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Investigation of Fenebrutinib Metabolism and Bioactivation Using MS3 Methodology in Ion Trap LC/MS
Aishah M Alsibaee1, Haya I Aljohar1, Mohamed W Attwa1
1Department of Pharmaceutical Chemistry, College of Pharmacy, King Saud University, Riyadh 11451, Saudi Arabia.
Abstract:
Fenebrutinib is an orally available Bruton tyrosine kinase inhibitor. It is currently in multiple phase III clinical trials for the management of B-cell tumors and autoimmune disorders. Elementary in-silico studies were first performed to predict susceptible sites of metabolism and structural alerts for toxicities by StarDrop WhichP450™ module and DEREK software; respectively. Fenebrutinib metabolites and adducts were characterized in-vitro in rat liver microsomes (RLM) using MS3 method in Ion Trap LC-MS/MS. Formation of reactive and unstable intermediates was explored using potassium cyanide (KCN), glutathione (GSH) and methoxylamine as trapping nucleophiles to capture the transient and unstable iminium, 6-iminopyridin-3(6H)-one and aldehyde intermediates, respectively, to generate a stable adducts that can be investigated and analyzed using mass spectrometry. Ten phase I metabolites, four cyanide adducts, five GSH adducts and six methoxylamine adducts of fenebrutinib were identified. The proposed metabolic reactions involved in formation of these metabolites are hydroxylation, oxidation of primary alcohol to aldehyde, n-oxidation, and n-dealkylation. The mechanism of reactive intermediate formation of fenebrutinib can provide a justification of the cause of its adverse effects. Formation of iminium, iminoquinone and aldehyde intermediates of fenebrutinib was characterized. N-dealkylation followed by hydroxylation of the piperazine ring is proposed to cause the bioactivation to iminium intermediates captured by cyanide. Oxidation of the hydroxymethyl group on the pyridine moiety is proposed to cause the generation of reactive aldehyde intermediates captures by methoxylamine. N-dealkylation and hydroxylation of the pyridine ring is proposed to cause formation of iminoquinone reactive intermediates captured by glutathione. FBB and several phase I metabolites are bioactivated to fifteen reactive intermediates which might be the cause of adverse effects. In the future, drug discovery experiments utilizing this information could be performed, permitting the synthesis of new drugs with better safety profile. Overall, in silico software and in vitro metabolic incubation experiments were able to characterize the FBB metabolites and reactive intermediates using the multistep fragmentation capability of ion trap mass spectrometry.
Insights
Fenebrutinib metabolism was studied using in silico and in vitro methods. Reactive intermediates were identified, potentially explaining adverse effects and guiding future drug discovery for better safety profiles.
Area of Science:
- Pharmacology and Toxicology
- Drug Metabolism and Pharmacokinetics
- Medicinal Chemistry
Background:
- Fenebrutinib is an investigational Bruton tyrosine kinase inhibitor for B-cell tumors and autoimmune disorders.
- Understanding its metabolic pathways and potential reactive intermediates is crucial for assessing safety and guiding drug development.
Purpose of the Study:
- To characterize fenebrutinib metabolites and reactive intermediates using in silico and in vitro approaches.
- To elucidate the mechanisms of reactive intermediate formation and their potential link to adverse effects.
Main Methods:
- In silico studies using StarDrop and DEREK software for predicting metabolism and toxicity.
- In vitro incubations with rat liver microsomes (RLM).
- Mass spectrometry (Ion Trap LC-MS/MS) with nucleophilic trapping (KCN, GSH, methoxylamine) to identify metabolites and adducts.
Main Results:
- Ten phase I metabolites, four cyanide adducts, five GSH adducts, and six methoxylamine adducts of fenebrutinib were identified.
- Proposed metabolic pathways include hydroxylation, oxidation, n-oxidation, and n-dealkylation.
- Characterized formation of iminium, iminoquinone, and aldehyde intermediates, with proposed mechanisms involving piperazine and pyridine ring modifications.
Conclusions:
- Fenebrutinib and its metabolites can be bioactivated to fifteen reactive intermediates.
- These reactive intermediates may contribute to fenebrutinib's adverse effects.
- The findings support future drug discovery efforts for safer fenebrutinib analogs.
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