Mechanism of hydrophobic gating in the acetylcholine receptor channel pore

Author:

Kumari Monika1ORCID,Khatoon Nadira2ORCID,Sharma Rachita2ORCID,Adusumilli Sushanth2ORCID,Auerbach Anthony3ORCID,Kashyap Hemant K.1ORCID,Nayak Tapan K.2ORCID

Affiliation:

1. Indian Institute of Technology Delhi 2 Department of Chemistry, , Hauz Khas, New Delhi, India

2. Indian Institute of Technology Delhi 1 Kusuma School of Biological Sciences, , Hauz Khas, New Delhi, India

3. University at Buffalo 3 Jacobs School of Medicine and Biomedical Sciences, , Buffalo, NY, USA

Abstract

Neuromuscular acetylcholine receptors (AChRs) are hetero-pentameric, ligand-gated ion channels. The binding of the neurotransmitter acetylcholine (ACh) to two target sites promotes a global conformational change of the receptor that opens the channel and allows ion conduction through the channel pore. Here, by measuring free-energy changes from single-channel current recordings and using molecular dynamics simulations, we elucidate how a constricted hydrophobic region acts as a “gate” to regulate the channel opening in the pore of AChRs. Mutations of gate residues, including those implicated in congenital myasthenia syndrome, lower the permeation barrier of the channel substantially and increase the unliganded gating equilibrium constant (constitutive channel openings). Correlations between hydrophobicity and the observed free-energy changes, supported by calculations of water densities in the wild-type versus mutant channel pores, provide evidence for hydrophobic wetting–dewetting transition at the gate. The analysis of a coupled interaction network provides insight into the molecular mechanism of closed- versus open-state conformational changes at the gate. Studies of the transition state by “phi”(φ)-value analysis indicate that agonist binding serves to stabilize both the transition and the open state. Intersubunit interaction energy measurements and molecular dynamics simulations suggest that channel opening involves tilting of the pore-lining M2 helices, asymmetric outward rotation of amino acid side chains, and wetting transition of the gate region that lowers the barrier to ion permeation and stabilizes the channel open conformation. Our work provides new insight into the hydrophobic gate opening and shows why the gate mutations result in constitutive AChR channel activity.

Funder

Science and Engineering Research Board

Publisher

Rockefeller University Press

Subject

Physiology

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1. Dynamics of receptor activation by agonists;Biophysical Journal;2024-01

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