Pseudomonas aeruginosa ExoS ADP-ribosyltransferase inhibits ERM phosphorylation
Anthony W Maresso1, Qing Deng, Michael S Pereckas
1Department of Microbiology and Molecular Genetics, Medical College of Wisconsin, Milwaukee, WI 53226, USA.
Abstract:
Pseudomonas aeruginosa causes life-threatening infections in compromised and cystic fibrosis patients. Pathogenesis stems from a number of virulence factors, including four type III translocated cytotoxins: ExoS, ExoT, ExoY and ExoU. ExoS is a bifunctional toxin: the N terminus (amino acids 96-219) encodes a Rho GTPase Activating Protein (GAP) domain. The C terminus (amino acids 234-453) encodes a 14-3-3-dependent ADP-ribosyltransferase domain which transfers ADP-ribose from NAD onto substrates such as the Ras GTPases and vimentin. Ezrin/radixin/moesin (ERM) proteins have recently been identified as high-affinity substrates for ADP-ribosylation by ExoS. Expression of ExoS in HeLa cells led to a loss of phosphorylation of ERM proteins that was dependent upon the expression of ADP-ribosyltransferase activity. MALDI-MS and site-directed mutagenesis studies determined that ExoS ADP-ribosylated moesin at three C-terminal arginines (Arg553, Arg560 and Arg563), which cluster Thr558, the site of phosphorylation by protein kinase C and Rho kinase. ADP-ribosylated-moesin was a poor target for phosphorylation by protein kinase C and Rho kinase, which showed that ADP-ribosylation directly inhibited ERM phosphorylation. Expression of dominant active-moesin inhibited cell rounding elicited by ExoS, indicating that moesin is a physiological target in cultured cells. This is the first demonstration that a bacterial toxin inhibits the phosphorylation of a mammalian protein through ADP-ribosylation. These data explain how the expression of the ADP-ribosylation of ExoS modifies the actin cytoskeleton and indicate that ExoS possesses redundant enzymatic activities to depolymerize the actin cytoskeleton.
Insights
Pseudomonas aeruginosa toxin ExoS ADP-ribosylates moesin, inhibiting its phosphorylation and altering the actin cytoskeleton. This reveals a novel mechanism of bacterial toxin action on host cell proteins.
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Pseudomonas aeruginosa infections pose significant threats, especially to cystic fibrosis patients.
- Type III secreted toxins, including ExoS, are key virulence factors in P. aeruginosa pathogenesis.
- ExoS possesses distinct Rho GTPase Activating Protein (GAP) and ADP-ribosyltransferase domains.
Purpose of the Study:
- To investigate the mechanism by which ExoS modifies the host cell actin cytoskeleton.
- To identify and characterize the substrates of ExoS's ADP-ribosyltransferase activity.
- To determine the functional consequences of ExoS-mediated ADP-ribosylation on host cell proteins.
Main Methods:
- Expression of ExoS in HeLa cells.
- Mass spectrometry (MALDI-MS) for substrate identification.
- Site-directed mutagenesis to pinpoint ADP-ribosylation sites.
- Analysis of protein phosphorylation and cell morphology.
Main Results:
- Ezrin/radixin/moesin (ERM) proteins were identified as high-affinity ExoS substrates.
- ExoS ADP-ribosylated moesin at Arg553, Arg560, and Arg563, sites near the phosphorylation target Thr558.
- ADP-ribosylation of moesin inhibited its phosphorylation by protein kinase C and Rho kinase.
- Expression of a constitutively active moesin variant partially rescued ExoS-induced cell rounding.
Conclusions:
- ExoS directly inhibits ERM protein phosphorylation through ADP-ribosylation, a novel bacterial toxin mechanism.
- Moesin is a physiological target of ExoS, and its altered phosphorylation impacts the actin cytoskeleton.
- ExoS utilizes enzymatic activities to depolymerize the actin cytoskeleton, contributing to P. aeruginosa virulence.
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