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New horizons in the treatment of tuberculosis
1Laboratory of Intracellular Parasites, Rocky Mountain Laboratories, NIAID, NIH, Hamilton, MT 59840-2999, USA. clifton_barry@nih.gov
Abstract:
The development of new chemotherapy for the treatment of tuberculosis has three major objectives: first, the development of faster-acting drugs to shorten the duration of treatment; second, the development of novel antimicrobials to counter the emergence of bacteria resistant to current therapies; and, third, the development of chemotherapeutics that specifically target dormant bacilli to treat the one-third of the world's population latently infected with tubercle bacilli. Strategies based upon optimizing the inhibition of known targets require an extensive knowledge of the detailed mechanism of action of current antimycobacterial agents. For many agents such as isoniazid, ethambutol, rifampin, and pyrazinamide such knowledge is now available. Strategies based upon the identification of novel targets will necessitate the identification of biochemical pathways specific to mycobacteria and related organisms. Many unique metabolic processes occur during the biosynthesis of mycobacterial cell wall components, and some attractive new targets have emerged. The development of targets specific to latency will require a detailed picture of the metabolism and biochemical pathways occurring in dormant bacilli. Recent evidence suggests that anaerobic metabolic pathways may operate in dormant bacilli, and the enzymes involved in such pathways may also provide significant new targets for intervention. The combination of the mycobacterial genome sequence that is anticipated to become available this year with an improved understanding of the unique metabolic processes that define mycobacteria as a genus offers the greatest hope for the elimination of one of mankind's oldest enemies.
Insights
New tuberculosis (TB) chemotherapy aims to develop faster drugs, combat resistant strains, and target dormant bacteria. Understanding unique mycobacterial metabolism and identifying novel drug targets are key to eliminating TB.
Area of Science:
- Microbiology and Infectious Diseases
- Drug Discovery and Development
- Tuberculosis Research
Background:
- Tuberculosis (TB) remains a major global health challenge, necessitating new treatment strategies.
- Current TB chemotherapy faces limitations including long treatment durations and emerging drug resistance.
- A significant portion of the world's population harbors latent TB infections, requiring targeted therapies.
Purpose of the Study:
- To outline objectives for developing novel tuberculosis chemotherapy.
- To explore strategies for identifying new drug targets in mycobacteria.
- To address the need for treatments effective against both active and latent TB.
Main Methods:
- Reviewing existing knowledge of antimycobacterial drug mechanisms.
- Investigating unique mycobacterial biochemical pathways for novel target identification.
- Analyzing metabolic processes in dormant bacilli to find latency-specific targets.
Main Results:
- Knowledge of current drug mechanisms (isoniazid, ethambutol, rifampin, pyrazinamide) is available.
- Unique mycobacterial cell wall biosynthesis pathways present potential new targets.
- Dormant bacilli may utilize anaerobic pathways, offering additional intervention points.
Conclusions:
- Developing faster-acting drugs and novel antimicrobials are crucial for TB control.
- Targeting dormant bacilli requires understanding their unique metabolism.
- Combining genomic data with metabolic insights offers the best hope for eradicating TB.