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Polymyxin B Pharmacodynamics in the Hollow-Fiber Infection Model: What You See May Not Be What You Get
Michael Maynard1, G L Drusano1, Michael Vicchiarelli1
1Institute for Therapeutic Innovation, University of Florida, Orlando, Florida, USA.
Abstract:
Dose range studies for polymyxin B (PMB) regimens of 0.75 to 12 mg/kg given every 12 h (q12h) were evaluated for bacterial killing and resistance prevention against an AmpC-overexpressing Pseudomonas aeruginosa and a blaKPC-3-harboring Klebsiella pneumoniae in 10-day in vitro hollow-fiber models. An exposure-response was observed. But all regimens failed due to regrowth. Lower-dose regimens amplified isolates that expressed transient, lower-level adaptive resistance to PMB (MICs ≤ 4 mg/liter). Higher PMB dosages amplified isolates that expressed this resistance mechanism, a higher-MIC "moderately stable" adaptive resistance, and a higher-MIC stable resistance to PMB. Failure of the highest dose regimens was solely due to subpopulations that expressed the two higher-level resistances. Total and bioactive PMB concentrations in broth declined below targeted PK profiles within hours of treatment initiation and prior to bacterial regrowth. With treatment failure, the total PMB measured in bacteria was substantially higher than in broth. But the bioactive PMB in broth and bacteria were low to nondetectable. Together, these findings suggest a sequence of events for treatment failure of the clinical regimen. First, PMB concentrations in broth are diluted as PMB binds to bacteria, resulting in total and bioactive PMB in broth that is lower than targeted. Bacterial regrowth and treatment failure follow, with emergence of subpopulations that express transient lower-level adaptive resistance to PMB and possibly higher-level adaptive and stable resistances. Higher-dose PMB regimens can prevent the emergence of transient lower-level adaptive resistance, but they do not prevent treatment failure due to isolates that express higher-level resistance mechanisms.
Insights
Polymyxin B (PMB) regimens failed to prevent bacterial regrowth, even at higher doses. PMB binding to bacteria reduced drug levels, leading to resistance emergence and treatment failure in vitro.
Area of Science:
- Pharmacology
- Microbiology
- Infectious Diseases
Background:
- Polymyxin B (PMB) is a critical antibiotic for treating multidrug-resistant Gram-negative infections.
- Understanding PMB efficacy and resistance mechanisms is crucial for optimizing treatment strategies.
Purpose of the Study:
- To evaluate dose-ranging regimens of Polymyxin B (PMB) for bacterial killing and resistance prevention.
- To investigate the impact of PMB exposure on resistance development in Pseudomonas aeruginosa and Klebsiella pneumoniae.
Main Methods:
- Utilized 10-day in vitro hollow-fiber models with AmpC-overexpressing P. aeruginosa and KPC-3-harboring K. pneumoniae.
- Administered PMB regimens ranging from 0.75 to 12 mg/kg every 12 hours (q12h).
- Monitored bacterial killing, resistance emergence, and PMB concentrations (total and bioactive).
Main Results:
- All PMB regimens resulted in bacterial regrowth and treatment failure.
- Lower doses selected for transient, lower-level adaptive resistance, while higher doses selected for higher-level and stable resistances.
- PMB concentrations in broth declined rapidly due to bacterial binding, falling below targeted levels before regrowth.
Conclusions:
- PMB treatment failure is linked to drug concentration decline and subsequent emergence of resistant bacterial subpopulations.
- Higher PMB doses may prevent lower-level resistance but do not overcome higher-level resistance mechanisms.
- Optimizing PMB dosing and formulation is necessary to overcome resistance and ensure treatment success.
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