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Published on: December 19, 2025
Modulation of gain-of-function α6*-nicotinic acetylcholine receptor by β3 subunits
Bhagirathi Dash1, Ronald J Lukas
1Division of Neurobiology, Barrow Neurological Institute, Phoenix, Arizona 85013, USA.
Abstract:
We previously have shown that β3 subunits either eliminate (e.g. for all-human (h) or all-mouse (m) α6β4β3-nAChR) or potentiate (e.g. for hybrid mα6hβ4hβ3- or mα6mβ4hβ3-nAChR containing subunits from different species) function of α6*-nAChR expressed in Xenopus oocytes, and that nAChR hα6 subunit residues Asn-143 and Met-145 in N-terminal domain loop E are important for dominant-negative effects of nAChR hβ3 subunits on hα6*-nAChR function. Here, we tested the hypothesis that these effects of β3 subunits would be preserved even if nAChR α6 subunits harbored gain-of-function, leucine- or valine-to-serine mutations at 9' or 13' positions (L9'S or V13'S) in their second transmembrane domains, yielding receptors with heightened functional activity and more amenable to assessment of effects of β3 subunit incorporation. However, coexpression with β3 subunits potentiates rather than suppresses function of all-human, all-mouse, or hybrid α6((L9'S or V13'S))β4*- or α6(N143D+M145V)(L9'S)β2*-nAChR. This contrasts with the lack of consistent function when α6((L9'S or V13'S)) and β2 subunits are expressed alone or in the presence of wild-type β3 subunits. These results provide evidence that gain-of-function hα6hβ2*-nAChR (i.e. hα6(N143D+M145V)(L9'S)hβ2hβ3 nAChR) could be produced in vitro. These studies also indicate that nAChR β3 subunits can be assembly partners in functional α6*-nAChR and that 9' or 13' mutations in the nAChR α6 subunit second transmembrane domain can act as gain-of-function and/or reporter mutations. Moreover, our findings suggest that β3 subunit coexpression promotes function of α6*-nAChR.
Insights
Nicotinic acetylcholine receptor (nAChR) β3 subunits enhance the function of α6*-nAChR, even with gain-of-function mutations in the α6 subunit. These findings indicate β3 subunits are key assembly partners in functional α6*-nAChR.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Nicotinic acetylcholine receptors (nAChRs) are crucial for neuronal signaling.
- Previous studies showed β3 subunits modulate α6*-nAChR function, with specific residues in the α6 subunit influencing these effects.
Purpose of the Study:
- To investigate if β3 subunit effects on α6*-nAChR function persist with gain-of-function mutations in the α6 subunit.
- To explore the role of specific mutations (L9'S or V13'S) in the α6 subunit's second transmembrane domain.
Main Methods:
- Coexpression of various human (h) and mouse (m) α6, β4, and β2 nAChR subunits in Xenopus oocytes.
- Introduction of gain-of-function mutations (L9'S or V13'S) into the α6 subunit's second transmembrane domain.
- Assessment of receptor function through electrophysiological recordings.
Main Results:
- Coexpression with β3 subunits potentiated the function of α6((L9'S or V13'S))β4*- and α6(N143D+M145V)(L9'S)β2*-nAChRs, regardless of subunit origin (human or mouse).
- This potentiation contrasted with the inconsistent function observed when α6((L9'S or V13'S)) and β2 subunits were expressed without β3.
- Gain-of-function hα6hβ2*-nAChRs, specifically hα6(N143D+M145V)(L9'S)hβ2hβ3 nAChR, were successfully produced in vitro.
Conclusions:
- Nicotinic acetylcholine receptor β3 subunits can serve as assembly partners in functional α6*-nAChRs.
- Mutations at the 9' or 13' positions in the α6 subunit's second transmembrane domain act as gain-of-function and/or reporter mutations.
- β3 subunit coexpression generally promotes the function of α6*-nAChRs, even in the presence of specific gain-of-function mutations.
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