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Pharmacogenetics of Drug Metabolism: Overview01:27

Pharmacogenetics of Drug Metabolism: Overview

Genetic polymorphism in drug metabolism is crucial to the inter-individual variability observed in drug responses. Drug metabolism primarily involves the chemical modification of drugs and other xenobiotics to enhance their elimination by increasing their polarity. Two main classes of enzymes mediate this biotransformation process: Phase I enzymes, primarily cytochrome P450s, catalyze oxidation and reduction reactions, while other enzymes, such as esterases, mediate hydrolysis, and Phase II...
Drug Biotransformation: Overview01:28

Drug Biotransformation: Overview

Biotransformation, also known as drug metabolism, is a vital physiological process that chemically alters drugs, facilitating their elimination from the body and terminating their action. This process involves two main phases: phase I and phase II reactions. Phase I reactions, including oxidation, reduction, and hydrolysis, introduce or unmask polar functional groups on the drug molecule, thereby increasing its water solubility. By enhancing water solubility, the drug becomes more hydrophilic...
Drug Biotransformation: Overview01:16

Drug Biotransformation: Overview

Pharmaceutical substances known as xenobiotics are predominantly lipophilic and nonionized. This enables them to permeate lipid bilayers, such as cell membranes, and interact with intracellular target receptors. Lipophilic drugs have an advantage in crossing biological barriers and reaching their intended sites of action. However, lipophilic drugs often have a restricted capacity for renal expulsion or elimination from the body. When these drugs enter the kidneys and undergo glomerular...
Factors Affecting Drug Biotransformation: Physicochemical and Chemical Properties of Drugs01:21

Factors Affecting Drug Biotransformation: Physicochemical and Chemical Properties of Drugs

A drug's physicochemical properties fundamentally influence its metabolism. For instance, a drug's molecular size and shape critically determine its interaction with enzymes and transporters — larger drugs may face difficulty reaching enzyme active sites, altering their metabolic pathways. The pKa of a drug, which establishes its ionization state, can impact its solubility and absorption, thereby influencing metabolism.
The drug's acidity or basicity is essential in determining the metabolic...
Drug Metabolism: Phase I Reactions01:17

Drug Metabolism: Phase I Reactions

A phase I reaction is a biochemical process that introduces a functionally reactive polar group to a substance. This transformation predominantly occurs in the liver, facilitated by the cytochrome P450 system of hemoproteins situated in the lipophilic endoplasmic reticulum of cells. The metabolite generated through this process can have varying polarities. If it is sufficiently polar, it can be easily excreted in the urine due to its water compatibility. However, if the metabolite is nonpolar,...
Factors Affecting Drug Biotransformation: Biological01:19

Factors Affecting Drug Biotransformation: Biological

Biological factors significantly impact drug metabolism, influencing drug clearance, efficacy, and potential toxicity.
Species differences: Variations in enzyme systems across species can cause disparities in drug metabolism. For instance, humans may metabolize certain drugs faster than rodents, altering therapeutic effects.
Strain differences: Genetic variations within a species can result in differing enzyme activity, impacting drug response and toxicity. For example, some mouse strains may...

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Related Experiment Video

Updated: Jun 18, 2026

Mass Spectrometry and Luminogenic-based Approaches to Characterize Phase I Metabolic Competency of In Vitro Cell Cultures
10:44

Mass Spectrometry and Luminogenic-based Approaches to Characterize Phase I Metabolic Competency of In Vitro Cell Cultures

Published on: March 28, 2017

Drug metabolism for the perplexed medicinal chemist.

Bernard Testa1

  • 1Department of Pharmacy, University Hospital Centre (CHUV), Rue du Bugnon, CH-1011 Lausanne. Bernard.Testa@chuv.ch

Chemistry & Biodiversity
|November 26, 2009
PubMed
Summary

Drug metabolism significantly impacts drug activity and toxicity. Oxidoreductases primarily form active or toxic metabolites, while transferases mainly produce inactive ones, guiding medicinal chemists.

Area of Science:

  • Medicinal Chemistry
  • Pharmacology
  • Toxicology

Background:

  • Drug metabolism presents complex pharmacological and toxicological challenges for medicinal chemists.
  • Understanding metabolite activity, from prodrugs to active forms, is crucial.
  • Metabolism can lead to both beneficial and harmful toxicological outcomes.

Purpose of the Study:

  • To elucidate the pharmacological and toxicological significance of drug metabolism.
  • To compare the roles of different enzyme classes in drug metabolism.
  • To provide insights for medicinal chemists regarding drug design and safety.

Main Methods:

  • Review of pharmacological and toxicological consequences of drug metabolism.
  • Analysis of metabolite activity spectrum (soft drugs to prodrugs).

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  • Comparison of enzyme families (oxidoreductases, hydrolases, transferases) based on metabolite production.
  • Main Results:

    • Drug metabolism yields a spectrum of activity, including soft drugs, prodrugs, and drugs with shared activity between parent and metabolite.
    • Metabolism contributes to molecular, macromolecular, and macroscopic toxicological effects.
    • Cytochromes P450 and other oxidoreductases are key in forming active/toxic metabolites, whereas transferases predominantly yield inactive/non-toxic metabolites.

    Conclusions:

    • Drug metabolism is a critical determinant of both therapeutic efficacy and potential toxicity.
    • Enzyme class significantly influences the nature of drug metabolites.
    • Medicinal chemists must consider enzyme-mediated metabolism in drug development to optimize safety and efficacy.