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Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Mechanisms of antimicrobial resistance in bacteria
1Division of Healthcare Quality Promotion, Centers for Disease Control and Prevention, Atlanta, Georgia 30333, USA. fnt1@cdc.gov
Abstract:
The treatment of bacterial infections is increasingly complicated by the ability of bacteria to develop resistance to antimicrobial agents. Antimicrobial agents are often categorized according to their principal mechanism of action. Mechanisms include interference with cell wall synthesis (e.g., beta-lactams and glycopeptide agents), inhibition of protein synthesis (macrolides and tetracyclines), interference with nucleic acid synthesis (fluoroquinolones and rifampin), inhibition of a metabolic pathway (trimethoprim-sulfamethoxazole), and disruption of bacterial membrane structure (polymyxins and daptomycin). Bacteria may be intrinsically resistant to > or =1 class of antimicrobial agents, or may acquire resistance by de novo mutation or via the acquisition of resistance genes from other organisms. Acquired resistance genes may enable a bacterium to produce enzymes that destroy the antibacterial drug, to express efflux systems that prevent the drug from reaching its intracellular target, to modify the drug's target site, or to produce an alternative metabolic pathway that bypasses the action of the drug. Acquisition of new genetic material by antimicrobial-susceptible bacteria from resistant strains of bacteria may occur through conjugation, transformation, or transduction, with transposons often facilitating the incorporation of the multiple resistance genes into the host's genome or plasmids. Use of antibacterial agents creates selective pressure for the emergence of resistant strains. Herein 3 case histories-one involving Escherichia coli resistance to third-generation cephalosporins, another focusing on the emergence of vancomycin-resistant Staphylococcus aureus, and a third detailing multidrug resistance in Pseudomonas aeruginosa--are reviewed to illustrate the varied ways in which resistant bacteria develop.
Insights
Antimicrobial resistance in bacteria is a growing problem, driven by genetic changes and the overuse of antibiotics. Understanding these mechanisms is key to combating resistant infections.
Area of Science:
- Microbiology
- Molecular Biology
- Pharmacology
Background:
- Antimicrobial agents are classified by their mechanism of action, targeting bacterial cell walls, protein synthesis, nucleic acids, metabolic pathways, or membranes.
- Bacterial resistance to antimicrobials can be intrinsic or acquired through mutation or gene transfer.
Observation:
- Acquired resistance mechanisms include drug-destroying enzymes, efflux pumps, target modification, and bypass metabolic pathways.
- Genetic material transfer via conjugation, transformation, or transduction, often facilitated by transposons, leads to acquired resistance.
- Antibiotic use creates selective pressure, promoting the emergence and spread of resistant bacterial strains.
Findings:
- Case studies illustrate diverse resistance development: Escherichia coli (third-generation cephalosporins), Staphylococcus aureus (vancomycin), and Pseudomonas aeruginosa (multidrug resistance).
- These examples highlight the varied genetic and molecular strategies bacteria employ to evade antimicrobial agents.
Implications:
- Effective treatment of bacterial infections is challenged by escalating antimicrobial resistance.
- Further research into resistance mechanisms and responsible antibiotic stewardship is crucial for public health.
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