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Updated: Dec 28, 2025

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Published on: May 1, 2017
Rapid Freezing Enables Aminoglycosides To Eradicate Bacterial Persisters via Enhancing Mechanosensitive Channel
Yanna Zhao1, Boyan Lv1, Fengqi Sun1
1Provincial University Key Laboratory of Cellular Stress Response and Metabolic Regulation, Key Laboratory of Optoelectronic Science and Technology for Medicine of Ministry of Education, College of Life Sciences, Fujian Normal University, Fuzhou City, Fujian Province, China.
Abstract:
Bacterial persisters exhibit noninherited antibiotic tolerance and are linked to the recalcitrance of bacterial infections. It is very urgent but also challenging to develop antipersister strategies. Here, we report that 10-s freezing with liquid nitrogen dramatically enhances the bactericidal action of aminoglycoside antibiotics by 2 to 6 orders of magnitude against many Gram-negative pathogens, with weaker potentiation effects on Gram-positive bacteria. In particular, antibiotic-tolerant Escherichia coli and Pseudomonas aeruginosa persisters-which were prepared by treating exponential-phase cells with ampicillin, ofloxacin, the protonophore cyanide m-chlorophenyl hydrazone (CCCP), or bacteriostatic antibiotics-can be effectively killed. We demonstrated, as a proof of concept, that freezing potentiated the aminoglycosides' killing of P. aeruginosa persisters in a mouse acute skin wound model. Mechanistically, freezing dramatically increased the bacterial uptake of aminoglycosides regardless of the presence of CCCP, indicating that the effects are independent of the proton motive force (PMF). In line with these results, we found that the effects were linked to freezing-induced cell membrane damage and were attributable, at least partly, to the mechanosensitive ion channel MscL, which was able to directly mediate such freezing-enhanced aminoglycoside uptake. In view of these results, we propose that the freezing-induced aminoglycoside potentiation is achieved by freezing-induced cell membrane destabilization, which, in turn, activates the MscL channel, which is able to effectively take up aminoglycosides in a PMF-independent manner. Our work may pave the way for the development of antipersister strategies that utilize the same mechanism as freezing but do so without causing any injury to animal cells.IMPORTANCE Antibiotics have long been used to successfully kill bacterial pathogens, but antibiotic resistance/tolerance usually has led to the failure of antibiotic therapy, and it has become a severe threat to human health. How to improve the efficacy of existing antibiotics is of importance for combating antibiotic-resistant/tolerant pathogens. Here, we report that 10-s rapid freezing with liquid nitrogen dramatically enhanced the bactericidal action of aminoglycoside antibiotics by 2 to 6 orders of magnitude against many bacterial pathogens in vitro and also in a mouse skin wound model. In particular, such combined treatment was able to effectively kill persister cells of Escherichia coli and Pseudomonas aeruginosa, which are per se tolerant of conventional treatment with bactericidal antibiotics for several hours. We also demonstrated that freezing-induced aminoglycoside potentiation was apparently linked to freezing-induced cell membrane damage that may have activated the mechanosensitive ion channel MscL, which, in turn, was able to effectively uptake aminoglycoside antibiotics in a proton motive force-independent manner. Our report sheds light on the development of a new strategy against bacterial pathogens by combining existing antibiotics with a conventional physical treatment or with MscL agonists.
Insights
Rapid freezing dramatically boosts aminoglycoside antibiotic effectiveness against bacterial persisters, enhancing bacterial killing by up to six orders of magnitude. This novel strategy targets antibiotic tolerance without harming animal cells, offering new hope against persistent infections.
Area of Science:
- Microbiology
- Antibiotic Resistance
- Cell Biology
Background:
- Bacterial persisters contribute to persistent infections and antibiotic treatment failure.
- Developing effective antipersister strategies is crucial for combating recalcitrant infections.
Purpose of the Study:
- To investigate the potential of rapid freezing to enhance aminoglycoside antibiotic efficacy against bacterial persisters.
- To elucidate the mechanism behind freezing-induced potentiation of aminoglycoside activity.
Main Methods:
- Exposure of bacterial persisters to liquid nitrogen for 10 seconds followed by aminoglycoside treatment.
- Assessment of bactericidal activity against Gram-negative and Gram-positive pathogens.
- Evaluation in a mouse acute skin wound model.
- Analysis of aminoglycoside uptake and the role of the proton motive force (PMF) and the MscL channel.
Main Results:
- 10-second liquid nitrogen freezing enhanced aminoglycoside bactericidal action by 2–6 orders of magnitude against Gram-negative pathogens, including *Escherichia coli* and *Pseudomonas aeruginosa* persisters.
- Freezing significantly increased bacterial aminoglycoside uptake, independent of the PMF.
- The effect was linked to freezing-induced cell membrane damage and mediated by the mechanosensitive ion channel MscL.
Conclusions:
- Rapid freezing potentiates aminoglycoside antibiotics against bacterial persisters via PMF-independent aminoglycoside uptake, likely through MscL channel activation due to membrane damage.
- This approach offers a promising strategy for developing new antipersister therapies by combining antibiotics with physical treatments or MscL agonists.
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