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Reversion to sensitivity explains limited transmission of resistance in a hospital pathogen
Kevin C Tracy1, Jordan McKaig2, Clare Kinnear3
1Department of Computational Medicine and Bioinformatics, University of Michigan.
Abstract:
Bacterial pathogens that are successful in hospital environments must survive times of intense antibiotic exposure and times of no antibiotic exposure. When these organisms are closely associated with human hosts, they must also transmit from one patient to another for the resistance to spread. The resulting evolutionary dynamics have, in some settings, led to rising levels of resistance in hospitals. Here, we focus on an important but understudied aspect of this dynamic: the loss of resistance when the resistant organisms evolve in environments where the antibiotic pressure is removed. Based on prior data, we hypothesize that resistance arising in the context of strong selection may carry a high cost and revert to sensitivity quickly once the selective pressure is removed. Conversely, resistant isolates that persist through times of no antibiotic pressure should carry a lower cost and revert less quickly. To test this hypothesis, we utilize a genetically diverse set of patient-derived, daptomycin-resistant Enterococcus faecium isolates that include cases of both de novo emergence of resistance within patients and putatively transmitted resistance. Both of these sets of strains have survived periods of antibiotic exposure, but only putatively transmitted resistant strains have survived extended periods without antibiotic exposure. These strains were then allowed to evolve in antibiotic free laboratory conditions. We find that putatively transmitted resistant strains tended to have lower level resistance but that evolution in antibiotic-free conditions resulted in minimal loss of resistance. In contrast, resistance that arose de novo within patients was higher level but exhibited greater declines in resistance in vitro. Sequencing of the experimentally evolved isolates revealed that reversal of high level resistance resulted from evolutionary pathways that were frequently genetically associated with the unique resistance mutations of that strain. Thus, the rapid reversal of high-level resistance was associated with accessible evolutionary pathways where an increase in fitness is associated with decreased resistance. We describe how this rapid loss of resistance may limit the spread of resistance within the hospital and shape the diversity of resistance phenotypes across patients.
Insights
Hospital bacteria evolve resistance to antibiotics. When antibiotic pressure is removed, high-level resistance can rapidly decrease, potentially limiting the spread of resistant strains in healthcare settings.
Area of Science:
- Microbiology
- Evolutionary Biology
- Infectious Diseases
Background:
- Bacterial pathogens in hospitals face fluctuating antibiotic exposure and must transmit between patients.
- Rising antibiotic resistance in hospitals is a significant public health concern.
- The loss of antibiotic resistance in the absence of selective pressure is an understudied aspect of resistance dynamics.
Purpose of the Study:
- To investigate the hypothesis that antibiotic resistance with a high cost reverts to sensitivity more quickly when antibiotic pressure is removed.
- To compare the stability of daptomycin resistance in *Enterococcus faecium* that emerged *de novo* versus that which was putatively transmitted.
Main Methods:
- Utilized a diverse set of patient-derived, daptomycin-resistant *Enterococcus faecium* isolates.
- Compared strains with *de novo* resistance emergence to those with putatively transmitted resistance.
- Allowed resistant strains to evolve under antibiotic-free laboratory conditions and sequenced evolved isolates.
Main Results:
- Putatively transmitted resistant strains generally had lower resistance levels but showed minimal loss of resistance in antibiotic-free conditions.
- *De novo* resistant strains exhibited higher resistance levels but greater declines in resistance *in vitro*.
- Reversal of high-level resistance was linked to specific evolutionary pathways associated with resistance mutations, indicating accessible fitness trade-offs.
Conclusions:
- Rapid loss of high-level antibiotic resistance in *E. faecium* can occur via accessible evolutionary pathways when antibiotic pressure is removed.
- This rapid reversal may limit the spread of certain resistant strains within hospitals.
- The dynamics of resistance loss shape the diversity of resistance phenotypes observed across patients.
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