Drug bioactivation and protein adduct formation in the pathogenesis of drug-induced toxicity

B K Park1, H Laverty, A Srivastava

  • 1MRC Centre for Drug Safety Science, Institute of Translational Medicine, Department of Molecular and Clinical Pharmacology, University of Liverpool, Sherrington Buildings, Ashton Street, Liverpool L69 3GE, UK. b.k.park@liv.ac.uk

Insights

Predicting adverse drug reactions (ADRs) is challenging. Understanding the chemical, immunological, and genetic factors of idiosyncratic ADRs requires novel experimental systems for safer drug development.

Area of Science:

  • Pharmacology
  • Toxicology
  • Immunology

Background:

  • Adverse drug reactions (ADRs) are a significant complication of drug therapy, classified as 'on-target' or 'off-target' (idiosyncratic).
  • Off-target ADRs are unpredictable and may be initiated by chemically reactive drug metabolites, leading to covalent linkages with cellular proteins and potential immune system recognition.
  • The formation of reactive metabolites during drug discovery impedes new medicine development and contributes to drug attrition due to unpredictable post-licensing reactions.

Purpose of the Study:

  • To highlight the challenges in predicting idiosyncratic drug reactions.
  • To emphasize the need for integrated approaches combining chemical, immunological, and genetic factors.
  • To underscore the requirement for novel in vitro experimental systems for early prediction of ADRs.

Main Methods:

  • Review of current understanding of drug metabolism and bioactivation pathways.
  • Discussion of limitations in predicting ADRs from in vitro metabolite screens.
  • Exploration of the role of chemically reactive metabolites in initiating ADRs.

Main Results:

  • Chemically reactive metabolites can initiate covalent binding to proteins, potentially triggering immune responses without detectable cellular stress.
  • Current in vitro metabolite screens show no simple correlation with clinical hypersensitivity, as not all bioactivated drugs cause ADRs, and bioactivation isn't always mandatory for hypersensitivity.
  • Existing pre-clinical models and clinical trials fail to predict these idiosyncratic reactions.

Conclusions:

  • Predicting idiosyncratic ADRs requires a shift from solely chemical assessments to an integrated understanding of chemical, immunological, and genetic factors.
  • Development of novel in vitro experimental systems is crucial for predicting ADRs early in drug development.
  • Addressing the hazard of reactive metabolites necessitates advanced predictive methodologies beyond current capabilities.

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