Quantitative N-Terminal Footprinting of Pathogenic Mycobacteria Reveals Differential Protein Acetylation

Insights

N-terminal acetylation (NTA) is a widespread protein modification in mycobacteria, primarily occurring on Thr residues. This study reveals NTA

Area of Science:

  • Molecular Biology
  • Proteomics
  • Microbiology

Background:

  • N-terminal acetylation (NTA) is a conserved post-transcriptional protein modification.
  • In bacteria, NTA enzymes are linked to antimicrobial resistance.
  • NTA's role in mycobacterial pathogenesis and stress response is poorly understood.

Purpose of the Study:

  • To define and quantify N-terminal acetylation in the mycobacterial proteome.
  • To investigate the unique features of NTA in *Mycobacterium tuberculosis* and *Mycobacterium marinum*.
  • To explore the link between NTA, protein localization, and mycobacterial physiology.

Main Methods:

  • Enrichment and quantification of NT-acetylated proteins from *M. tuberculosis* and *M. marinum*.
  • Utilized a parallel N-terminal enrichment strategy with proteolytic digests.
  • Employed charge-based selection and stable isotope ratio mass spectrometry.

Main Results:

  • Mycobacterial NTA is abundant, diverse, and uniquely prevalent on Thr residues.
  • 256 proteins were identified in both acetylated and unacetylated forms, indicating homeostasis.
  • 16 proteins showed differential NTA levels between cytoplasmic and secreted forms, linking modification to localization.

Conclusions:

  • This study reveals novel insights into the fundamental biology of NTA in mycobacteria.
  • Findings provide a basis for understanding NTA's role in mycobacterial physiology and pathogenesis.
  • The unique characteristics of mycobacterial NTA may offer new avenues for antimicrobial resistance research.

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