Mutagenesis and modeling to predict structural and functional characteristics of the Staphylococcus aureus MepA
Bryan D Schindler1, Diixa Patel, Susan M Seo
1John D. Dingell Department of Veterans Affairs Medical Center, Detroit, Michigan, USA.
Abstract:
MepA is a multidrug and toxin extrusion (MATE) family protein and the only MATE protein encoded within the Staphylococcus aureus genome. Structural data for MATE proteins are limited to a single high-resolution example, NorM of Vibrio cholerae. Substitution mutations were created in MepA using gradient plates containing both a substrate and reserpine as an efflux pump inhibitor. Site-directed mutagenesis of plasmid-based mepA was used to reproduce these mutations, as well as unique or low-frequency mutations identified in mepA-overexpressing clinical strains, and to mutagenize conserved acidic residues. The effect of these changes on protein function was quantitated in a norA-disrupted host strain by susceptibility testing with and without inhibitors and by determining the proficiency of ethidium efflux. Up-function substitutions clustered in the carboxy half of MepA, near the cytoplasmic face of the protein. Repeated application of the same gradient plate conditions frequently reproduced identical substitution mutations, suggesting that individual residues are required for interaction with specific substrates. Acidic residues critical to protein function were identified in helices 4 and 5. In silico modeling revealed an outward-facing molecule, with helices 1, 2, 4, 7, 8, and 10 having contact with a central cavity that may represent a substrate translocation pathway. Functionally important residues within this cavity included S81, A161, M291, and A302. These data provide a critical starting point for understanding how MATE multidrug efflux proteins function and will be useful in refining crystallographic data when they are available.
Insights
MepA, a Staphylococcus aureus multidrug and toxin extrusion (MATE) protein, was studied using mutagenesis. Key substitutions enhancing MepA function were identified, providing insights into MATE protein mechanisms.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- MepA is the sole multidrug and toxin extrusion (MATE) family protein in Staphylococcus aureus.
- High-resolution structural data for MATE proteins are scarce, with only NorM from Vibrio cholerae available.
Purpose of the Study:
- To investigate the functional impact of mutations in MepA, a key efflux pump in Staphylococcus aureus.
- To identify specific residues and regions within MepA crucial for its substrate transport activity.
Main Methods:
- Substitution mutations were introduced into MepA using gradient plates and site-directed mutagenesis.
- Mutant MepA proteins were functionally assessed in a norA-disrupted host strain via susceptibility testing and ethidium efflux assays.
- In silico modeling was employed to predict the structure and substrate translocation pathway of MepA.
Main Results:
- Up-function substitutions in MepA were found to cluster in the carboxy-terminal half, near the cytoplasmic side.
- Specific acidic residues in helices 4 and 5 were identified as critical for MepA function.
- In silico modeling suggested an outward-facing conformation with key residues (S81, A161, M291, A302) lining a potential substrate translocation pathway.
Conclusions:
- Mutations enhancing MepA activity provide a foundation for understanding MATE protein function.
- Identified functionally important residues and structural insights can guide future crystallographic studies of MepA.
- This research offers a starting point for developing strategies targeting MATE-mediated multidrug resistance.
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