» Articles » PMID: 24523105

Enzyme Kinetics in Drug Metabolism: Fundamentals and Applications

Overview
Specialty Molecular Biology
Date 2014 Feb 14
PMID 24523105
Citations 21
Authors
Affiliations
Soon will be listed here.
Abstract

Enzymes are protein catalysts that lower the energy barrier for a reaction and speed the rate of a chemical change. The kinetics of reactions catalyzed by enzymes, as well as several mechanisms underlying the kinetics, have been comprehensively studied and written in textbooks (1, 2). The importance of quantitative evaluation of enzymatic processes has been recognized in many fields of study, including biochemistry, molecular biology, and pharmaceutical sciences to name a few. In pharmaceutical sciences, the applications of enzyme kinetics range from hit finding efforts for new chemical entities on a pharmacological target to concentration effect relationships to large-scale biosynthesis. The study of the science of drug metabolism has two principal concepts-rate and extent. While understanding disposition pathways and identification of metabolites provides an insight into the extent of metabolism, kinetics of depletion of substrates (endogenous or exogenous) and formation of metabolites deals with the rate of metabolism. The current textbook specifically focuses on kinetics of drug-metabolizing enzymes, detailing specific enzyme classes, and discusses kinetics as they apply to drug transporters. This textbook also outlines additional factors that contribute to the kinetics of reactions catalyzed by these proteins such as variability in isoforms (pharmacogenomics) and experimental factors including key concepts such as alterations of substrate concentrations due to binding. Applications of these approaches in predicting kinetic parameters and alternative approaches for enzymes (systems biology) and transporters are also discussed. The final section focuses on real-life examples (case studies) to try and exemplify the applications of enzyme kinetic principles. This chapter provides a brief overview outlining some key concepts within each of the sections and the chapters within this textbook.

Citing Articles

Bioconversion of aflatoxin-contaminated groundnut press cake by larvae of black soldier fly Hermetia illucens results in a complete mass balance for aflatoxin B.

Niermans K, Salari S, Carney J, Hoek-van den Hil E, van der Fels-Klerx H, van Loon J NPJ Sci Food. 2024; 8(1):103.

PMID: 39702332 PMC: 11659578. DOI: 10.1038/s41538-024-00351-1.


Understanding Voriconazole Metabolism: A Middle-Out Physiologically-Based Pharmacokinetic Modelling Framework Integrating In Vitro and Clinical Insights.

Saleh A, Schulz J, Schlender J, Aulin L, Konrad A, Kluwe F Clin Pharmacokinet. 2024; 63(11):1609-1630.

PMID: 39476315 PMC: 11573852. DOI: 10.1007/s40262-024-01434-8.


Clinical Trial Data-Driven Risk Assessment of Drug-Drug Interactions: A Rapid and Accurate Decision-Making Tool.

Yuan T, Bi F, Hu K, Zhu Y, Lin Y, Yang J Clin Pharmacokinet. 2024; 63(8):1147-1165.

PMID: 39102093 DOI: 10.1007/s40262-024-01404-0.


Metabolic Stability and Metabolite Identification of N-Ethyl Pentedrone Using Rat, Mouse and Human Liver Microsomes.

Godoi A, Antunes N, Cunha K, Martins A, Huestis M, Costa J Pharmaceutics. 2024; 16(2).

PMID: 38399311 PMC: 10893277. DOI: 10.3390/pharmaceutics16020257.


A Review of CYP-Mediated Drug Interactions: Mechanisms and In Vitro Drug-Drug Interaction Assessment.

Lee J, Beers J, Geffert R, Jackson K Biomolecules. 2024; 14(1).

PMID: 38254699 PMC: 10813492. DOI: 10.3390/biom14010099.