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System for Efficacy and Cytotoxicity Screening of Inhibitors Targeting Intracellular Mycobacterium tuberculosis
Published on: April 5, 2017
Amikacin Optimal Exposure Targets in the Hollow-Fiber System Model of Tuberculosis
Shashikant Srivastava1, Chawanga Modongo2, Chandima W Siyambalapitiyage Dona1
1Center for Infectious Diseases Research and Experimental Therapeutics, Baylor Research Institute, Baylor University Medical Center, Dallas, Texas, USA.
Abstract:
Aminoglycosides such as amikacin are currently used for the treatment of multidrug-resistant tuberculosis (MDR-TB). However, formal pharmacokinetic/pharmacodynamic (PK/PD) studies to identify amikacin exposures and dosing schedules that optimize Mycobacterium tuberculosis killing have not been performed. It is believed that aminoglycosides do not work well under acidic conditions, which, if true, would mean poor sterilizing activity against semidormant bacilli at low pH. We performed time-kill studies to compare the bactericidal effect of amikacin in log-phase-growth bacilli with the sterilizing effect in semidormant bacilli at pH 5.8 in broth. In log-phase M. tuberculosis at normal pH versus semidormant M. tuberculosis at pH 5.8, the maximal kill (Emax) estimate and 95% confidence interval (CI) were 5.39 (95% CI, 4.91 to 5.63) versus 4.88 (CI, 4.46 to 5.22) log10 CFU/ml, while the concentration mediating 50% of Emax (EC50) was 1.0 (CI, 0. 0.86 to 1.12) versus 0.60 (CI, 0.50 to 0.66) times the MIC, respectively. Thus, the optimal exposures and kill rates identified for log-phase M. tuberculosis will be optimal even for semidormant bacilli. Next, we performed exposure-response and dose-scheduling studies in the hollow-fiber system model of tuberculosis using log-phase M. tuberculosis We recapitulated the amikacin concentration-time profiles observed in lungs of patients treated over 28 days. The PK/PD index linked to M. tuberculosis kill was the peak concentration (Cmax)-to-MIC ratio (r(2) > 0.99), closely followed by the area under the concentration-time curve from 0 to 24 h (AUC0-24)-to-MIC ratio (r(2) = 0.98). The EC90 was a Cmax/MIC ratio of 10.13 (95% CI, 7.73 to 12.48). The EC90 is the dosing target for intermittent therapy that optimizes cure in TB programs for MDR-TB patients.
Insights
This study shows amikacin is effective against dormant tuberculosis bacteria, optimizing dosing for multidrug-resistant tuberculosis (MDR-TB) treatment. The peak concentration to MIC ratio is key for effective amikacin therapy in MDR-TB patients.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Amikacin is crucial for treating multidrug-resistant tuberculosis (MDR-TB).
- Limited pharmacokinetic/pharmacodynamic (PK/PD) data exists for optimizing amikacin dosing against Mycobacterium tuberculosis.
- Concerns about amikacin efficacy in acidic environments, typical of dormant bacteria, need investigation.
Purpose of the Study:
- To evaluate amikacin's bactericidal activity against both actively growing and semi-dormant Mycobacterium tuberculosis.
- To identify the key PK/PD index driving amikacin's efficacy in a hollow-fiber system model.
- To establish optimal amikacin dosing targets for MDR-TB treatment.
Main Methods:
- Time-kill studies comparing amikacin's effect on log-phase and pH 5.8-grown Mycobacterium tuberculosis.
- Hollow-fiber system model of tuberculosis to simulate patient drug exposure over 28 days.
- Exposure-response modeling to correlate amikacin concentrations with bacterial killing.
Main Results:
- Amikacin demonstrated significant bactericidal activity against both log-phase and semi-dormant Mycobacterium tuberculosis.
- The peak concentration (Cmax)-to-MIC ratio was the primary PK/PD driver of bacterial killing (r² > 0.99).
- An EC90 (concentration achieving 90% of maximal effect) of a Cmax/MIC ratio of 10.13 was identified as the dosing target.
Conclusions:
- Amikacin maintains efficacy against semi-dormant Mycobacterium tuberculosis, even in acidic conditions.
- The Cmax/MIC ratio is a reliable predictor of amikacin's efficacy for treating MDR-TB.
- This study provides critical PK/PD targets to optimize amikacin dosing strategies for improved MDR-TB treatment outcomes.
Related Concept Videos
Pharmacodynamic Models: Overview
Estimation of k and VD of Aminoglycosides
Determination of Multiple Dosing Parameters: Steady-State, Minimum and Maximum Concentrations

