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Published on: December 21, 2019
The role of the S-S bridge in retroviral protease function and virion maturation
Helena Zábranská1, Roman Tůma, Ivan Kluh
1Gilead Sciences Research Centre, Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo námestí 2, 166 10 Prague 6, Czech Republic.
Abstract:
Retroviral proteases are translated as a part of Gag-related polyproteins, and are released and activated during particle release. Mason-Pfizer monkey virus (M-PMV) Gag polyproteins assemble into immature capsids within the cytoplasm of the host cells; however, their processing occurs only after transport to the plasma membrane and subsequent release. Thus, the activity of M-PMV protease is expected to be highly regulated during the replication cycle. It has been proposed that reversible oxidation of protease cysteine residues might be responsible for such regulation. We show that cysteine residues in M-PMV protease can form an intramolecular S-S bridge. The disulfide bridge shifts the monomer/dimer equilibrium in favor of the dimer, and increases the proteolytic activity significantly. To investigate the role of this disulfide bridge in virus maturation and replication, we engineered an M-PMV clone in which both protease cysteine residues were replaced by alanine (M-PMV(PRC7A/C106A)). Surprisingly, the cysteine residues were dispensable for Gag polyprotein processing within the virus, indicating that even low levels of protease activity are sufficient for polyprotein processing during maturation. However, the long-term infectivity of M-PMV(PRC7A/C106A) was noticeably compromised. These results show clearly that the proposed redox mechanism does not rely solely on the formation of the stabilizing S-S bridge in the protease. Thus, in addition to the protease disulfide bridge, reversible oxidation of cysteine and/or methionine residues in other domains of the Gag polyprotein or in related cellular proteins must be involved in the regulation of maturation.
Insights
The Mason-Pfizer monkey virus (M-PMV) protease
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Retroviral proteases are crucial for viral maturation, often regulated during replication.
- Mason-Pfizer monkey virus (M-PMV) protease activity is expected to be tightly controlled.
- Redox regulation via cysteine oxidation has been proposed for M-PMV protease activity.
Purpose of the Study:
- To investigate the role of cysteine residues and disulfide bridge formation in M-PMV protease activity and viral maturation.
- To determine if the M-PMV protease disulfide bridge is essential for Gag polyprotein processing and infectivity.
Main Methods:
- Engineered an M-PMV clone with cysteine residues mutated to alanine (M-PMV(PRC7A/C106A)).
- Assessed Gag polyprotein processing in the engineered M-PMV.
- Evaluated the long-term infectivity of the M-PMV(PRC7A/C106A) mutant.
Main Results:
- M-PMV protease cysteine residues form an intramolecular disulfide bridge, enhancing proteolytic activity.
- Cysteine residues are dispensable for Gag polyprotein processing during M-PMV maturation.
- Mutant M-PMV lacking protease cysteine residues showed compromised long-term infectivity.
Conclusions:
- The M-PMV protease disulfide bridge is not solely responsible for regulating maturation via redox mechanisms.
- Other redox-sensitive elements within the Gag polyprotein or cellular proteins likely contribute to M-PMV maturation regulation.
- While essential for infectivity, protease cysteine oxidation is not the sole determinant of M-PMV replication efficiency.
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