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β,β-Dimethylacrylalkannin Restores Colistin Efficacy Against mcr- and TCS-Mediated Resistant Gram-Negative Bacteria
Yongqing Liu1, Huangwei Song2, Muchen Zhang3
1National Key Laboratory of Veterinary Public Health and Safety, College of Veterinary Medicine, China Agricultural University, Beijing 100193, China.
Abstract:
Background: The reintroduction of colistin has led to the rapid emergence of colistin-resistant strains, significantly diminishing its therapeutic efficacy. This presents a need for effective adjuvants to restore colistin efficacy. Approach: We screened the colistin adjuvants through a high-throughput method and then evaluated their synergistic effects and underlying mechanisms. Results: We identified β,β-dimethylacrylalkannin (β,β-Dim), a naphthoquinone compound derived from Lithospermum erythrorhizon, as a potent colistin adjuvant (fractional inhibitory concentration index (FICI) < 0.5). β,β-Dim enhanced colistin activity against 4 of 6 susceptible strains and all 18 colistin-resistant strains carrying either plasmid-borne mcr genes (mcr-1, mcr-3, mcr-8, and mcr-9) or chromosomal two-component system (TCS) mutations (pmrA/B, phoP, and mgrB). These strains included Klebsiella pneumoniae, Escherichia coli, Salmonella Typhimurium, Pseudomonas aeruginosa, and Acinetobacter baumannii. The combination reduced the minimum inhibitory concentrations (MICs) of colistin by 4-1024-fold (from 512 to ≤2 µg/mL). Mechanistically, colistin-mediated outer membrane permeabilization facilitates β,β-Dim entry. Once internalized, β,β-Dim interacts with cytoplasmic membrane phospholipids and disrupts membrane biofunction. Further analysis showed that LPS transport and efflux pump activity were impaired, leading to LPS accumulation in the cytoplasmic membrane and increased intracellular colistin content. These processes elevated reactive oxygen species (ROS) production and markedly reduced ATP levels. In a murine infection model, β,β-Dim (2 mg/kg) combined with colistin (0.2 mg/kg) markedly increased survival from 20% (colistin alone) to 80%. Conclusions: These findings highlight that β,β-Dim combined with colistin is a promising therapeutic strategy for infections caused by colistin-resistant pathogens.
Insights
A novel compound, β,β-dimethylacrylalkannin (β,β-Dim), acts as a potent colistin adjuvant. This combination therapy shows promise in restoring colistin efficacy against resistant bacteria and improving survival rates in infection models.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Colistin resistance is rapidly emerging, reducing treatment options.
- There is an urgent need for effective adjuvants to restore colistin's therapeutic efficacy.
Purpose of the Study:
- To identify and characterize novel colistin adjuvants.
- To evaluate the synergistic effects and mechanisms of action of identified adjuvants.
Main Methods:
- High-throughput screening for colistin adjuvants.
- Evaluating synergistic effects using fractional inhibitory concentration index (FICI).
- Investigating mechanisms of action including membrane permeabilization, LPS transport, efflux pump activity, ROS production, and ATP levels.
- Assessing efficacy in a murine infection model.
Main Results:
- β,β-dimethylacrylalkannin (β,β-Dim) identified as a potent colistin adjuvant (FICI < 0.5).
- β,β-Dim restored colistin activity against susceptible and resistant strains (including those with mcr genes and TCS mutations).
- Combination therapy significantly reduced colistin MICs and improved survival in a murine model (80% vs. 20% with colistin alone).
Conclusions:
- β,β-Dim is a promising adjuvant to combat colistin-resistant bacterial infections.
- The combination therapy enhances colistin efficacy through multiple mechanisms, including membrane disruption and increased intracellular drug accumulation.
- This strategy offers a potential solution for challenging infections caused by multidrug-resistant Gram-negative bacteria.
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