Mutations differentially affecting the coronavirus Mac1 ADP-ribose binding and hydrolysis activities indicate that it

Joseph J O'Connor1, Anuradha Roy2, Reem Khattabi1

  • 1Department of Molecular Biosciences, University of Kansas, Lawrence, Kansas, USA.

Journal of Virology
|July 30, 2025
PubMed

Insights

Coronaviruses

Area of Science:

  • Virology
  • Molecular Biology
  • Biochemistry

Background:

  • Coronaviruses (CoVs) pose significant public health risks.
  • The conserved Mac1 domain in nsp3 is crucial for viral replication and pathogenesis.
  • Understanding Mac1's role is key to developing novel antiviral strategies.

Purpose of the Study:

  • To investigate the distinct biochemical functions of the coronavirus Mac1 domain.
  • To elucidate how Mac1 mutations affect viral RNA and protein production.
  • To determine the differential roles of Mac1's ADP-ribose binding and enzymatic activities in the viral life cycle.

Main Methods:

  • Generated and characterized Mac1 proteins with specific mutations (D1329A and N1347A).
  • Assessed ADP-ribose binding and enzyme activity of mutant Mac1 proteins.
  • Infected cells with wild-type and mutant murine hepatitis virus (MHV) strains to analyze viral RNA and protein levels.

Main Results:

  • The D1329A mutation severely impaired ADP-ribose binding, while N1347A reduced enzyme activity.
  • D1329A mutant showed significant defects in viral RNA accumulation.
  • N1347A mutant produced normal viral RNA but reduced viral protein levels in specific cell types.

Conclusions:

  • Mac1's ADP-ribose binding and enzymatic activities differentially regulate distinct stages of the coronavirus life cycle.
  • These findings highlight the essential role of Mac1 in viral replication and pathogenesis.
  • Targeting Mac1 offers a potential therapeutic strategy against coronavirus infections.

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