ReviewMolecules (Basel, Switzerland)2020
Metabolic-Hydroxy and Carboxy Functionalization of Alkyl Moieties in Drug Molecules: Prediction of Structure Influence and Pharmacologic Activity.
Review in Molecules (Basel, Switzerland), 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Population Pharmacokinetics and Dosing Simulations of Pentobarbital in the Pediatric Population.Journal of clinical pharmacology · 2026Observational
- Structure-Activity Relationship Studies Enable Optimization of a Small-Molecule Autophagy Activator and Evaluation of Effects on Cell Death Pathways.ACS pharmacology & translational science · 2026Article
- Fluorine-18-labeled PET radiotracers for imaging the macrophage colony-stimulating factor 1 receptor (CSF1R).EJNMMI radiopharmacy and chemistry · 2026Article
- Alcohol dehydrogenase 4 and aldo-keto reductase 1A1 catalyze the oxidation of 4-hydroxytolbutamide, a metabolite of tolbutamide, in the human liver.Drug metabolism and disposition: the biological fate of chemicals · 2025Article
- Discovery of andrographolide hit analog as a potent cyclooxygenase-2 inhibitor through consensus MD-simulation, electrostatic potential energy simulation and ligand efficiency metrics.Scientific reports · 2023Article
- Structural Investigation of Betulinic Acid Plasma Metabolites by Tandem Mass Spectrometry.Molecules (Basel, Switzerland) · 2022Article
- Enantioselective alkylative cross-coupling of unactivated aromatic C-O electrophiles.Nature communications · 2022Article
- MetabolicMolecules (Basel, Switzerland) · 2021Review
- Drug/Lead Compound Hydroxymethylation as a Simple Approach to Enhance Pharmacodynamic and Pharmacokinetic Properties.Frontiers in chemistry · 2021Review
Corrections and comments
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2 authors.
Funding
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Abstract
Alkyl moieties-open chain or cyclic, linear, or branched-are common in drug molecules. The hydrophobicity of alkyl moieties in drug molecules is modified by metabolic hydroxy functionalization via free-radical intermediates to give primary, secondary, or tertiary alcohols depending on the class of the substrate carbon. The hydroxymethyl groups resulting from the functionalization of methyl groups are mostly oxidized further to carboxyl groups to give carboxy metabolites. As observed from the surveyed cases in this review, hydroxy functionalization leads to loss, attenuation, or retention of pharmacologic activity with respect to the parent drug. On the other hand, carboxy functionalization leads to a loss of activity with the exception of only a few cases in which activity is retained. The exceptions are those groups in which the carboxy functionalization occurs at a position distant from a well-defined primary pharmacophore. Some hydroxy metabolites, which are equiactive with their parent drugs, have been developed into ester prodrugs while carboxy metabolites, which are equiactive to their parent drugs, have been developed into drugs as per se. In this review, we present and discuss the above state of affairs for a variety of drug classes, using selected drug members to show the effect on pharmacologic activity as well as dependence of the metabolic change on drug molecular structure. The review provides a basis for informed predictions of (i) structural features required for metabolic hydroxy and carboxy functionalization of alkyl moieties in existing or planned small drug molecules, and (ii) pharmacologic activity of the metabolites resulting from hydroxy and/or carboxy functionalization of alkyl moieties.
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