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Updated: Jan 14, 2026

Biosensor-based High Throughput Biopanning and Bioinformatics Analysis Strategy for the Global Validation of Drug-protein Interactions
Published on: December 1, 2020
Minimising the potential for metabolic activation in drug discovery
Amit S Kalgutkar1, John R Soglia
1Pfizer Global Research & Development, Pharmacokinetics, Dynamics and Metabolism Department, Groton, CT 06340, USA. amit.kalgutkar@pfizer.com
Abstract:
Investigations into the role of bioactivation in the pathogenesis of xenobiotic-induced toxicity have been a major area of research since the link between reactive metabolites and carcinogenesis was first reported in the 1930s. Circumstantial evidence suggests that bioactivation of relatively inert functional groups to reactive metabolites may contribute towards certain drug-induced adverse reactions. Reactive metabolites, if not detoxified, can covalently modify essential cellular targets. The identity of the susceptible biomacromolecule(s), and the physiological consequence of its covalent modification, will dictate the resulting toxicological response (e.g., covalent modification of DNA by reactive intermediates derived from procarcinogens that potentially leads to carcinogenesis). The formation of drug-protein adducts often carries a potential risk of clinical toxicities that may not be predicted from preclinical safety studies. Animal models used to reliably predict idiosyncratic drug toxicity are unavailable at present. Furthermore, considering that the frequency of occurrence of idiosyncratic adverse drug reactions (IADRs) is fairly rare (1 in 1000 to 1 in 10,000), it is impossible to detect such phenomena in early clinical trials. Thus, the occurrence of IADRs during late clinical trials or after a drug has been released can lead to an unanticipated restriction in its use and even in its withdrawal. Major themes explored in this review include a comprehensive cataloguing of bioactivation pathways of functional groups commonly utilised in drug design efforts with appropriate strategies towards detection of corresponding reactive intermediates. Several instances wherein replacement of putative structural alerts in drugs associated with IADRs with a latent functionality eliminates the underlying liability are also presented. Examples of where bioactivation phenomenon in drug candidates can be successfully abrogated via iterative chemical interventions are also discussed. Finally, appropriate strategies that aid in potentially mitigating the risk of IADRs are explored, especially in circumstances in which the structural alert is also responsible for the primary pharmacology of the drug candidate and cannot be replaced.
Insights
Drug bioactivation to reactive metabolites can cause toxicity and rare idiosyncratic adverse drug reactions (IADRs). This review explores bioactivation pathways, detection strategies, and mitigation methods for safer drug development.
Area of Science:
- Drug metabolism and toxicology
- Medicinal chemistry
- Pharmacology
Background:
- Bioactivation of xenobiotics to reactive metabolites is linked to toxicity and carcinogenesis since the 1930s.
- Reactive metabolites can covalently modify cellular targets, leading to toxicological responses.
- Drug-protein adducts pose risks not always predicted by preclinical studies.
Purpose of the Study:
- To review bioactivation pathways of functional groups in drug design.
- To discuss strategies for detecting reactive intermediates.
- To present methods for mitigating drug-induced toxicity and idiosyncratic adverse drug reactions (IADRs).
Main Methods:
- Comprehensive cataloguing of drug bioactivation pathways.
- Analysis of strategies for detecting reactive intermediates.
- Review of chemical interventions to abrogate bioactivation in drug candidates.
Main Results:
- Identified common bioactivation pathways and detection strategies.
- Presented examples of structural modifications that eliminate IADR liabilities.
- Discussed successful abrogation of bioactivation via chemical interventions.
Conclusions:
- Understanding bioactivation is crucial for predicting and mitigating drug toxicity.
- Strategies exist to modify drugs, reducing risks associated with reactive metabolites.
- Mitigation is possible even when structural alerts are essential for drug efficacy.
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