Chlamydia Outer Protein (Cop) B from Chlamydia pneumoniae possesses characteristic features of a type III secretion
David C Bulir1,2, Daniel A Waltho3,4, Christopher B Stone5,6
1M. G. DeGroote Institute for Infectious Disease Research, Faculty of Health Sciences and Department of Pathology and Molecular Medicine, McMaster University, Hamilton, ON, Canada. bulirdc@mcmaster.ca.
Background:
Chlamydia spp. are believed to use a conserved virulence factor called type III secretion (T3S) to facilitate the delivery of effector proteins from the bacterial pathogen to the host cell. Important early effector proteins of the type III secretion system (T3SS) are a class of proteins called the translocators. The translocator proteins insert into the host cell membrane to form a pore, allowing the injectisome to dock onto the host cell to facilitate translocation of effectors. CopB is a predicted hydrophobic translocator protein within the chlamydial T3SS.
Results:
In this study, we identified a novel interaction between the hydrophobic translocator, CopB, and the putative filament protein, CdsF. Furthermore, we identified a conserved PxLxxP motif in CopB (amino acid residues 166-171), which is required for interaction with its cognate chaperone, LcrH_1. Using a synthetic peptide derived from the chaperone binding motif of CopB, we were able to block the LcrH_1 interaction with either CopB or CopD; this CopB peptide was capable of inhibiting C. pneumoniae infection of HeLa cells at micromolar concentrations. An antibody raised against the N-terminus of CopB was able to inhibit C. pneumoniae infection of HeLa cells.
Conclusion:
The inhibition of the LcrH_1:CopB interaction with a cognate peptide and subsequent inhibition of host cell infection provides strong evidence that T3S is an essential virulence factor for chlamydial infection and pathogenesis. Together, these results support that CopB plays the role of a hydrophobic translocator.
Insights
Researchers found that blocking the interaction between Chlamydia pneumoniae
Area of Science:
- Microbiology
- Cell Biology
- Pathogen-Host Interactions
Background:
- Chlamydia spp. utilize type III secretion (T3S) to deliver effector proteins into host cells.
- Translocator proteins are crucial for T3SS function, forming pores in the host membrane.
- CopB is a predicted hydrophobic translocator protein in the chlamydial T3SS.
Purpose of the Study:
- To investigate the role of CopB in Chlamydia pneumoniae virulence.
- To identify interactions and functional motifs of the CopB translocator.
- To explore therapeutic strategies targeting the T3SS.
Main Methods:
- Investigated protein-protein interactions involving CopB.
- Identified and characterized a conserved PxLxxP motif in CopB.
- Utilized synthetic peptides and antibodies to inhibit bacterial infection.
- Assessed inhibition of Chlamydia pneumoniae infection in HeLa cells.
Main Results:
- A novel interaction between CopB and the filament protein CdsF was identified.
- A conserved PxLxxP motif in CopB essential for LcrH_1 chaperone interaction was found.
- A synthetic peptide targeting the LcrH_1:CopB interaction inhibited C. pneumoniae infection.
- An antibody against CopB also demonstrated inhibitory effects on host cell infection.
Conclusions:
- The LcrH_1:CopB interaction is critical for Chlamydia pneumoniae pathogenesis.
- Targeting T3S components like CopB offers a potential strategy to inhibit chlamydial infections.
- CopB functions as a hydrophobic translocator essential for T3SS-mediated virulence.
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