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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Exploring the potential of bis(thiazol-5-yl)phenylmethane derivatives as novel candidates against genetically defined
Povilas Kavaliauskas1,2,3,4, Waldo Acevedo5, Andrew Garcia1
1Division of Infectious Diseases, Department of Medicine, Weill Cornell Medicine of Cornell University, New York, NY, United States of America.
Abstract:
Antimicrobial resistance (AMR) represents an alarming global challenge to public health. Infections caused by multidrug-resistant Staphylococcus aureus (S. aureus) pose an emerging global threat. Therefore, it is crucial to develop novel compounds with promising antimicrobial activity against S. aureus especially those with challenging resistance mechanisms and biofilm formation. Series of bis(thiazol-5-yl)phenylmethane derivatives were evaluated against drug-resistant Gram-positive bacteria. The screening revealed an S. aureus-selective mechanism of bis(thiazol-5-yl)phenylmethane derivatives (MIC 2-64 μg/mL), while significantly lower activity was observed with vancomycin-resistant Enterococcus faecalis (MIC 64 μg/mL) (p<0.05). The most active phenylmethane-based (p-tolyl) derivative, 23a, containing nitro and dimethylamine substituents, and the naphthalene-based derivative, 28b, harboring fluorine and nitro substituents, exhibited strong, near MIC bactericidal activity against S. aureus with genetically defined resistance phenotypes such as MSSA, MRSA, and VRSA and their biofilms. The in silico modeling revealed that most promising compounds 23a and 28b were predicted to bind S. aureus MurC ligase. The 23a and 28b formed bonds with MurC residues at binding site, specifically Ser12 and Arg375, indicating consequential interactions essential for complex stability. The in vitro antimicrobial activity of compound 28b was not affected by the addition of 50% serum. Finally, all tested bis(thiazol-5-yl)phenylmethane derivatives showed favorable cytotoxicity profiles in A549 and THP-1-derived macrophage models. These results demonstrated that bis(thiazol-5-yl)phenylmethane derivatives 23a and 28b could be potentially explored as scaffolds for the development of novel candidates targeting drug-resistant S. aureus. Further studies are also warranted to understand in vivo safety, efficacy, and pharmacological bioavailability of bis(thiazol-5-yl)phenylmethane derivatives.
Insights
Novel bis(thiazol-5-yl)phenylmethane derivatives show potent activity against drug-resistant Staphylococcus aureus (S. aureus) and biofilms. Compounds 23a and 28b target S. aureus MurC ligase, offering a promising scaffold for new antimicrobial therapies.
Area of Science:
- Medicinal Chemistry
- Microbiology
- Computational Chemistry
Background:
- Antimicrobial resistance (AMR) is a critical global health threat, particularly infections by multidrug-resistant Staphylococcus aureus (S. aureus).
- Developing novel agents effective against resistant S. aureus strains and their biofilms is essential.
Purpose of the Study:
- To synthesize and evaluate novel bis(thiazol-5-yl)phenylmethane derivatives for antimicrobial activity against drug-resistant bacteria.
- To investigate the mechanism of action and potential therapeutic applications of promising derivatives against S. aureus.
Main Methods:
- Synthesis and antimicrobial screening of bis(thiazol-5-yl)phenylmethane derivatives against Gram-positive bacteria, including S. aureus.
- Evaluation of activity against S. aureus biofilms and specific resistant phenotypes (MSSA, MRSA, VRSA).
- In silico molecular modeling to predict target binding (S. aureus MurC ligase) and in vitro cytotoxicity assessment.
Main Results:
- Bis(thiazol-5-yl)phenylmethane derivatives exhibited selective activity against S. aureus (MIC 2-64 μg/mL).
- Compounds 23a and 28b demonstrated potent bactericidal activity against S. aureus strains and their biofilms, including MRSA and VRSA.
- In silico analysis predicted binding of 23a and 28b to S. aureus MurC ligase, with favorable cytotoxicity profiles.
Conclusions:
- Bis(thiazol-5-yl)phenylmethane derivatives 23a and 28b show significant potential as scaffolds for developing new treatments against drug-resistant S. aureus.
- Further research into the in vivo efficacy and safety of these compounds is warranted.
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