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A High-throughput Compatible Assay to Evaluate Drug Efficacy against Macrophage Passaged Mycobacterium tuberculosis
Published on: March 24, 2017
Potential anti-TB investigational compounds and drugs with repurposing potential in TB therapy: a conspectus
Adetomiwa A Adeniji1, Kirsten E Knoll1, Du Toit Loots2
1Faculty of Natural and Agricultural Science, North-West University, Human Metabolomics Private Bag X6001, Box 269, Potchefstroom, 2531, South Africa.
Abstract:
The latest WHO report estimates about 1.6 million global deaths annually from TB, which is further exacerbated by drug-resistant (DR) TB and comorbidities with diabetes and HIV. Exiguous dosing, incomplete treatment course, and the ability of the tuberculosis bacilli to tolerate and survive current first-line and second-line anti-TB drugs, in either their latent state or active state, has resulted in an increased prevalence of multidrug-resistant (MDR), extensively drug-resistant (XDR), and totally drug-resistant TB (TDR-TB). Although a better understanding of the TB microanatomy, genome, transcriptome, proteome, and metabolome, has resulted in the discovery of a few novel promising anti-TB drug targets and diagnostic biomarkers of late, no new anti-TB drug candidates have been approved for routine therapy in over 50 years, with only bedaquiline, delamanid, and pretomanid recently receiving tentative regulatory approval. Considering this, alternative approaches for identifying possible new anti-TB drug candidates, for effectively eradicating both replicating and non-replicating Mycobacterium tuberculosis, are still urgently required. Subsequently, several antibiotic and non-antibiotic drugs with known treatment indications (TB targeted and non-TB targeted) are now being repurposed and/or derivatized as novel antibiotics for possible use in TB therapy. Insights gathered here reveal that more studies focused on drug-drug interactions between licensed and potential lead anti-TB drug candidates need to be prioritized. This write-up encapsulates the most recent findings regarding investigational compounds with promising anti-TB potential and drugs with repurposing potential in TB therapy.
Insights
Tuberculosis (TB) drug resistance is a growing global threat. This review highlights promising new drug candidates and repurposed drugs for TB therapy, emphasizing the urgent need for novel treatments.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Tuberculosis (TB) causes 1.6 million deaths annually, with drug-resistant strains (DR-TB) posing a significant challenge.
- Existing anti-TB drugs face limitations due to resistance, incomplete treatment, and the pathogen's ability to survive in various states.
- Despite advances in understanding TB biology, no new anti-TB drugs have been approved in over 50 years, except for a few recent tentative approvals.
Purpose of the Study:
- To review recent findings on investigational compounds with anti-TB potential.
- To explore the repurposing of existing drugs for TB therapy.
- To emphasize the urgent need for novel anti-TB drug discovery and development.
Main Methods:
- Literature review of recent scientific findings on anti-TB drug candidates.
- Analysis of drug repurposing strategies for tuberculosis treatment.
- Discussion of challenges and future directions in TB drug development.
Main Results:
- Several novel anti-TB drug targets and biomarkers have been identified.
- Investigational compounds and repurposed drugs show promising anti-TB potential.
- Drug-drug interactions between anti-TB candidates require further investigation.
Conclusions:
- Urgent need for new anti-TB drugs to combat resistance and improve treatment outcomes.
- Drug repurposing offers a viable strategy to accelerate the development of novel TB therapies.
- Prioritizing research on drug interactions is crucial for safe and effective TB treatment.
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