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Published on: July 28, 2016
Membrane Interactions of the Mason-Pfizer Monkey Virus Matrix Protein and Its Budding Deficient Mutants
Tomáš Kroupa1, Hana Langerová2, Michal Doležal1
1Department of Biochemistry and Microbiology, University of Chemistry and Technology, Prague, Technická 5, 166 28 Prague 6, Czech Republic; Laboratory of NMR Spectroscopy, University of Chemistry and Technology, Prague, Technická 5, 166 28 Prague 6, Czech Republic.
Abstract:
Matrix proteins (MAs) play a key role in the transport of retroviral proteins inside infected cells and in the interaction with cellular membranes. In most retroviruses, retroviral MAs are N-terminally myristoylated. This modification serves as a membrane targeting signal and also as an anchor for membrane interaction. The aim of this work was to characterize the interactions anchoring retroviral MA at the plasma membrane of infected cell. To address this issue, we compared the structures and membrane affinity of the Mason-Pfizer monkey virus (M-PMV) wild-type MA with its two budding deficient double mutants, that is, T41I/T78I and Y28F/Y67F. The structures of the mutants were determined using solution NMR spectroscopy, and their interactions with water-soluble phospholipids were studied. Water-soluble phospholipids are widely used models for studying membrane interactions by solution NMR spectroscopy. However, this approach might lead to artificial results due to unnatural hydrophobic interactions. Therefore, we used a new approach based on the measurement of the loss of the 1H NMR signal intensity of the protein sample induced by the addition of the liposomes containing phospholipids with naturally long fatty acids. HIV-1 MA was used as a positive control because its ability to interact with liposomes has already been described. We found that in contrast to HIV-1, the M-PMV MA interacted with the liposomes differently and much weaker. In our invivo experiments, the M-PMV MA did not co-localize with lipid rafts. Therefore, we concluded that M-PMV might adopt a different membrane binding mechanism than HIV-1.
Insights
Mason-Pfizer monkey virus (M-PMV) matrix proteins (MAs) bind membranes differently and more weakly than HIV-1 MAs. M-PMV MA does not co-localize with lipid rafts, suggesting a distinct membrane binding mechanism.
Area of Science:
- Virology
- Structural Biology
- Biochemistry
Background:
- Retroviral matrix proteins (MAs) are crucial for viral protein transport and cellular membrane interactions.
- N-terminal myristoylation of MAs acts as a membrane targeting signal and anchor.
- Understanding MA-membrane interactions is key to deciphering retroviral replication.
Purpose of the Study:
- To characterize the anchoring interactions of retroviral MA at the plasma membrane.
- To compare the membrane affinity and structure of Mason-Pfizer monkey virus (M-PMV) MA with its mutants.
- To elucidate the distinct membrane binding mechanisms of M-PMV MA compared to other retroviruses like HIV-1.
Main Methods:
- Solution NMR spectroscopy to determine the structures of M-PMV MA wild-type and mutants (T41I/T78I, Y28F/Y67F).
- Novel 1H NMR signal intensity loss assay using liposomes with long-chain fatty acids to assess membrane affinity.
- In vivo co-localization studies with lipid rafts.
Main Results:
- M-PMV MA exhibits significantly weaker and different liposome interactions compared to HIV-1 MA.
- M-PMV MA does not co-localize with lipid rafts in infected cells.
- Structural analysis of M-PMV MA mutants provided insights into membrane interaction determinants.
Conclusions:
- M-PMV MA employs a distinct membrane binding mechanism compared to HIV-1 MA.
- The weaker membrane interaction and lack of lipid raft co-localization suggest unique anchoring strategies for M-PMV.
- Further research is needed to fully elucidate the M-PMV membrane association pathway.
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