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.

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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