Selection and prioritization of candidate combination regimens for the treatment of tuberculosis

Natasha Strydom1, Rob C van Wijk1, Qianwen Wang1

  • 1Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, San Francisco, CA 94158, USA.

PubMed

Insights

Mathematical models predict tuberculosis treatment success, identifying promising drug combinations for faster cures. This approach aids in advancing new tuberculosis therapies to clinical trials.

Area of Science:

  • Pharmacology
  • Mathematical Biology
  • Infectious Disease Research

Background:

  • Accelerated tuberculosis drug discovery yields numerous multidrug regimens.
  • In vivo testing of all combinations is impractical, hindering direct comparison of experimental results.

Purpose of the Study:

  • To develop and validate mathematical models for predicting tuberculosis relapse in mice.
  • To rank novel and existing drug regimens based on their sterilization potential.

Main Methods:

  • Utilized published efficacy data from a mouse tuberculosis model.
  • Trained and validated integrative mathematical models using statistical and machine learning techniques.
  • Analyzed 18 datasets comprising 18 candidate regimens (11 drugs, 6 classes) with 2965 relapse and 1544 colony-forming unit (CFU) observations.

Main Results:

  • The validated mathematical model achieved an AUROC of 0.910 for predicting relapse.
  • Bacterial kill (CFU) alone does not fully explain relapse; sterilization is drug-dependent.
  • Diarylquinolines showed the highest predicted sterilizing activity; pyrazinamide addition shortened estimated treatment duration.
  • Model predictions for novel regimens were validated experimentally with an AUROC of 0.829.

Conclusions:

  • Next-generation tuberculosis drugs show potential for significant treatment shortening.
  • Several promising three- and four-drug regimens warrant advancement to clinical trials for tuberculosis treatment.

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