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Alpha3, beta2, and beta4 form heterotrimeric neuronal nicotinic acetylcholine receptors in Xenopus oocytes
1Division of Neuroscience, Baylor College of Medicine, Houston, Texas, U.S.A.
Abstract:
One of the problems faced when using heterologous expression systems to study receptors is that the pharmacological and physiological properties of expressed receptors often differ from those of native receptors. In the case of neuronal nicotinic receptors, one or two subunit cDNAs are sufficient for expression of functional receptors in Xenopus oocytes. However, the stoichiometries of nicotinic receptors in neurons are not known and expression patterns of mRNA coding for different nicotinic receptor subunits often overlap. Consequently, one explanation for the discrepancy between properties of native versus heterologously expressed nicotinic receptors is that more than two types of subunit are necessary for correctly functioning receptors. The Xenopus oocyte expression system was used to test the hypothesis that more than two types of subunit can coassemble; specifically, can two different beta subunits assemble with an alpha subunit forming a receptor with unique pharmacological properties? We expressed combinations of cDNA coding for alpha3, beta2, and beta4 subunits. Beta2 and beta4, in pairwise combination with alpha3, are differentially sensitive to cytisine and neuronal bungarotoxin (nBTX). Alpha3beta4 receptors are activated by cytisine and are not blocked by low concentrations of nBTX; acetylcholine-evoked currents through alpha3beta2 receptors are blocked by both cytisine and low concentrations of nBTX. Coinjection of cDNA coding for alpha3, beta2, and beta4 into oocytes resulted in receptors that were activated by cytisine and blocked by nBTX, thus demonstrating inclusion of both beta2 and beta4 subunits in functional receptors.
Insights
Heterologous expression of neuronal nicotinic receptors can yield different properties than native receptors. This study shows that including more than two subunits, like alpha3, beta2, and beta4, creates functional receptors with unique characteristics.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Receptor properties in heterologous systems often differ from native receptors.
- Neuronal nicotinic receptors (nAChRs) typically require specific subunit stoichiometries for function.
- Understanding nAChR subunit assembly is crucial for accurate pharmacological studies.
Purpose of the Study:
- To investigate if more than two nAChR subunits can coassemble into functional receptors.
- To determine if coassembly of alpha3, beta2, and beta4 subunits yields unique pharmacological profiles.
- To test the hypothesis that complex subunit combinations explain discrepancies in expressed vs. native receptor properties.
Main Methods:
- Utilized the Xenopus oocyte expression system.
- Expressed combinations of cDNA coding for alpha3, beta2, and beta4 nAChR subunits.
- Characterized receptor function and pharmacology using cytisine and neuronal bungarotoxin (nBTX).
Main Results:
- Alpha3beta4 receptors were activated by cytisine and resistant to low nBTX concentrations.
- Alpha3beta2 receptors were blocked by both cytisine and low nBTX concentrations.
- Receptors formed by co-expressing alpha3, beta2, and beta4 subunits showed sensitivity to both cytisine and nBTX, indicating co-assembly.
Conclusions:
- Demonstrated that more than two nAChR subunits (specifically beta2 and beta4 with alpha3) can coassemble into functional receptors.
- The coassembly of multiple subunits results in distinct pharmacological properties compared to pairwise combinations.
- This finding provides a potential explanation for observed differences between heterologously expressed and native neuronal nicotinic receptors.
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