Hierarchical determinants in cytotoxic necrotizing factor (CNF) toxins driving Rho G-protein deamidation versus

Nicholas B Handy1, Yiting Xu1, Damee Moon1

  • 1Department of Microbiology, School of Molecular and Cellular Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.

Mbio
|June 26, 2024
PubMed

Insights

Cytotoxic necrotizing factor (CNF) toxins modify Rho GTPases via deamidation or transglutamination. A novel variant, CNFx, primarily uses transglutamination, revealing key active-site residues that dictate toxin activity and substrate modification.

Area of Science:

  • Bacterial Toxinology
  • Molecular Microbiology
  • Enzyme Mechanism

Background:

  • Cytotoxic necrotizing factor (CNF) toxins are AB-type bacterial protein toxins.
  • CNFs modify Rho GTPase substrates through deamidation or transglutamination.
  • Existing knowledge attributes deamidation to E. coli CNF1 and transglutamination to Bordetella dermonecrotic toxin (DNT).

Purpose of the Study:

  • To investigate the enzymatic activity and substrate modification mechanism of CNFx, a divergent CNF family member.
  • To identify the key amino acid residues responsible for determining deamidase versus transglutaminase activity in CNF toxins.
  • To understand the evolutionary and functional divergence within the CNF toxin family.

Main Methods:

  • Sequence analysis of CNFx and comparison with other CNF homologs.
  • Biochemical assays including gel-shift and MALDI mass spectrometry to determine modification type.
  • Site-specific mutagenesis of critical active-site residues in CNF1 and CNFx to assess functional impact.

Main Results:

  • CNFx, a distant CNF homolog, primarily modifies Rho GTPases via transglutamination, unlike the deamidation-dominant CNF1.
  • Two critical active-site residues (positions 832 and 862 in CNF1) were identified as key determinants of deamidase/transglutaminase preference.
  • A unique C-terminal Cysteine residue in CNFx was found to be essential for retarding cargo delivery.

Conclusions:

  • The established paradigm of CNFs deamidating and DNTs transglutaminating is redefined by the discovery of CNFx's transglutaminase activity.
  • Specific amino acid residues within the active site, beyond the catalytic dyad, dictate the enzymatic preference of CNF toxins.
  • Understanding these determinants offers insights into bacterial protein evolution and can inform the development of targeted therapeutic strategies.

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