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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Characterization of a Bacteriophage-Derived Murein Peptidase for Elimination of Antibiotic-Resistant Staphylococcus
Ruth Keary, Marta Sanz-Gaitero, Mark J van Raaij
1Centre for Research in Advanced Therapeutic Engineering, Cork Institute of Technology, Bishopstown, Cork, Ireland. aidan.coffey@cit.ie.
Abstract:
Staphylococcus aureus is a major cause of infection in humans and animals, causing a wide variety of diseases, from local inflammations to fatal sepsis. The bacterium is commonly multi-drug resistant and thus many front-line antibiotics have been rendered ineffective for treating such infections. Research on murein/peptidoglycan hydrolases, derived from bacterial viruses (bacteriophages), has demonstrated that such proteins are attractive candidates for development as novel antibacterial agents for combatting Gram-positive pathogens. Here we review the research produced to-date on the bacteriophage-derived CHAPK murein peptidase. Initially, we sequenced and annotated the genome of anti-staphylococcal bacteriophage K and cloned the gene for the bacteriophage endolysin, a murein hydrolase which plays a role in cell killing during the bacteriophage life cycle. An highly active domain of the enzyme, a cysteine, histidine-dependent amido hydrolase/peptidase (CHAPK), was cloned, overexpressed in E. coli and purified. This CHAPK enzyme was demonstrated to rapidly lyse several strains of methicillin resistant S. aureus and both disrupted and prevented the formation of a staphylococcal biofilm. The staphylolytic activity of the peptidase was demonstrated in vivo using a mouse model, without adverse effects on the animals. The crystal structure of the enzyme was elucidated, revealing a calcium ion close to the active site. Site-directed mutagenesis indicated that this calcium ion is involved in the catalytic mechanism of the enzyme. The crystal structure of this enzyme is a valuable source of information for efficient engineering of this and similar CHAP-domain-containing proteins. Overall, the data collected to date on CHAPK has demonstrated its strong potential as a novel therapeutic candidate for treatment of staphylococcal infections and has provided us with insight into the fundamental enzymatic mechanisms of CHAP domain-containing peptidoglycan hydrolases.
Insights
Bacteriophage-derived CHAPK enzyme shows promise as a novel treatment for Staphylococcus aureus infections. This enzyme rapidly lyses antibiotic-resistant bacteria and disrupts biofilms, demonstrating therapeutic potential with no adverse effects in animal models.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Staphylococcus aureus is a significant cause of human and animal infections, often exhibiting multi-drug resistance.
- Conventional antibiotics are increasingly ineffective against resistant strains.
- Bacteriophage-derived murein/peptidoglycan hydrolases are promising candidates for novel antibacterial agents.
Purpose of the Study:
- To review research on the bacteriophage-derived CHAPK murein peptidase as a potential therapeutic agent.
- To characterize the enzymatic activity, structural properties, and in vivo efficacy of CHAPK.
- To elucidate the catalytic mechanism and inform engineering of CHAP domain-containing hydrolases.
Main Methods:
- Sequencing and annotation of anti-staphylococcal bacteriophage K genome.
- Cloning, overexpression, and purification of the CHAPK enzyme.
- In vitro lysis assays against S. aureus strains and biofilm disruption.
- In vivo efficacy testing in a mouse model.
- Elucidation of the crystal structure and site-directed mutagenesis.
Main Results:
- The CHAPK enzyme rapidly lysed multiple strains of methicillin-resistant S. aureus.
- CHAPK disrupted and prevented the formation of staphylococcal biofilms.
- In vivo studies in mice showed staphylolytic activity without adverse effects.
- The crystal structure revealed a calcium ion crucial for the enzyme's catalytic mechanism.
Conclusions:
- CHAPK demonstrates strong potential as a novel therapeutic candidate for staphylococcal infections.
- Understanding the enzyme's structure and mechanism aids in engineering similar proteins.
- CHAPK offers a promising alternative to conventional antibiotics for Gram-positive pathogens.
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