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Anidulafungin pharmacokinetics and microbial response in neutropenic mice with disseminated candidiasis
Tawanda Gumbo1, George L Drusano, Weiguo Liu
1Division of Infectious Diseases, UT Southwestern Medical Center, 5323 Harry Hines Blvd., Dallas, TX 75390-9113, USA. Tawanda.Gumbo@UTSouthwestern.edu
Abstract:
Candidemia is often fatal, especially in patients with persistent neutropenia. New therapies are needed. We performed 24-h pharmacodynamic studies to compare the efficacies of anidulafungin, fluconazole, and amphotericin B in neutropenic mice with disseminated candidiasis caused by one of three strains of Candida glabrata. Anidulafungin produced a maximal fungal kill (E(max)) of 1.4 to 1.9 log(10) CFU/g in kidneys and was not influenced by resistance to either fluconazole or amphotericin B. Fluconazole produced an E(max) of 1.3 log(10) CFU/g in mice infected with fluconazole-susceptible C. glabrata, but the E(max) was 0 for mice infected with a C. glabrata strain that had a fluconazole MIC of >/=32 mg/liter. Amphotericin B achieved an E(max) of 4.2 log(10) CFU/g in mice infected with amphotericin B-susceptible C. glabrata, but the E(max) was 0 for mice infected with a C. glabrata strain with an amphotericin B MIC of 2 mg/liter. In all instances, anidulafungin's maximal microbial kill was superior to that of fluconazole. Next, we performed a 96-h anidulafungin pharmacokinetic-pharmacodynamic study. Anidulafungin exhibited delayed peak concentrations in kidneys compared to those in serum, after which the concentrations declined, with a serum terminal half-life of 21.6 (+/-4.6) h. This was accompanied by a persistent 96-h decrease in the kidney fungal burden after treatment with a single anidulafungin dose of >/=8 mg/kg of body weight. This pharmacokinetic-pharmacodynamic picture of anidulafungin persistence in tissues and the resultant persistent fungal decline should be exploited to improve the efficacy of anidulafungin therapy for candidemia.
Insights
Anidulafungin effectively combats candidemia in neutropenic mice, even against resistant strains. Its persistent tissue levels suggest improved therapeutic strategies for invasive fungal infections.
Area of Science:
- Mycology
- Pharmacology
- Infectious Diseases
Background:
- Candidemia poses a significant mortality risk, particularly in neutropenic patients.
- Existing antifungal therapies face challenges with resistance and efficacy.
- Novel therapeutic approaches for invasive candidiasis are critically needed.
Purpose of the Study:
- To compare the in vivo efficacy of anidulafungin, fluconazole, and amphotericin B against Candida glabrata.
- To evaluate the pharmacokinetic-pharmacodynamic (PK-PD) profile of anidulafungin in a murine model.
- To explore strategies for optimizing anidulafungin therapy for candidemia.
Main Methods:
- 24-hour pharmacodynamic studies in neutropenic mice with disseminated candidiasis.
- Infection with three distinct Candida glabrata strains exhibiting varying drug susceptibilities.
- 96-hour PK-PD study of anidulafungin, measuring drug concentrations and fungal burden.
Main Results:
- Anidulafungin demonstrated consistent maximal fungal kill (Emax) irrespective of fluconazole or amphotericin B resistance.
- Fluconazole and amphotericin B showed reduced efficacy against resistant Candida glabrata strains.
- Anidulafungin exhibited sustained antifungal activity in kidneys, with a persistent fungal burden reduction after a single dose.
Conclusions:
- Anidulafungin exhibits superior efficacy compared to fluconazole, particularly against resistant Candida glabrata.
- Anidulafungin's PK-PD profile, characterized by tissue persistence, supports its potential for improved candidemia treatment.
- Exploiting anidulafungin's PK-PD properties can enhance therapeutic outcomes for invasive fungal infections.
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