Identification and characterization of the human ARD1-NATH protein acetyltransferase complex

Thomas Arnesen1, Dave Anderson, Christian Baldersheim

  • 1Department of Molecular Biology, University of Bergen, N-5020 Bergen, Norway.

The Biochemical Journal
|October 22, 2004
PubMed

Insights

Human NATH and hARD1 proteins form a complex with N-terminal acetylation activity. This protein acetyltransferase complex interacts with ribosomes and is cleaved during apoptosis, impacting NAT activity.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Biology

Background:

  • Protein acetyltransferases and deacetylases play roles in oncogenesis, apoptosis, and cell cycle regulation.
  • Most known protein acetyltransferases modify lysine residues via epsilon-amino groups.
  • Mouse ARD1 is unique in acetylating both alpha- and epsilon-amino groups.

Purpose of the Study:

  • To identify and characterize the human homologues of yeast Ard1p and Nat1p.
  • To investigate the interaction and function of human NATH and hARD1 proteins.

Main Methods:

  • Reciprocal immunoprecipitation followed by Mass Spectrometry (MS) analysis.
  • Expression analysis in human cell lines (epithelial, glioma, promyelocytic).
  • Subcellular localization studies and co-localization with HIF-1alpha.

Main Results:

  • Human NATH and hARD1 form a stable complex with N-terminal acetylation activity.
  • The NATH-hARD1 complex interacts with ribosomal subunits, suggesting co-translational function.
  • hARD1 localizes to cytoplasm and nucleus, partially co-localizing with HIF-1alpha.
  • NATH and hARD1 are cleaved during apoptosis, reducing NAT activity.

Conclusions:

  • Identification of human NATH and hARD1 as functional homologues of yeast proteins.
  • The NATH-hARD1 complex exhibits novel co-translational acetyltransferase functions.
  • Apoptotic cleavage of NATH and hARD1 affects NAT activity, linking acetylation to cell death pathways.

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