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Functional analysis of predicted coiled-coil regions in the Escherichia coli K-12 O-antigen polysaccharide chain
Cristina L Marolda1, Emily R Haggerty, Michael Lung
1Department of Microbiology and Immunology, University of Western Ontario, London, Ontario, Canada N6A 5C1.
Abstract:
Wzz is a membrane protein that determines the chain length distribution of the O-antigen lipopolysaccharide by an unknown mechanism. Wzz proteins consist of two transmembrane helices separated by a large periplasmic loop. The periplasmic loop of Escherichia coli K-12 Wzz (244 amino acids from K65 to A308) was purified and found to be a monomer with an extended conformation, as determined by gel filtration chromatography and analytical ultracentrifugation. Circular dichroism showed that the loop has a 60% helical content. The Wzz periplasmic loop also contains three regions with predicted coiled coils. To probe the function of the predicted coiled coils, we constructed amino acid replacement mutants of the E. coli K-12 Wzz protein, which were designed so that the coiled coils could be separate without compromising the helicity of the individual molecules. Mutations in one of the regions, spanning amino acids 108 to 130 (region I), were associated with a partial defect in O-antigen chain length distribution, while mutants with mutations in the region spanning amino acids 209 to 223 (region III) did not have an apparent functional defect. In contrast, mutations in the region spanning amino acids 153 to 173 (region II) eliminated the Wzz function. This phenotype was associated with protein instability, most likely due to conformational changes caused by the amino acid replacements, which was confirmed by limited trypsin proteolysis. Additional mutagenesis based on a three-dimensional model of region I demonstrated that the amino acids implicated in function are all located at the same face of a predicted alpha-helix, suggesting that a coiled coil actually does not exist in this region. Together, our results suggest that the regions predicted to be coiled coils are important for Wzz function because they maintain the native conformation of the protein, although the existence of coiled coils could not be demonstrated experimentally.
Insights
The Wzz protein
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Wzz is a membrane protein crucial for O-antigen lipopolysaccharide chain length determination in bacteria.
- Its mechanism of action is largely unknown, with a large periplasmic loop being a key structural feature.
Purpose of the Study:
- To investigate the role of predicted coiled-coil regions within the Escherichia coli K-12 Wzz periplasmic loop in O-antigen chain length regulation.
- To understand how structural elements of the Wzz protein contribute to its function.
Main Methods:
- Purification and biophysical characterization (gel filtration, analytical ultracentrifugation, circular dichroism) of the Wzz periplasmic loop.
- Site-directed mutagenesis of predicted coiled-coil regions in the Wzz protein.
- Analysis of O-antigen chain length distribution and protein stability in Wzz mutants.
Main Results:
- Mutations in region II (amino acids 153-173) abolished Wzz function, leading to protein instability and conformational changes.
- Mutations in region I (amino acids 108-130) caused a partial defect in O-antigen chain length distribution.
- Mutations in region III (amino acids 209-223) showed no apparent functional defect.
- Further analysis suggested coiled coils may not exist in region I, but these regions are vital for maintaining protein conformation.
Conclusions:
- The periplasmic loop regions predicted to form coiled coils are essential for Wzz protein function, primarily by maintaining its native conformation.
- While direct evidence for coiled coils was not found, their predicted presence highlights the importance of specific structural arrangements for O-antigen chain length control.
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