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Published on: March 30, 2010
A bacterial type III effector family uses the papain-like hydrolytic activity to arrest the host cell cycle
Qing Yao1, Jixin Cui, Yongqun Zhu
1National Institute of Biological Sciences, Beijing 102206, China.
Abstract:
Pathogenic bacteria deliver effector proteins into host cells through the type III secretion apparatus to modulate the host function. We identify a family of proteins, homologous to the type III effector Cif from enteropathogenic Escherichia coli, in pathogens including Yersinia, Photorhabdus, and Burkholderia that contain functional type III secretion systems. Like Cif, this family of proteins is capable of arresting the host cell cycle at G(2)/M. Structure of one of the family members, Cif homolog in Burkholderia pseudomallei (CHBP), reveals a papain-like fold and a conserved Cys-His-Gln catalytic triad despite the lack of primary sequence identity. For CHBP and Cif, only the putative catalytic Cys is susceptible to covalent modification by E-64, a specific inhibitor of papain-like cysteine proteases. Unlike papain-like enzymes where the S2 site is the major determinant of cleavage-site specificity, CHBP has a characteristic negatively charged pocket occupying surface areas corresponding to the S1/S1' site in papain-like proteases. The negative charge is provided by a conserved aspartate, and the pocket best fits an arginine, as revealed by molecular docking analysis. Mutation analysis establishes the essential role of the catalytic triad and the negatively charged pocket in inducing cell cycle arrest in host cells. Our results demonstrate that bacterial pathogens have evolved a unique papain-like hydrolytic activity to block the normal host cell cycle progression.
Insights
Bacterial pathogens use a unique papain-like enzyme to inject proteins that arrest the host cell cycle. This mechanism, involving a catalytic triad and a charged pocket, is crucial for bacterial virulence.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- Pathogenic bacteria utilize type III secretion systems to deliver effector proteins into host cells, modulating host functions.
- The effector Cif from enteropathogenic Escherichia coli is known to arrest the host cell cycle.
Purpose of the Study:
- To identify and characterize a family of type III secreted effectors homologous to Cif.
- To elucidate the structure and function of these effectors in host cell cycle modulation.
Main Methods:
- Sequence homology searches identified Cif homologs in various bacterial pathogens.
- Structural analysis of Burkholderia pseudomallei Cif homolog (CHBP) using X-ray crystallography.
- Biochemical assays, including E-64 inhibition and site-directed mutagenesis.
- Molecular docking to analyze substrate-binding pocket interactions.
Main Results:
- A family of Cif homologs was identified in Yersinia, Photorhabdus, and Burkholderia species.
- CHBP shares a papain-like fold and a conserved Cys-His-Gln catalytic triad with Cif.
- CHBP and Cif activity is inhibited by E-64, targeting the catalytic cysteine.
- CHBP possesses a unique negatively charged pocket, interacting with arginine, essential for cell cycle arrest.
Conclusions:
- Bacterial pathogens have evolved papain-like enzymes with unique substrate specificities to manipulate host cell cycle progression.
- The catalytic triad and the negatively charged pocket are critical for the effector's function in inducing G(2)/M cell cycle arrest.
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