocytic entry pathway, distinct from most paramyxoviruses.
- Low pH within the endocytic pathway enhances HMPV infectivity through a potentially novel mechanism.
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