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Mutations in multiple domains activate paramyxovirus F protein-induced fusion
Shaguna Seth1, Andrew L Goodman, Richard W Compans
1Department of Microbiology and Immunology, Emory University School of Medicine, Atlanta, GA 30322, USA.
Abstract:
SER virus, a paramyxovirus that is closely related to simian virus 5 (SV5), is unusual in that it fails to induce syncytium formation. The SER virus F protein has an unusually long cytoplasmic tail (CT), and it was previously observed that truncations or specific mutations of this domain result in enhanced syncytium formation. In addition to the long CT, the SER F protein has nine amino acid differences from the F protein of SV5. We previously observed only a partial suppression of fusion in a chimeric SV5 F protein with a CT derived from SER virus, indicating that these other amino acid differences between the SER and SV5 F proteins also play a role in regulating the fusion phenotype. To examine the effects of individual amino acid differences, we mutated the nine SER residues individually to the respective residues of the SV5 F protein. We found that most of the mutants were expressed well and were transported to the cell surface at levels comparable to that of the wild-type SER F protein. Many of the mutants showed enhanced lipid mixing, calcein transfer, and syncytium formation even in the presence of the long SER F protein CT. Some mutants, such as the I310 M, T438S, M489I, T516V, and N529K mutants, also showed fusion at lower temperatures of 32, 25, and 18 degrees C. The residue Asn529 plays a critical role in the suppression of fusion activity, as the mutation of this residue to lysine caused a marked enhancement of fusion. The effect of the N529K mutation on the enhancement of fusion by a previously described mutant, L539,548A, as well as by chimeric SV5/SER F proteins was also dramatic. These results indicate that activation to a fusogenic conformation is dependent on the interplay of residues in the ectodomain, the transmembrane domain, and the CT domain of paramyxovirus F proteins.
Insights
The SER virus F protein
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- The SER virus F protein, related to simian virus 5 (SV5), typically does not induce syncytium formation.
- This lack of fusion is partly attributed to its unusually long cytoplasmic tail (CT).
- Nine amino acid differences exist between SER and SV5 F proteins, suggesting additional regulatory roles.
Purpose of the Study:
- To investigate the role of individual amino acid differences in the SER virus F protein's fusion activity.
- To determine how these differences, independent of the long CT, affect syncytium formation and fusion.
- To elucidate the interplay of various protein domains in regulating paramyxovirus F protein fusogenicity.
Main Methods:
- Site-directed mutagenesis was used to individually alter nine SER F protein residues to their SV5 counterparts.
- Expression levels and cell surface transport of mutant proteins were assessed.
- Fusion assays, including lipid mixing and calcein transfer, were performed to quantify fusion efficiency.
- Syncytium formation was observed under various temperature conditions.
Main Results:
- Most single-residue mutations were expressed and transported similarly to wild-type SER F protein.
- Several mutants exhibited enhanced fusion, lipid mixing, and syncytium formation, even with the long CT.
- Specific mutations, notably Asn529 to Lys (N529K), significantly enhanced fusion activity.
- Mutations affected fusion at reduced temperatures, with N529K showing a dramatic enhancement.
Conclusions:
- Individual amino acid differences, beyond the cytoplasmic tail, significantly influence SER virus F protein fusion.
- The Asn529 residue is critical for suppressing fusion activity.
- Paramyxovirus F protein fusogenic activation depends on the coordinated interaction of ectodomain, transmembrane domain, and CT residues.
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