Active site mutations and substrate inhibition in human sulfotransferase 1A1 and 1A3

Amanda C Barnett1, Sergey Tsvetanov, Niranjali Gamage

  • 1School of Biomedical Sciences, Institute for Molecular Bioscience, University of Queensland, Brisbane, Queensland 4072, Australia.

Insights

Sulfotransferase enzymes SULT1A1 and SULT1A3 exhibit distinct substrate inhibition patterns. Key residue Phe-247 in SULT1A1 is crucial for this inhibition, with mutations altering substrate specificity.

Area of Science:

  • Biochemistry
  • Enzymology

Background:

  • Human sulfotransferase 1A1 (SULT1A1) sulfonates xenobiotics and activates promutagens, linking it to cancer.
  • Human sulfotransferase 1A3 (SULT1A3) is the primary enzyme for dopamine sulfonation.
  • SULT1A1 and SULT1A3 share high sequence identity (93%) but have distinct substrate preferences.

Purpose of the Study:

  • To elucidate the mechanisms controlling substrate preferences and inhibition in SULT1A1 and SULT1A3.
  • To investigate the molecular basis of substrate inhibition in these closely related sulfotransferases.

Main Methods:

  • Crystal structure analysis
  • Molecular modeling
  • Site-directed mutagenesis
  • Kinetic analysis

Main Results:

  • SULT1A1 shows substrate inhibition with p-nitrophenol (pNP) but not dopamine, while SULT1A3 exhibits inhibition with dopamine but not pNP.
  • Residue Phe-247 in SULT1A1 is critical for pNP-mediated substrate inhibition; mutating it to leucine enables dopamine inhibition.
  • Modeling and kinetic studies suggest SULT1A3 inhibition by dopamine involves binding of two dopamine molecules in the active site.

Conclusions:

  • The distinct substrate inhibition profiles of SULT1A1 and SULT1A3 are determined by specific active site residues and substrate interactions.
  • Phe-247 plays a key role in regulating substrate inhibition in SULT1A1.
  • Understanding these mechanisms provides insights into sulfotransferase function and drug development.

Related Concept Videos

Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase01:27

Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase

Phase II biotransformation reactions are essential for detoxifying and eliminating xenobiotics, including many pharmaceutical compounds. These reactions typically involve conjugation, the covalent attachment of polar endogenous groups such as glucuronic acid, sulfate, methyl, or acetyl moieties to functional groups introduced during Phase I metabolism. The resulting conjugates are more water-soluble, enabling efficient renal or biliary excretion.The major classes of Phase II enzymes include...
Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters01:16

Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters

The pharmacogenetics of drug transporters is increasingly recognized as a critical factor influencing interindividual variability in drug absorption, distribution, and elimination. These membrane-bound proteins regulate drugs' movement across cellular barriers by actively pumping them out (efflux) or facilitating their uptake (influx). Among the major transporter families, ATP-binding cassette (ABC) and solute carrier (SLC) transporters play particularly prominent roles. Genetic polymorphisms...
Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase01:11

Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase

Genetic polymorphisms in drug targets have emerged as critical determinants of interindividual variability in drug response and toxicity. Pharmacogenomic investigations increasingly focus on identifying these variations to personalize and optimize therapeutic interventions. A drug target may be a receptor, enzyme, or signaling protein involved in pharmacologic responses or disease-related pathways. While early pharmacogenetic studies focused primarily on drug metabolism, current research...
Pharmacogenetics of Phase I Enzymes: Cytochrome P450 Isozymes01:28

Pharmacogenetics of Phase I Enzymes: Cytochrome P450 Isozymes

Cytochrome P450 (CYP450) enzymes are a superfamily of heme-containing monooxygenases that play a pivotal role in Phase I drug metabolism by catalyzing oxidation and reduction reactions.These enzymes transform lipophilic xenobiotics into more hydrophilic metabolites, facilitating subsequent Phase II conjugation and eventual excretion. The CYP450 family is classified into families (e.g., CYP1–CYP3) and subfamilies (e.g., CYP2A, CYP2C), based on amino acid sequence homology.CYP450 isoenzymes,...
Allosteric Proteins-ATCase01:19

Allosteric Proteins-ATCase

Binding sites linkages can regulate a protein's function.  For example, enzyme activity is often regulated through a feedback mechanism where the end product of the biochemical process serves as an inhibitor.
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to  N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis pathway,...
Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu01:29

Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu

Genetic variations significantly influence drug response through pharmacokinetics, receptor interactions, and biologic milieu modifications. Pharmacokinetic alterations impact drug metabolism and clearance, affecting efficacy and toxicity. Variants in drug-metabolizing enzymes, such as CYP2C9 and CYP2C19, alter drug activation and elimination. For example, CYP2C9 loss-of-function variants require lower warfarin doses to prevent excessive bleeding, while CYP2C19 variants reduce clopidogrel...