Lesion Penetration and Activity Limit the Utility of Second-Line Injectable Agents in Pulmonary Tuberculosis
Jacqueline P Ernest1, Jansy Sarathy2, Ning Wang2
1Department of Bioengineering and Therapeutic Sciences, University of California, San Franciscogrid.266102.1, San Francisco, California, USA.
Abstract:
Amikacin and kanamycin are second-line injectables used in the treatment of multidrug-resistant tuberculosis (MDR-TB) based on the clinical utility of streptomycin, another aminoglycoside and first-line anti-TB drug. While streptomycin was tested as a single agent in the first controlled TB clinical trial, introduction of amikacin and kanamycin into MDR-TB regimens was not preceded by randomized controlled trials. A recent large retrospective meta-analysis revealed that compared with regimens without any injectable drug, amikacin provided modest benefits, and kanamycin was associated with worse outcomes. Although their long-term use can cause irreversible ototoxicity, they remain part of MDR-TB regimens because they have a role in preventing emergence of resistance to other drugs. To quantify the contribution of amikacin and kanamycin to second-line regimens, we applied two-dimensional matrix-assisted laser desorption ionization (MALDI) mass spectrometry imaging in large lung lesions, quantified drug exposure in lung and in lesions of rabbits with active TB, and measured the concentrations required to kill or inhibit growth of the resident bacterial populations. Using these metrics, we applied site-of-action pharmacokinetic and pharmacodynamic (PK-PD) concepts and simulated drug coverage in patients' lung lesions. The results provide a pharmacological explanation for the limited clinical utility of both agents and reveal better PK-PD lesion coverage for amikacin than kanamycin, consistent with retrospective data of contribution to treatment success. Together with recent mechanistic studies dissecting antibacterial activity from aminoglycoside ototoxicity, the limited but rapid penetration of streptomycin, amikacin, and kanamycin to the sites of TB disease supports the development of analogs with improved efficacy and tolerability.
Insights
Amikacin and kanamycin show limited clinical utility in multidrug-resistant tuberculosis (MDR-TB) treatment. Pharmacokinetic/pharmacodynamic (PK-PD) analysis reveals better drug coverage in lung lesions for amikacin than kanamycin.
Area of Science:
- Pharmacology and Microbiology
- Tuberculosis Research
- Drug Development
Background:
- Amikacin and kanamycin are second-line drugs for multidrug-resistant tuberculosis (MDR-TB), used despite a lack of randomized controlled trials.
- Previous studies suggest amikacin offers modest benefits, while kanamycin may be linked to worse outcomes in MDR-TB treatment.
- Aminoglycosides like amikacin and kanamycin can cause irreversible ototoxicity, yet are used to prevent drug resistance.
Purpose of the Study:
- To quantify the contribution of amikacin and kanamycin in second-line MDR-TB regimens.
- To evaluate drug exposure and bacterial inhibition within TB lung lesions.
- To apply pharmacokinetic/pharmacodynamic (PK-PD) concepts to understand drug efficacy at the site of action.
Main Methods:
- Utilized two-dimensional matrix-assisted laser desorption ionization (MALDI) mass spectrometry imaging in rabbit TB lung lesions.
- Quantified amikacin and kanamycin exposure in lung tissue and lesions of rabbits with active tuberculosis.
- Measured drug concentrations needed to inhibit or kill resident bacterial populations.
Main Results:
- Pharmacological explanations for the limited clinical utility of amikacin and kanamycin were identified.
- Amikacin demonstrated better PK-PD lesion coverage compared to kanamycin.
- Results align with retrospective data showing amikacin's greater contribution to treatment success.
Conclusions:
- The study provides a pharmacological basis for the observed clinical utility of amikacin and kanamycin in MDR-TB.
- Improved PK-PD lesion coverage for amikacin suggests its greater efficacy over kanamycin.
- Findings support the development of novel aminoglycoside analogs with enhanced efficacy and reduced ototoxicity for TB treatment.
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