N-terminal acetylation controls multiple functional aspects of the influenza A virus ribonuclease PA-X

Raecliffe E Daly1,2, Cynthia Y Feng2,3, Charles R Hesser2

  • 1Program in Cellular, Molecular and Developmental Biology, Tufts University Graduate School of Biomedical Sciences, Boston, Massachusetts, USA.

Journal of Virology
|January 9, 2026
PubMed

Insights

Influenza A virus PA-X protein acetylation has two roles: nuclear localization and direct host shutoff activity. Acetylation at the initiator methionine is crucial for PA-X host shutoff function during infection.

Area of Science:

  • Virology
  • Molecular Biology
  • Immunology

Background:

  • Influenza A virus employs the PA-X protein to degrade host mRNAs, a process known as host shutoff, to suppress antiviral responses.
  • N-terminal acetylation of PA-X has been previously linked to its host shutoff activity, but the underlying mechanisms remain unclear.

Purpose of the Study:

  • To elucidate the specific functions of N-terminal acetylation in regulating PA-X activity.
  • To investigate how N-terminal acetylation influences PA-X nuclear localization and its role in host shutoff.

Main Methods:

  • Investigated the dual functions of PA-X N-terminal acetylation.
  • Differentiated the roles of acetylation on the initiator methionine versus the second amino acid.
  • Assessed the necessity of PA-X N-terminal acetylation during influenza A virus infection.

Main Results:

  • PA-X N-terminal acetylation promotes both nuclear localization and direct host shutoff activity.
  • Acetylation at either the initiator methionine or the second amino acid facilitates nuclear entry.
  • Acetylation specifically on the initiator methionine is essential for normal PA-X host shutoff activity.

Conclusions:

  • N-terminal acetylation of PA-X plays a multifaceted role in regulating its function.
  • Influenza A viruses utilize N-terminal acetylation to control the activity of the immunomodulatory PA-X protein.
  • Understanding these mechanisms provides insights into viral immune evasion strategies.

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