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Fido, a novel AMPylation domain common to fic, doc, and AvrB
Lisa N Kinch1, Melanie L Yarbrough, Kim Orth
1Howard Hughes Medical Institute, University of Texas Southwestern Medical Center, Dallas, Texas, United States of America. lkinch@chop.swmed.edu
Background:
The Vibrio parahaemolyticus type III secreted effector VopS contains a fic domain that covalently modifies Rho GTPase threonine with AMP to inhibit downstream signaling events in host cells. The VopS fic domain includes a conserved sequence motif (HPFx[D/E]GN[G/K]R) that contributes to AMPylation. Fic domains are found in a variety of species, including bacteria, a few archaea, and metazoan eukaryotes.
Methodology/Principal Findings:
We show that the AMPylation activity extends to a eukaryotic fic domain in Drosophila melanogaster CG9523, and use sequence and structure based computational methods to identify related domains in doc toxins and the type III effector AvrB. The conserved sequence motif that contributes to AMPylation unites fic with doc. Although AvrB lacks this motif, its structure reveals a similar topology to the fic and doc folds. AvrB binds to a peptide fragment of its host virulence target in a similar manner as fic binds peptide substrate. AvrB also orients a phosphate group from a bound ADP ligand near the peptide-binding site and in a similar position as a bound fic phosphate.
Conclusions/Significance:
The demonstrated eukaryotic fic domain AMPylation activity suggests that the VopS effector has exploited a novel host posttranslational modification. Fic domain-related structures give insight to the AMPylation active site and to the VopS fic domain interaction with its host GTPase target. These results suggest that fic, doc, and AvrB stem from a common ancestor that has evolved to AMPylate protein substrates.
Insights
The Vibrio parahaemolyticus effector VopS uses a fic domain to AMPylate host Rho GTPases. This activity extends to eukaryotic fic domains, suggesting a common evolutionary origin for AMPylating enzymes like fic, doc, and AvrB.
Area of Science:
- Biochemistry
- Molecular Biology
- Microbial Pathogenesis
Background:
- The bacterial effector VopS from Vibrio parahaemolyticus possesses a fic domain responsible for AMPylating Rho GTPases.
- This modification inhibits host cell signaling pathways.
- Fic domains are conserved across bacteria, archaea, and eukaryotes.
Purpose of the Study:
- To investigate the AMPylation activity of eukaryotic fic domains.
- To identify structural and sequence similarities between fic domains and related effector proteins.
- To understand the evolutionary origins of AMPylating enzymes.
Main Methods:
- Sequence and structure-based computational analyses.
- Investigated AMPylation activity of a eukaryotic fic domain from Drosophila melanogaster CG9523.
- Comparative structural analysis with doc toxins and AvrB.
Main Results:
- Demonstrated AMPylation activity of a eukaryotic fic domain.
- Identified conserved motifs and structural similarities linking fic, doc toxins, and AvrB.
- AvrB shares structural topology and substrate-binding characteristics with fic domains despite lacking the conserved motif.
Conclusions:
- VopS effector likely exploits a novel host posttranslational modification mechanism.
- Fic, doc, and AvrB structures provide insights into AMPylation mechanisms and active sites.
- These findings suggest a common evolutionary ancestor for fic, doc, and AvrB, adapted for protein AMPylation.
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