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Updated: Feb 7, 2026

Electroporation of Mycobacteria
Published on: May 23, 2008
Quantitative N-Terminal Footprinting of Pathogenic Mycobacteria Reveals Differential Protein Acetylation
Abstract:
N-terminal acetylation (NTA) is a post-transcriptional modification of proteins that is conserved from bacteria to humans. In bacteria, the enzymes that mediate protein NTA also promote antimicrobial resistance. In pathogenic mycobacteria, which cause human tuberculosis and other chronic infections, NTA has been linked to pathogenesis and stress response, yet the fundamental biology underlying NTA of mycobacterial proteins remains unclear. We enriched, defined, and quantified the NT-acetylated populations of both cell-associated and secreted proteins from both the human pathogen, Mycobacterium tuberculosis, and the nontuberculous opportunistic pathogen, Mycobacterium marinum. We used a parallel N-terminal enrichment strategy from proteolytic digests coupled to charge-based selection and stable isotope ratio mass spectrometry. We show that NTA of the mycobacterial proteome is abundant, diverse, and primarily on Thr residues, which is unique compared with other bacteria. We isolated both the acetylated and unacetylated forms of 256 proteins, indicating that NTA of mycobacterial proteins is homeostatic. We identified 16 mycobacterial proteins with differential levels of NTA on the cytoplasmic and secreted forms, linking protein modification and localization. Our findings reveal novel biology underlying the NTA of mycobacterial proteins, which may provide a basis to understand NTA in mycobacterial physiology, pathogenesis, and antimicrobial resistance.
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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