Molecular Determinants of α3β4 Nicotinic Acetylcholine Receptors Inhibition by Triterpenoids. 2018

Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
Department of Biotechnology, Chonnam National University.

In a previous work, we reported the regulatory role of the triterpenoids on 5-hydroxytryptamine (5-HT)3A receptors activity in Xenopus laevis oocytes (Eur. J. Pharmacol., 615, 2009, Lee et al.). In the present report, we studied the modulation of triterpenoids on the activity of the human nicotinic acetylcholine receptor type α3β4. Two-electrode voltage clamp experiments were used to test acetylcholine mediated inward current (IACh). Treatment with triterpenoids (dehydroeburicoic acid, 6α-hydroxypolyporenic acid C and pachymic acid) inhibited IACh in a concentration dependent and reversible manner. The IC50 values for pachymic acid, dehydroeburicoic acid, and 6α-hydroxypolyporenic acid C were 14.9, 37.7, and 20.9 µM, respectively. The inhibitory regulation of IACh by each triterpenoid showed in a non-competitive manner on the activity of α3β4 nicotinic acetylcholine receptors. These results show that triterpenoids (pachymic acid, dehydroeburicoic acid, 6α-hydroxypolyporenic acid C) can be used as agents to modulate the activity of nicotinic acetylcholine receptor type α3β4. Furthermore, molecular docking studies of 6α-hydroxypolyporenic acid C on α3β4 nicotinic acetylcholine receptors in silico showed that this molecule interacted predominantly with residues at cavities in the α3 subunit and β4 subunit. This docking assays indicated four potential binding sites for this ligand in the extracellular region at sensor domain of α3β4 nicotinic acetylcholine receptors. In point mutagenesis of those whose alanine substitution, 6α-hydroxypolyporenic acid C potency decreased on W25A of α3 subunit or N109A of β4 subunit in both mutants. The double mutation of W25A of α3 subunit and N109A of β4 subunit was significantly attenuated inhibitory effects by 6α-hydroxypolyporenic acid C. All taken together, this study revealed that molecular basis of α3β4 nicotinic acetylcholine receptors by triterpenoids and provides a novel potent interaction ligand.

UI MeSH Term Description Entries
D008564 Membrane Potentials The voltage differences across a membrane. For cellular membranes they are computed by subtracting the voltage measured outside the membrane from the voltage measured inside the membrane. They result from differences of inside versus outside concentration of potassium, sodium, chloride, and other ions across cells' or ORGANELLES membranes. For excitable cells, the resting membrane potentials range between -30 and -100 millivolts. Physical, chemical, or electrical stimuli can make a membrane potential more negative (hyperpolarization), or less negative (depolarization). Resting Potentials,Transmembrane Potentials,Delta Psi,Resting Membrane Potential,Transmembrane Electrical Potential Difference,Transmembrane Potential Difference,Difference, Transmembrane Potential,Differences, Transmembrane Potential,Membrane Potential,Membrane Potential, Resting,Membrane Potentials, Resting,Potential Difference, Transmembrane,Potential Differences, Transmembrane,Potential, Membrane,Potential, Resting,Potential, Transmembrane,Potentials, Membrane,Potentials, Resting,Potentials, Transmembrane,Resting Membrane Potentials,Resting Potential,Transmembrane Potential,Transmembrane Potential Differences
D009865 Oocytes Female germ cells derived from OOGONIA and termed OOCYTES when they enter MEIOSIS. The primary oocytes begin meiosis but are arrested at the diplotene state until OVULATION at PUBERTY to give rise to haploid secondary oocytes or ova (OVUM). Ovocytes,Oocyte,Ovocyte
D010957 Plasmids Extrachromosomal, usually CIRCULAR DNA molecules that are self-replicating and transferable from one organism to another. They are found in a variety of bacterial, archaeal, fungal, algal, and plant species. They are used in GENETIC ENGINEERING as CLONING VECTORS. Episomes,Episome,Plasmid
D011978 Receptors, Nicotinic One of the two major classes of cholinergic receptors. Nicotinic receptors were originally distinguished by their preference for NICOTINE over MUSCARINE. They are generally divided into muscle-type and neuronal-type (previously ganglionic) based on pharmacology, and subunit composition of the receptors. Nicotinic Acetylcholine Receptors,Nicotinic Receptors,Nicotinic Acetylcholine Receptor,Nicotinic Receptor,Acetylcholine Receptor, Nicotinic,Acetylcholine Receptors, Nicotinic,Receptor, Nicotinic,Receptor, Nicotinic Acetylcholine,Receptors, Nicotinic Acetylcholine
D004305 Dose-Response Relationship, Drug The relationship between the dose of an administered drug and the response of the organism to the drug. Dose Response Relationship, Drug,Dose-Response Relationships, Drug,Drug Dose-Response Relationship,Drug Dose-Response Relationships,Relationship, Drug Dose-Response,Relationships, Drug Dose-Response
D000109 Acetylcholine A neurotransmitter found at neuromuscular junctions, autonomic ganglia, parasympathetic effector junctions, a subset of sympathetic effector junctions, and at many sites in the central nervous system. 2-(Acetyloxy)-N,N,N-trimethylethanaminium,Acetilcolina Cusi,Acetylcholine Bromide,Acetylcholine Chloride,Acetylcholine Fluoride,Acetylcholine Hydroxide,Acetylcholine Iodide,Acetylcholine L-Tartrate,Acetylcholine Perchlorate,Acetylcholine Picrate,Acetylcholine Picrate (1:1),Acetylcholine Sulfate (1:1),Bromoacetylcholine,Chloroacetylcholine,Miochol,Acetylcholine L Tartrate,Bromide, Acetylcholine,Cusi, Acetilcolina,Fluoride, Acetylcholine,Hydroxide, Acetylcholine,Iodide, Acetylcholine,L-Tartrate, Acetylcholine,Perchlorate, Acetylcholine
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014315 Triterpenes A class of terpenes (the general formula C30H48) formed by the condensation of six isoprene units, equivalent to three terpene units. Triterpene,Triterpenoid,Triterpenoids
D014982 Xenopus laevis The commonest and widest ranging species of the clawed "frog" (Xenopus) in Africa. This species is used extensively in research. There is now a significant population in California derived from escaped laboratory animals. Platanna,X. laevis,Platannas,X. laevi
D015394 Molecular Structure The location of the atoms, groups or ions relative to one another in a molecule, as well as the number, type and location of covalent bonds. Structure, Molecular,Molecular Structures,Structures, Molecular

Related Publications

Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
May 2021, Molecules (Basel, Switzerland),
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
September 2010, Molecular pharmacology,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
May 2023, International journal of molecular sciences,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
August 2015, Molecular pharmacology,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
July 2017, Journal of medicinal chemistry,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
December 2003, Neuropharmacology,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
December 2001, Neuropharmacology,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
November 2013, The Journal of biological chemistry,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
June 2020, Experimental and clinical psychopharmacology,
Sanung Eom, and Yoon Suh Kim, and Sung Bae Lee, and Shinhwa Noh, and Hye Duck Yeom, and Hyunsu Bae, and Jun-Ho Lee
January 2020, Frontiers in synaptic neuroscience,
Copied contents to your clipboard!