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Structure Elucidation and Interaction Dynamics of MefA-MsrD Efflux Proteins in Streptococcus pneumoniae: Impact on
Sreeram Chandra Murthy Peela1, Soumya Basu2, Jyoti Sharma3
1Department of Microbiology, Jawaharlal Institute of Postgraduate Medical Education and Research (JIPMER), Puducherry 605006, India.
Abstract:
Macrolides are empirically used to treat bacterial community-acquired pneumonia (CAP). Streptococcus pneumoniae, being the major pathogen responsible for bacterial CAP with high mortality rates, express MefA-MsrD efflux pumps to hinder macrolide susceptibility. Despite its importance, the structural features of the efflux-protein complex and its impact on macrolide susceptibility have not yet been elucidated explicitly. Therefore, in the present study, combining homology, threading, and dynamics approaches, MefA and MsrD proteins in pathogenic S. pneumoniae were modeled. Both membrane (lipid-bilayer) and cytoplasmic (aqueous) environments were considered to simulate the MefA and MsrD proteins in their ideal cellular conditions followed by dynamics analyses. The simulated MefA structure represented a typical major facilitator superfamily protein structure with 13 transmembrane helices. MefA-MsrD interaction via clustering-based docking revealed low-energy conformers with stable intermolecular interactions. The higher clinical MIC value of azithromycin over erythromycin was reflected upon erythromycin eliciting stronger interactions (dissociation constant or k = ∼52 μM) with the cytoplasmic ATP-binding MsrD than azithromycin (k = ∼112 μM). The strong (binding energy = -132.1 ± 9.5 kcal/mol) and highly stable (root-mean-square fluctuation < 1.0 Å) physical association between MefA with MsrD was validated and was found to be unaffected by the antibiotic binding. Higher propensity of the macrolides to interact with MsrD than MefA established the importance of the former in macrolide susceptibility. Ours is probably the first report on the structural arrangements in the MefA-MsrD efflux complex and the macrolide susceptibility in S. pneumoniae. This study provides a novel lead for experimental explorations and efflux-pump inhibitor designs.
Insights
This study models the MefA-MsrD efflux pump in Streptococcus pneumoniae, revealing its structural basis for macrolide resistance. Understanding this complex is key for developing new treatments against bacterial community-acquired pneumonia.
Area of Science:
- Structural Biology
- Microbiology
- Computational Chemistry
Background:
- Macrolides are frontline treatments for bacterial community-acquired pneumonia (CAP).
- Streptococcus pneumoniae is a primary cause of CAP, often exhibiting macrolide resistance via MefA-MsrD efflux pumps.
- The precise structural mechanisms of MefA-MsrD and their influence on macrolide susceptibility remain unclear.
Purpose of the Study:
- To structurally model the MefA-MsrD efflux complex in S. pneumoniae.
- To investigate the complex's interaction with macrolide antibiotics.
- To elucidate the structural basis of macrolide resistance in S. pneumoniae.
Main Methods:
- Homology modeling, protein threading, and molecular dynamics simulations were employed.
- Simulations considered both membrane and cytoplasmic cellular environments.
- Clustering-based docking was used to analyze MefA-MsrD interactions and antibiotic binding.
Main Results:
- The MefA protein was modeled as a major facilitator superfamily protein with 13 transmembrane helices.
- Stable, low-energy conformations of the MefA-MsrD complex were identified.
- Erythromycin showed stronger interaction with MsrD than azithromycin, correlating with clinical MIC values.
- The MefA-MsrD association remained stable and was independent of antibiotic binding.
Conclusions:
- The MsrD component plays a critical role in determining macrolide susceptibility.
- This is the first report detailing the structural features of the MefA-MsrD efflux complex.
- Findings offer a foundation for experimental validation and the design of novel efflux pump inhibitors.
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