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Inhibitory Potential of Twenty Five Anti-tuberculosis Drugs on CYP Activities in Human Liver Microsomes
Yoshihiko Shimokawa1, Noriaki Yoda, Satoshi Kondo
1Department of Drug Metabolism, Tokushima Research Institute, Otsuka Pharmaceutical Co., Ltd.
Abstract:
The direct inhibitory potential of twenty five anti-tuberculosis drugs on eight CYP-specific reactions in human liver microsomes was investigated to predict in vivo drug-drug interactions (DDIs) from in vitro data. Rifampicin, rifabutin, and thioacetazone inhibited one CYP reaction. Isoniazid and clofazimine had inhibitory effects on four CYP reactions, and rifapentine, ethionamide, and prothionamide widely inhibited CYP reactions. Based on the inhibition constant (Ki) and the therapeutic total inhibitor concentrations [I]max of eight drugs in human plasma, [I]max/Ki values were calculated to evaluate clinical DDIs. The [I]max/Ki values were 0.20 or less for rifampicin, rifabutin, and thioacetazone; 0.15-2.0 for isoniazid; 0.14-1.5 for rifapentine; 0.29-1.4 for ethionamide; 0.41-2.2 for prothionamide; and 0.12-6.3 for clofazimine. The highest [I]max/Ki values were 2.0 for isoniazid on CYP3A4 [testosterone (T)]; 1.5 for rifapentine on CYP3A4 [midazolam (M)]; 1.4 for ethionamide on CYP2C8; 2.2, 1.8, and 1.3 for prothionamide on CYP2B6, CYP2C19, and CYP2C8, respectively; and 6.3 and 5.7 for clofazimine on CYP3A4 (M) and CYP3A4 (T), respectively. These drugs with high [I]max/Ki values lead to clinical DDIs. Considering the drug regimens for tuberculosis (TB) and co-infection with TB and human immunodeficiency virus, the inhibitory potential for CYP3A4 and CYP2B6 is particularly important. These results suggest that clofazimine and prothionamide are likely to cause clinically relevant DDIs when co-administered with products metabolized by CYP3A4 and CYP2B6, respectively. Isoniazid and rifapentine may cause DDIs with drugs metabolized by CYP3A4.
Insights
This study evaluated 25 anti-tuberculosis drugs for their potential to cause drug-drug interactions (DDIs). Clofazimine and prothionamide showed the highest risk for significant DDIs, particularly with CYP3A4 and CYP2B6 metabolized drugs.
Area of Science:
- Pharmacology
- Drug Metabolism
- Drug Interactions
Background:
- Tuberculosis (TB) treatment involves multiple drugs, increasing the risk of drug-drug interactions (DDIs).
- Cytochrome P450 (CYP) enzymes are crucial for drug metabolism, and their inhibition by anti-TB drugs can lead to DDIs.
Purpose of the Study:
- To investigate the direct inhibitory potential of 25 anti-tuberculosis drugs on eight CYP-specific reactions.
- To predict in vivo drug-drug interactions (DDIs) using in vitro data and inhibition constants (Ki).
Main Methods:
- Assessed the inhibitory effects of 25 anti-TB drugs on human liver microsomes across eight CYP-specific reactions.
- Calculated the [I]max/Ki values for eight drugs based on plasma concentrations and inhibition constants to evaluate clinical DDIs.
Main Results:
- Rifampicin, rifabutin, and thioacetazone showed minimal CYP inhibition.
- Isoniazid, rifapentine, ethionamide, prothionamide, and clofazimine exhibited varying degrees of CYP inhibition.
- Clofazimine and prothionamide demonstrated the highest potential for clinically relevant DDIs, especially with CYP3A4 and CYP2B6 substrates.
Conclusions:
- Clofazimine and prothionamide are likely to cause significant DDIs when co-administered with drugs metabolized by CYP3A4 and CYP2B6.
- Isoniazid and rifapentine may also lead to DDIs with CYP3A4 substrates.
- Understanding these CYP-mediated DDIs is crucial for optimizing TB treatment regimens, especially in co-infected patients.
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