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Published on: November 7, 2013
Structure of the periplasmic stress response protein CpxP
Gina L Thede1, David C Arthur, Ross A Edwards
1Department of Biochemistry, School of Molecular and Systems Medicine, University of Alberta, Edmonton, Alberta, Canada.
Abstract:
CpxP is a novel bacterial periplasmic protein with no homologues of known function. In gram-negative enteric bacteria, CpxP is thought to interact with the two-component sensor kinase, CpxA, to inhibit induction of the Cpx envelope stress response in the absence of protein misfolding. CpxP has also been shown to facilitate DegP-mediated proteolysis of misfolded proteins. Six mutations that negate the ability of CpxP to function as a signaling protein are localized in or near two conserved LTXXQ motifs that define a class of proteins with similarity to CpxP, Pfam PF07813. To gain insight into how these mutations might affect CpxP signaling and/or proteolytic adaptor functions, the crystal structure of CpxP from Escherichia coli was determined to 2.85-Å resolution. The structure revealed an antiparallel dimer of intertwined α-helices with a highly basic concave surface. Each protomer consists of a long, hooked and bent hairpin fold, with the conserved LTXXQ motifs forming two diverging turns at one end. Biochemical studies demonstrated that CpxP maintains a dimeric state but may undergo a slight structural adjustment in response to the inducing cue, alkaline pH. Three of the six previously characterized cpxP loss-of-function mutations, M59T, Q55P, and Q128H, likely result from a destabilization of the protein fold, whereas the R60Q, D61E, and D61V mutations may alter intermolecular interactions.
Insights
The bacterial protein CpxP, crucial for envelope stress response, forms a dimer. Its structure reveals how mutations impact its signaling and protein-degrading functions.
Area of Science:
- Bacterial protein structure and function
- Molecular mechanisms of cellular stress response
- Protein-protein interactions in prokaryotes
Background:
- CpxP is a periplasmic protein in gram-negative bacteria with an unknown function.
- It interacts with CpxA to regulate the Cpx envelope stress response.
- CpxP also aids DegP in degrading misfolded proteins.
Purpose of the Study:
- To understand how mutations affect CpxP's signaling and adaptor functions.
- To elucidate the structural basis of CpxP's role in the Cpx pathway.
Main Methods:
- X-ray crystallography of CpxP from Escherichia coli at 2.85-Å resolution.
- Biochemical studies to assess dimerization and response to pH changes.
- Analysis of six loss-of-function mutations in relation to conserved motifs.
Main Results:
- The crystal structure reveals CpxP as an antiparallel dimer with intertwined α-helices and a basic concave surface.
- Conserved LTXXQ motifs are located at the turns of a hairpin fold.
- CpxP exists as a dimer and may slightly change conformation at alkaline pH.
- Mutations likely destabilize the protein fold or affect intermolecular interactions.
Conclusions:
- The dimeric structure of CpxP provides insights into its function in the Cpx envelope stress response.
- Specific mutations disrupt CpxP function by altering protein stability or interactions.
- Structural and biochemical data advance understanding of bacterial stress response mechanisms.
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