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Updated: Jul 19, 2025

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Pre-existing heterogeneity facilitates development of heteroresistance upon gene acquisition
Siddharth Jaggavarapu1,2,3, David A Hufnagel1,2,3, David S Weiss1,2,3
1Emory Antibiotic Resistance Center, Atlanta, GA, USA.
Abstract:
Antibiotic resistance causes 1.27 million global deaths annually and is predicted to worsen. Heteroresistance is a form of resistance in which only a minor and unstable subpopulation of cells of a bacterial isolate are resistant to a given antibiotic, and are therefore often undetected by clinical diagnostics. These infrequent and undetected resistant cells can be selected during antibiotic therapy, expand in number, and cause unexplained treatment failures. A major question is how heteroresistance evolves. Here, studying the antibiotic fosfomycin, we report that heteroresistance can develop from a pre-existing state of phenotypic heterogeneity in which an isolate harbors a subpopulation with increased minimum inhibitory concentration (MIC), but below the clinical resistance breakpoint. We call this phenomenon heterosusceptibility and demonstrate that acquisition of a resistance gene, fosA, increases the MIC of the subpopulation beyond the breakpoint, making the isolate heteroresistant. Conversely, deletion of fosA from a heteroresistant isolate led to reduction of the MIC of the resistant subpopulation without a loss of heterogeneity, thus generating heterosusceptibility. A survey of 103 carbapenem-resistant Enterobacterales (CRE) revealed that the Escherichia sp. isolates lacked the fosA gene and uniformly exhibited fosfomycin heterosusceptibility, whereas the Klebsiella and Enterobacter encoded the fosA gene and were almost exclusively heteroresistant. Furthermore, some isolates exhibited heterosusceptibility to other antibiotics, demonstrating that this is a widespread phenomenon. These results highlight a mechanism for the evolution of heteroresistance and suggest that surveillance for heterosusceptibility may facilitate the prediction of impending heteroresistance before it evolves.
Insights
Antibiotic resistance is a growing threat. This study reveals how minor resistant bacterial subpopulations, termed heteroresistance, can evolve from a state of increased susceptibility, called heterosusceptibility, potentially predicting future resistance.
Area of Science:
- Microbiology
- Evolutionary Biology
- Antimicrobial Resistance
Background:
- Antibiotic resistance leads to millions of deaths annually, with heteroresistance often undetected by diagnostics.
- Heteroresistance involves a small, unstable subpopulation of resistant cells, which can emerge during treatment and cause therapy failure.
Approach:
- Studied the evolution of antibiotic resistance using the antibiotic fosfomycin.
- Investigated the role of the resistance gene *fosA* in the development of heteroresistance and heterosusceptibility.
- Analyzed 103 carbapenem-resistant Enterobacterales (CRE) isolates to survey the prevalence of these phenomena.
Key Points:
- Heteroresistance can evolve from heterosusceptibility, a state where a subpopulation has a higher minimum inhibitory concentration (MIC) but remains susceptible.
- Acquisition of the *fosA* gene can convert heterosusceptibility to heteroresistance.
- Deletion of *fosA* from heteroresistant isolates can generate heterosusceptibility, indicating a reversible mechanism.
Conclusions:
- The study elucidates a key mechanism for the evolution of antibiotic heteroresistance.
- Observed widespread heterosusceptibility across different bacterial species and to various antibiotics.
- Suggests that monitoring for heterosusceptibility can help predict the emergence of heteroresistance.
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