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Published on: September 25, 2017
Reactive intermediates in naquotinib metabolism identified by liquid chromatography-tandem mass spectrometry: phase I
Mohamed W Attwa1,2, Adnan A Kadi1, Haitham AlRabiah1
1Department of Pharmaceutical Chemistry, College of Pharmacy, King Saud University P. O. Box 2457 Riyadh 11451 Kingdom of Saudi Arabia mzeidan@ksu.edu.sa akadi@ksu.edu.sa halrabiah@ksu.edu.sa hdawish@ksu.edu.sa +966 1146 76 220 +966 1146 77343.
Abstract:
Tyrosine kinase inhibitors (TKIs) are very efficient for the treatment of EGFR-mutated lung cancer and show improved therapeutic efficacy. However, treatment with both first- and second-generation TKIs results in acquired resistance and is related to various toxicities; the EGFR T790M mutation has been associated with this resistance. Naquotinib (ASP8273, NQT) is a novel third-generation epidermal growth factor receptor tyrosine kinase inhibitor that has been shown to be more potent than osimertinib in the management of L858R plus T790M mutations. However, its bioactivation may occur and promote the formation of reactive electrophiles that are toxic. We hypothesize that these reactive intermediates are potentially involved in the side effects of NQT. Reactive metabolites are often formed by phase I metabolic reactions and cannot be characterized directly as they are transient in nature. Using liquid chromatography-tandem mass spectrometry (LC-MS/MS), we screened for in vitro metabolites of NQT formed during incubation with human liver microsomes and evaluated the generation of reactive electrophiles using capturing agents, such as methoxyamine and potassium cyanide, as nucleophiles that form stable adducts for identification by LC-MS/MS. Eight NQT phase I metabolites were found that had been formed by N-demethylation, oxidation, hydroxylation, and reduction. In addition, three reactive electrophiles, two aldehydes, and one iminium ion were identified, and the corresponding bioactivation mechanisms were proposed. The reported side effects of NQT may be related to the generation of reactive metabolites. Based on a literature review, this may be the first study of in vitro phase I metabolites, detailed structural characterizations, and NQT reactive intermediates.
Insights
Naquotinib, a third-generation EGFR inhibitor, may cause side effects due to toxic reactive metabolites formed during its metabolism. This study identified these reactive intermediates, offering insights into naquotinib
Area of Science:
- Pharmacology
- Medicinal Chemistry
- Toxicology
Background:
- First- and second-generation EGFR TKIs for lung cancer face acquired resistance and toxicities, often linked to the T790M mutation.
- Naquotinib (NQT) is a potent third-generation EGFR TKI, effective against L858R/T790M mutations, but potential bioactivation and reactive electrophile formation raise toxicity concerns.
Purpose of the Study:
- To investigate the in vitro phase I metabolism of naquotinib (NQT).
- To identify and characterize reactive electrophilic metabolites of NQT.
- To propose bioactivation mechanisms potentially linked to NQT's side effects.
Main Methods:
- Incubation of NQT with human liver microsomes to generate metabolites.
- Use of liquid chromatography-tandem mass spectrometry (LC-MS/MS) for metabolite identification.
- Employing capturing agents (methoxyamine, potassium cyanide) to trap and detect reactive electrophiles.
Main Results:
- Eight NQT phase I metabolites were identified, resulting from N-demethylation, oxidation, hydroxylation, and reduction.
- Three reactive electrophilic intermediates were detected: two aldehydes and one iminium ion.
- Proposed bioactivation pathways leading to the formation of these reactive metabolites.
Conclusions:
- The formation of reactive metabolites during NQT metabolism is demonstrated.
- These identified reactive intermediates may contribute to the observed side effects of naquotinib.
- This study provides the first detailed characterization of NQT's in vitro phase I metabolites and reactive intermediates.
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