The worldwide emergence of plasmid-mediated quinolone resistance

Ari Robicsek1, George A Jacoby, David C Hooper

  • 1Massachusetts General Hospital, Boston, MA 02114-2696, USA.

Insights

Emerging fluoroquinolone resistance in gram-negative bacteria is linked to new plasmid-mediated genes like Qnr and AAC(6')-Ib-cr. These genes facilitate higher resistance levels, necessitating cautious antibiotic use and breakpoint reconsideration.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Fluoroquinolone resistance is a growing global health concern.
  • Traditional understanding of resistance (mutation, vertical transmission) is insufficient to explain rapid spread.
  • Strong association exists between quinolone resistance and resistance to other antimicrobial agents.

Purpose of the Study:

  • To investigate novel mechanisms of fluoroquinolone resistance.
  • To understand the role of plasmid-mediated genes in quinolone resistance.
  • To explore the implications of these resistance mechanisms for antimicrobial stewardship.

Main Methods:

  • Literature review and analysis of recent discoveries in antimicrobial resistance.
  • Examination of genetic mechanisms of quinolone resistance, including Qnr proteins and AAC(6 ext{'})-Ib-cr.
  • Assessment of the prevalence and spread of horizontally transferable resistance genes.

Main Results:

  • Discovery of plasmid-mediated genes (Qnr, AAC(6 ext{'})-Ib-cr) conferring quinolone resistance.
  • Qnr proteins protect DNA gyrase; AAC(6 ext{'})-Ib-cr modifies ciprofloxacin.
  • These genes provide low-level resistance, facilitating the emergence of high-level resistance.

Conclusions:

  • Horizontally transferable genes significantly contribute to fluoroquinolone resistance.
  • The spread of these genes necessitates a re-evaluation of quinolone usage guidelines.
  • Clinical breakpoints for fluoroquinolones may require reconsideration due to these resistance mechanisms.

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