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Cytochrome P450 3A4 (CYP3A4) and Cytochrome P450 2C19 (CYP2C19) are two of the most significant enzymes in the human cytochrome P450 superfamily, responsible for the Phase I metabolism of approximately 50% and 10-15% of clinically used drugs, respectively [1, 2]. CYP3A4 is predominantly expressed in the liver and small intestine, where it oxidizes a vast array of structurally diverse compounds, including macrolide antibiotics, azole antifungals, and statins [1, 3, 5]. CYP2C19 is also primarily hepatic and is critical for the activation of prodrugs like clopidogrel and the metabolism of proton pump inhibitors and certain antidepressants [2, 4, 6]. Both enzymes exhibit significant genetic polymorphism, particularly CYP2C19, which leads to wide inter-individual variability in drug response and risk of toxicity [4, 6]. Because many drugs are substrates, inhibitors, or inducers of these enzymes, they are central to the study of drug-drug interactions (DDIs) and personalized medicine [1, 6]. These enzymes are often evaluated together in polypharmacy contexts to predict potential adverse reactions and optimize therapeutic outcomes [5, 6].
These enzymes act as monooxygenases in the Phase I metabolism of drugs, where they utilize heme-bound iron and molecular oxygen to catalyze the oxidation of substrates, typically via hydroxylation, N-dealkylation, or O-dealkylation [1, 2].
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