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Development and spread of bacterial resistance to antimicrobial agents: an overview
1Nosocomial Pathogens Laboratory Branch, Hospital Infections Program, Centers for Disease Control and Prevention, Atlanta, GA 30333, USA. fnt1@cdc.gov
Abstract:
Resistance to antimicrobial agents is emerging in a wide variety of nosocomial and community-acquired pathogens. The emergence and spread of multiply resistant organisms represent the convergence of a variety of factors that include mutations in common resistance genes that extend their spectrum of activity, the exchange of genetic information among microorganisms, the evolution of selective pressures in hospitals and communities that facilitate the development and spread of resistant organisms, the proliferation and spread of multiply resistant clones of bacteria, and the inability of some laboratory testing methods to detect emerging resistance phenotypes. Twenty years ago, bacteria that were resistant to antimicrobial agents were easy to detect in the laboratory because the concentration of drug required to inhibit their growth was usually quite high and distinctly different from that of susceptible strains. Newer mechanisms of resistance, however, often result in much more subtle shifts in bacterial population distributions. Perhaps the most difficult phenotypes to detect, as shown in several proficiency testing surveys, are decreased susceptibility to beta-lactams in pneumococci and decreased susceptibility to vancomycin in staphylococci. In summary, emerging resistance has required adaptations and modifications of laboratory diagnostic techniques, empiric anti-infective therapy for such diseases as bacterial meningitis, and infection control measures in health care facilities of all kinds. Judicious use is imperative if we are to preserve our arsenal of antimicrobial agents into the next decade.
Insights
Antimicrobial resistance is rising due to genetic changes and selective pressures, making detection difficult. Prudent antimicrobial use is vital to preserve treatment effectiveness.
Area of Science:
- Microbiology
- Infectious Diseases
- Clinical Diagnostics
Background:
- Increasing prevalence of antimicrobial resistance in both hospital-acquired and community-acquired pathogens.
- Resistance mechanisms are evolving, leading to multiply resistant organisms.
- Traditional laboratory methods struggle to detect emerging resistance phenotypes.
Purpose of the Study:
- To highlight the multifaceted factors contributing to the emergence and spread of antimicrobial resistance.
- To discuss the challenges in detecting novel resistance mechanisms in bacteria.
- To emphasize the need for adapting diagnostic techniques and clinical practices.
Main Methods:
- Review of factors contributing to antimicrobial resistance.
- Analysis of challenges in laboratory detection of resistance.
- Discussion of implications for clinical practice and infection control.
Main Results:
- Emergence of resistance is driven by genetic mutations, horizontal gene transfer, and selective pressures.
- New resistance mechanisms present subtle detection challenges, particularly for beta-lactam resistance in pneumococci and vancomycin resistance in staphylococci.
- Existing laboratory methods may fail to identify these emerging resistance phenotypes.
Conclusions:
- Emerging antimicrobial resistance necessitates modifications in laboratory diagnostics, empiric therapy, and infection control strategies.
- Judicious use of antimicrobial agents is crucial for preserving their efficacy.
- Continued vigilance and adaptation are required to combat the growing threat of resistant pathogens.