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Updated: Jul 19, 2026

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
The worldwide emergence of plasmid-mediated quinolone resistance
Ari Robicsek1, George A Jacoby, David C Hooper
1Massachusetts General Hospital, Boston, MA 02114-2696, USA.
Abstract:
Fluoroquinolone resistance is emerging in gram-negative pathogens worldwide. The traditional understanding that quinolone resistance is acquired only through mutation and transmitted only vertically does not entirely account for the relative ease with which resistance develops in exquisitely susceptible organisms, or for the very strong association between resistance to quinolones and to other agents. The recent discovery of plasmid-mediated horizontally transferable genes encoding quinolone resistance might shed light on these phenomena. The Qnr proteins, capable of protecting DNA gyrase from quinolones, have homologues in water-dwelling bacteria, and seem to have been in circulation for some time, having achieved global distribution in a variety of plasmid environments and bacterial genera. AAC(6')-Ib-cr, a variant aminoglycoside acetyltransferase capable of modifying ciprofloxacin and reducing its activity, seems to have emerged more recently, but might be even more prevalent than the Qnr proteins. Both mechanisms provide low-level quinolone resistance that facilitates the emergence of higher-level resistance in the presence of quinolones at therapeutic levels. Much remains to be understood about these genes, but their insidious promotion of substantial resistance, their horizontal spread, and their co-selection with other resistance elements indicate that a more cautious approach to quinolone use and a reconsideration of clinical breakpoints are needed.
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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