Emergence and selection of isoniazid and rifampin resistance in tuberculosis granulomas

Elsje Pienaar1,2, Jennifer J Linderman2, Denise E Kirschner1

  • 1Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, Michigan, United States of America.

Plos One
|May 11, 2018
PubMed

Insights

Drug-resistant tuberculosis (TB) is a growing global threat. This study models how immune responses and drug levels within TB granulomas impact drug resistance, offering insights for new antibiotic development.

Area of Science:

  • Microbiology
  • Pharmacology
  • Computational Biology

Background:

  • Drug-resistant tuberculosis (TB), particularly multi-drug resistant TB (MDR-TB), is a significant global health concern.
  • Isoniazid (INH) and rifampicin (RIF) are core TB treatments, but suboptimal therapy can drive resistance.
  • The influence of host immunity and antibiotic pharmacokinetics within granulomas on drug resistance emergence remains poorly understood.

Purpose of the Study:

  • To investigate the dynamics of drug resistance emergence and selection within TB granulomas using a systems pharmacology approach.
  • To elucidate the impact of host immune responses, antibiotic concentrations, and bacterial factors on the development of drug resistance.
  • To provide a framework for predicting drug-specific resistance patterns and informing new antibiotic development.

Main Methods:

  • Development of a computational framework integrating spatio-temporal host immunity, INH and RIF pharmacokinetics, and bacterial dynamics.
  • Simulation of resistance emergence in the absence of treatment and selection during INH and/or RIF therapy.
  • Inclusion of bacterial fitness costs and compensatory mutations in the model.

Main Results:

  • In untreated granulomas, resistant bacteria populations mirrored complex bacterial dynamics.
  • Drug-resistant bacteria were less prevalent in non-replicating states within caseum compared to drug-sensitive strains.
  • INH-resistant bacteria exerted a greater impact on treatment outcomes than RIF-resistant bacteria due to INH's pharmacokinetic profile.
  • Combination therapy with INH and RIF effectively limited the impact of MDR bacteria on treatment outcomes.

Conclusions:

  • The systems pharmacology model accurately predicts drug-specific resistance emergence and selection within the granuloma environment.
  • This approach, utilizing pre-clinical data, can guide proactive strategies against emerging drug resistance early in drug development.
  • Quantitative, drug-specific insights can inform the design of treatment regimens to minimize resistance and prolong antibiotic efficacy.

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