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Amiodarone analog-dependent effects on CYP2C9-mediated metabolism and kinetic profiles
Vikas Kumar1, Chuck W Locuson, Yuk Y Sham
1Department of Experimental and Clinical Pharmacology, College of Pharmacy, University of Minnesota, Minneapolis, MN 55455, USA.
Abstract:
CYP2C9 substrates can exhibit both hyperbolic and atypical kinetic profiles, and their metabolism can be activated or inhibited depending on the effector studied. CYP2C9 genetic variants can also affect both substrate turnover and kinetic profile. The present study assessed whether analogs of the effector amiodarone differentially altered the atypical kinetic profile of the substrate naproxen and whether this effect was genotype-dependent. Amiodarone, desethylamiodarone, benzbromarone, and its dimethyl analog (benz(meth)arone) were incubated with naproxen and either CYP2C9.1 or CYP2C9.3. Amiodarone activated naproxen demethylation at lower concentrations, regardless of the CYP2C9 allele, and inhibited metabolism at higher concentrations without altering the kinetic profile. Desethylamiodarone was a potent inhibitor of naproxen demethylation, irrespective of the CYP2C9 allele. Benzbromarone altered naproxen demethylation kinetics from a biphasic profile to that of a hyperbolic form in CYP2C9.1 and CYP2C9.3, resulting in inhibition and activation, respectively. In contrast, benz(meth)arone activated naproxen demethylation in both CYP2C9.1 and CYP2C9.3. In addition, the kinetic profile of naproxen demethylation became more hyperbolic at lower concentrations of benz(meth)arone and then reverted back to biphasic as the benz(meth)arone was increased further. Equilibrium binding and multiple-ligand docking studies were used to propose how such similar compounds exerted very different effects on naproxen metabolism. In summary, effectors of CYP2C9 metabolism can alter not only the degree of substrate turnover (activation or inhibition) but also the kinetic profile of metabolism of CYP2C9 substrates through effects on substrate binding and orientation. In addition, these kinetics effects are concentration- and genotype-dependent.
Insights
Amiodarone analogs differentially affect naproxen metabolism by CYP2C9 (cytochrome P450 2C9) enzymes. These effects on substrate turnover and kinetic profiles are concentration- and genotype-dependent.
Area of Science:
- Pharmacology
- Enzyme kinetics
- Drug metabolism
Background:
- Cytochrome P450 2C9 (CYP2C9) substrates can display complex kinetic profiles.
- CYP2C9 genetic variations influence substrate metabolism and kinetics.
- Drug interactions can alter enzyme activity and substrate turnover.
Purpose of the Study:
- To investigate how amiodarone analogs affect the atypical kinetic profile of naproxen metabolism by CYP2C9.
- To determine if these effects are dependent on specific CYP2C9 genetic variants (CYP2C9.1 and CYP2C9.3).
Main Methods:
- Incubation of naproxen with CYP2C9.1 or CYP2C9.3 in the presence of amiodarone, desethylamiodarone, benzbromarone, or benz(meth)arone.
- Analysis of kinetic profiles (hyperbolic vs. biphasic) and substrate turnover.
- Utilizing equilibrium binding and multiple-ligand docking studies.
Main Results:
- Amiodarone showed biphasic effects (activation then inhibition) without altering kinetics.
- Desethylamiodarone was a potent inhibitor.
- Benzbromarone shifted naproxen kinetics from biphasic to hyperbolic, causing inhibition/activation.
- Benz(meth)arone activated metabolism and altered kinetics in a concentration-dependent manner.
Conclusions:
- CYP2C9 effector compounds can modulate both the rate and kinetic profile of substrate metabolism.
- These modulations are dependent on effector concentration and CYP2C9 genotype.
- Understanding these complex interactions is crucial for predicting drug efficacy and toxicity.
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