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Updated: Jan 21, 2026

Antibiotic Dereplication Using the Antibiotic Resistance Platform
Published on: October 17, 2019
Rational Combinations of Polymyxins with Other Antibiotics
Phillip J Bergen1, Nicholas M Smith2, Tyler B Bedard2
1Centre for Medicine Use and Safety, Monash University, Parkville Campus, Melbourne, VIC, Australia. Phillip.Bergen@monash.edu.
Abstract:
Combinations of antimicrobial agents are often used in the management of infectious diseases. Antimicrobial agents used as part of combination therapy are often selected empirically. As regrowth and the emergence of polymyxin (either colistin or polymyxin B) resistance has been observed with polymyxin monotherapy, polymyxin combination therapy has been suggested as a possible means by which to increase antimicrobial activity and reduce the development of resistance. This chapter provides an overview of preclinical and clinical investigations of CMS/colistin and polymyxin B combination therapy. In vitro data and animal model data suggests a potential clinical benefit with many drug combinations containing clinically achievable concentrations of polymyxins, even when resistance to one or more of the drugs in combination is present and including antibiotics normally inactive against Gram-negative organisms. The growing body of data on the emergence of polymyxin resistance with monotherapy lends theoretical support to a benefit with combination therapy. Benefits include enhanced bacterial killing and a suppression of polymyxin resistant subpopulations. However, the complexity of the critically ill patient population, and high rates of treatment failure and death irrespective of infection-related outcome make demonstrating a potential benefit for polymyxin combinations extremely challenging. Polymyxin combination therapy in the clinic remains a heavily debated and controversial topic. When combinations are selected, optimizing the dosage regimens for the polymyxin and the combinatorial agent is critical to ensure that the benefits outweigh the risk of the development of toxicity. Importantly, patient characteristics, pharmacokinetics, the site of infection, pathogen and resistance mechanism must be taken into account to define optimal and rational polymyxin combination regimens in the clinic.
Insights
Polymyxin combination therapy shows promise for increasing antimicrobial activity and reducing resistance. However, clinical benefits are challenging to prove due to patient complexity and high failure rates.
Area of Science:
- Infectious Diseases
- Pharmacology
- Microbiology
Background:
- Antimicrobial combinations are standard for infections, often chosen empirically.
- Polymyxin monotherapy can lead to resistance; combination therapy is explored to enhance activity and combat resistance.
- Polymyxins (colistin and polymyxin B) are crucial for multidrug-resistant Gram-negative infections.
Purpose of the Study:
- To review preclinical and clinical evidence for colistin and polymyxin B combination therapies.
- To assess the potential benefits and challenges of using polymyxin combinations.
- To highlight the importance of optimizing combination regimens.
Main Methods:
- Review of in vitro and animal model studies on polymyxin combinations.
- Analysis of clinical investigations into polymyxin combination therapy.
- Examination of factors influencing treatment outcomes and resistance development.
Main Results:
- In vitro and animal data suggest benefits for polymyxin combinations, even with pre-existing resistance.
- Combinations can enhance bacterial killing and suppress resistant subpopulations.
- Demonstrating clear clinical benefit is difficult due to patient complexity and high mortality.
Conclusions:
- Polymyxin combination therapy is debated but theoretically supported by resistance data.
- Optimizing dosage and considering patient/pathogen factors are critical for safe and effective use.
- Further research is needed to establish clear clinical guidelines for polymyxin combinations.
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