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Examination of Host Phenotypes in Gambusia affinis Following Antibiotic Treatment
Published on: February 22, 2017
Intensified antibiotic treatment of tuberculosis meningitis
Fiona V Cresswell1,2, Lindsey Te Brake3, Rachel Atherton2
1a Clinical Research Department , London School of Hygiene and Tropical Medicine , London , UK.
Introduction:
Meningitis is the most severe manifestation of tuberculosis, resulting in death or disability in over 50% of those affected, with even higher morbidity and mortality among patients with HIV or drug resistance. Antimicrobial treatment of Tuberculous meningitis (TBM) is similar to treatment of pulmonary tuberculosis, although some drugs show poor central nervous system penetration. Therefore, intensification of antibiotic treatment may improve TBM treatment outcomes. Areas covered: In this review, we address three main areas: available data for old and new anti-tuberculous agents; intensified treatment in specific patient groups like HIV co-infection, drug-resistance, and children; and optimal research strategies. Expert commentary: There is good evidence from preclinical, clinical, and modeling studies to support the use of high-dose rifampicin in TBM, likely to be at least 30 mg/kg. Higher dose isoniazid could be beneficial, especially in rapid acetylators. The role of other first and second line drugs is unclear, but observational data suggest that linezolid, which has good brain penetration, may be beneficial. We advocate the use of molecular pharmacological approaches, physiologically based pharmacokinetic modeling and pharmacokinetic-pharmacodynamic studies to define optimal regimens to be tested in clinical trials. Exciting data from recent studies hold promise for improved regimens and better clinical outcomes in future.
Insights
Intensifying antibiotic treatment for tuberculous meningitis (TBM) may improve outcomes, especially with high-dose rifampicin and potentially higher-dose isoniazid. Further research is needed to optimize TBM drug regimens.
Area of Science:
- Infectious Diseases
- Neurology
- Pharmacology
Background:
- Tuberculous meningitis (TBM) is a severe form of tuberculosis with high mortality and disability rates.
- HIV co-infection and drug resistance exacerbate TBM's poor outcomes.
- Current TBM antimicrobial treatment faces challenges due to poor central nervous system drug penetration.
Purpose of the Study:
- To review current data on anti-tuberculous agents for TBM.
- To explore intensified treatment strategies for specific TBM patient groups.
- To propose optimal research strategies for TBM treatment.
Main Methods:
- Review of preclinical, clinical, and modeling studies on anti-tuberculous agents.
- Analysis of observational data for drug efficacy in TBM.
- Advocacy for molecular pharmacology and pharmacokinetic modeling.
Main Results:
- Evidence supports high-dose rifampicin (≥30 mg/kg) for TBM.
- Higher-dose isoniazid may benefit rapid acetylators.
- Linezolid shows potential due to good brain penetration.
Conclusions:
- Optimizing TBM treatment requires higher drug doses and potentially novel agents.
- Pharmacokinetic-pharmacodynamic studies and clinical trials are crucial for defining optimal TBM regimens.
- Future research holds promise for improved TBM treatment outcomes.
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