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Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
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
Abstract:
Adverse drug reactions (ADRs) remain a major complication of drug therapy and can be classified as 'on-target' or 'off-target' (idiosyncratic) reactions. On-target reactions can be predicted from the known primary or secondary pharmacology of the drug and often represent an exaggeration of the pharmacological effect of the drug. In contrast, off-target adverse reactions cannot be predicted from knowledge of the basic pharmacology of the drug. The exact mechanisms of idiosyncratic drug reactions are still unclear; however it is believed that they can be initiated by chemically reactive drug metabolites. It is well known that xenobiotics can undergo metabolic bioactivation reactions which have the potential to cause cellular stress and damage. Bioactivation of drugs is thought to have the potential of initiating covalent linkages between cellular protein and drugs which can be recognised by the adaptive immune system in the absence of detectable cellular stress. This process cannot yet be predicted in pre-clinical models or discovered in clinical trials. Because of this hazard perception, the formation of chemically reactive metabolites in early drug discovery remains a serious impediment to the development of new medicines and can lead to withdrawal of an otherwise effective therapeutic agent. The fear of such reactions occurring at the post-licensing stage - when such problems first become evident - is a major contribution to drug attrition. The first step towards such methodology has been the development of chemically reactive metabolite screens. The chemical basis of drug bioactivation can usually be rationalised and synthetic strategies put in place to prevent such bioactivation. However, there is no simple correlation between drug bioactivation in vitro and adverse drug reactions in the clinic. Such a chemical approach is clearly limited by the facts that (a) not all drugs that can undergo bioactivation by human drug-metabolising enzymes are associated with hypersensitivity in the clinic and (b) drug bioactivation may not always be a mandatory step in drug hypersensitivity. To predict such reactions in early drug development, it will require an integrated understanding of the chemical, immunological and genetic basis of adverse drug reactions in patients, which in turn will depend on the development of novel in vitro experimental systems.
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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