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Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance
Published on: January 3, 2012
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.
Abstract:
The cytotoxic necrotizing factor (CNF) family of AB-type bacterial protein toxins catalyze two types of modification on their Rho GTPase substrates: deamidation and transglutamination. It has been established that E. coli CNF1 and its close homolog proteins catalyze primarily deamidation and Bordetella dermonecrotic toxin (DNT) catalyzes primarily transglutamination. The rapidly expanding microbial genome sequencing data have revealed that there are at least 13 full-length variants of CNF1 homologs. CNFx from E. coli strain GN02091 is the most distant from all other members of the CNF family with 50%-55% sequence identity at the protein level and 0.45-0.52 nucleotide substitutions per site at the DNA level. CNFx modifies RhoA, Rac1, and Cdc42, and like CNF1, activates downstream SRE-dependent mitogenic signaling pathways in human HEK293T cells, but at a 1,000-fold higher EC50 value. Unlike other previously characterized CNF toxins, CNFx modifies Rho proteins primarily through transglutamination, as evidenced by gel-shift assay and confirmed by MALDI mass spectral analysis, when coexpressed with Rho-protein substrates in E. coli BL21 cells or through direct treatment of HEK293T cells. A comparison of CNF1 and CNFx sequences identified two critical active-site residues corresponding to positions 832 and 862 in CNF1. Reciprocal site-specific mutations at these residues in each toxin revealed hierarchical rules that define the preference for deamidase versus a transglutaminase activity in CNFs. An additional unique Cys residue at the C-terminus of CNFx was also discovered to be critical for retarding cargo delivery.IMPORTANCECytotoxic necrotizing factor (CNF) toxins not only play important virulence roles in pathogenic E. coli and other bacterial pathogens, but CNF-like genes have also been found in an expanding number of genomes from clinical isolates. Harnessing the power of evolutionary relationships among the CNF toxins enabled the deciphering of the hierarchical active-site determinants that define whether they modify their Rho GTPase substrates through deamidation or transglutamination. With our finding that a distant CNF variant (CNFx) unlike other known CNFs predominantly transglutaminates its Rho GTPase substrates, the paradigm of "CNFs deamidate and DNTs transglutaminate" could finally be attributed to two critical amino acid residues within the active site other than the previously identified catalytic Cys-His dyad residues. The significance of our approach and research findings is that they can be applied to deciphering enzyme reaction determinants and substrate specificities for other bacterial proteins in the development of precision therapeutic strategies.
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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