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Updated: Jul 19, 2026

Measuring Nucleotide Binding to Intact, Functional Membrane Proteins in Real Time
Published on: March 11, 2021
Targeted molecular dynamics study of C-loop closure and channel gating in nicotinic receptors
Xiaolin Cheng1, Hailong Wang, Barry Grant
1Howard Hughes Medical Institute, University of California San Diego, La Jolla, California, United States of America. xcheng@mccammon.ucsd.edu
Abstract:
The initial coupling between ligand binding and channel gating in the human alpha7 nicotinic acetylcholine receptor (nAChR) has been investigated with targeted molecular dynamics (TMD) simulation. During the simulation, eight residues at the tip of the C-loop in two alternating subunits were forced to move toward a ligand-bound conformation as captured in the crystallographic structure of acetylcholine binding protein (AChBP) in complex with carbamoylcholine. Comparison of apo- and ligand-bound AChBP structures shows only minor rearrangements distal from the ligand-binding site. In contrast, comparison of apo and TMD simulation structures of the nAChR reveals significant changes toward the bottom of the ligand-binding domain. These structural rearrangements are subsequently translated to the pore domain, leading to a partly open channel within 4 ns of TMD simulation. Furthermore, we confirmed that two highly conserved residue pairs, one located near the ligand-binding pocket (Lys145 and Tyr188), and the other located toward the bottom of the ligand-binding domain (Arg206 and Glu45), are likely to play important roles in coupling agonist binding to channel gating. Overall, our simulations suggest that gating movements of the alpha7 receptor may involve relatively small structural changes within the ligand-binding domain, implying that the gating transition is energy-efficient and can be easily modulated by agonist binding/unbinding.
Insights
Targeted molecular dynamics simulations reveal how ligand binding initiates channel gating in the human alpha7 nicotinic acetylcholine receptor (nAChR). Small structural shifts in the ligand-binding domain trigger pore opening, suggesting an energy-efficient gating mechanism.
Area of Science:
- Molecular biology
- Biophysics
- Computational chemistry
Background:
- The human alpha7 nicotinic acetylcholine receptor (nAChR) is crucial for neurotransmission.
- Understanding the mechanism of nAChR channel gating is vital for drug development.
Purpose of the Study:
- To investigate the initial coupling between ligand binding and channel gating in the human alpha7 nAChR.
- To elucidate the structural rearrangements involved in nAChR activation.
Main Methods:
- Targeted molecular dynamics (TMD) simulations were employed.
- Simulations forced specific residues toward a ligand-bound conformation.
- Structural comparisons were made between apo and ligand-bound states.
Main Results:
- Significant structural changes occurred at the bottom of the ligand-binding domain in nAChR.
- These rearrangements translated to the pore domain, opening the channel within 4 ns.
- Conserved residue pairs (Lys145/Tyr188 and Arg206/Glu45) are implicated in coupling binding to gating.
Conclusions:
- nAChR gating involves subtle structural changes in the ligand-binding domain.
- The gating transition appears energy-efficient and sensitive to agonist binding/unbinding.
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