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Multiplex PCR Assay for Typing of Staphylococcal Cassette Chromosome Mec Types I to V in Methicillin-resistant Staphylococcus aureus
Published on: September 5, 2013
Three-dimensional structure of MecI. Molecular basis for transcriptional regulation of staphylococcal methicillin
Raquel García-Castellanos1, Aniebrys Marrero, Goretti Mallorquí-Fernández
1Institut de Biologia Molecular de Barcelona, Centre d'Investigació i Desenvolupament/Consell Superior d'Investigacions Científiques C/Jordi Girona, 18-26, 08034 Barcelona, Spain.
Abstract:
Methicillin-resistant Staphylococcus aureus is the main cause of nosocomial and community-onset infections that affect millions of people worldwide. Some methicillin-resistant Staphylococcus aureus infections have become essentially untreatable by beta-lactams because of acquired molecular machineries enabling antibiotic resistance. Evasion from methicillin challenge is mainly achieved by the synthesis of a penicillin-binding protein of low affinity for antibiotics, MecA, that replaces regular penicillin-binding proteins in cell wall turnover when these have been inactivated by antibiotics. MecA synthesis is regulated by a signal transduction system consisting of the sensor/transducer MecR1 and the 14-kDa transcriptional repressor MecI (also known as methicillin repressor) that constitutively blocks mecA transcription. The three-dimensional structure of MecI reveals a dimer of two independent winged helix domains, each of which binds a palindromic DNA-operator half site, and two intimately intertwining dimerization domains of novel spiral staircase architecture, held together by a hydrophobic core. Limited proteolytic cleavage by cognate MecR1 within the dimerization domains results in loss of dimer interaction surface, dissociation, and repressor release, which triggers MecA synthesis. Structural information on components of the MecA regulatory pathway, in particular on methicillin repressor, the ultimate transcriptional trigger of mecA-encoded methicillin resistance, is expected to lead to the development of new antimicrobial drugs.
Insights
Methicillin-resistant Staphylococcus aureus (MRSA) infections are a global threat. Understanding the structure of the methicillin repressor (MecI) provides insights into antibiotic resistance mechanisms.
Area of Science:
- Microbiology
- Structural Biology
- Drug Discovery
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) causes widespread infections.
- Antibiotic resistance in MRSA limits treatment options, particularly with beta-lactams.
- The MecA protein confers methicillin resistance by altering cell wall synthesis.
Purpose of the Study:
- To elucidate the three-dimensional structure of the methicillin repressor (MecI).
- To understand the regulatory mechanism of MecA synthesis.
- To identify potential targets for novel antimicrobial drug development.
Main Methods:
- X-ray crystallography to determine the MecI structure.
- Analysis of MecI's DNA-binding and dimerization domains.
- Investigation of MecR1-mediated cleavage of MecI.
Main Results:
- MecI forms a dimer with unique spiral staircase dimerization domains and winged helix DNA-binding domains.
- MecI binds to palindromic DNA operator sites.
- Proteolytic cleavage by MecR1 disrupts MecI dimerization, releasing the repressor and triggering MecA synthesis.
Conclusions:
- Structural insights into MecI provide a basis for understanding MRSA's transcriptional regulation.
- The MecI-MecR1 interaction is a key regulatory step in methicillin resistance.
- Targeting the MecI regulatory pathway could lead to new strategies against MRSA infections.
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