4.7 Article

The coupling interface and pore domain codetermine the single-channel activity of the α7 nicotinic receptor

Journal

NEUROPHARMACOLOGY
Volume 95, Issue -, Pages 448-458

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.neuropharm.2015.04.010

Keywords

Nicotinic receptor; Patch-clamp; Channel gating; Channel coupling

Funding

  1. National Basic Research Program of China [2011CB504102, 2012CB722407]
  2. National Natural Science Foundation of China [31271136, 31100767, 81371398]
  3. Beijing Natural Science Foundation Program of Beijing Municipal Commission of Education [KZ201210025020, 7131001]
  4. Scientific Research Key Program of Beijing Municipal Commission of Education [KZ201210025020, 7131001]
  5. National Institutes of Health Grant [R01GM085237]
  6. Clinic-Basic Fund of Capital Medical University [13JL39, 14JL41]
  7. Project of Construction of Innovative Teams and Teacher Career Development for Universities and Colleges Under Beijing Municipality [IDHT20140514]
  8. [BIBD-PXM2013_014226_07_000084]

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Ligand-gated ion channels play a role in mediating fast synaptic transmission for communication between neurons. However, the structural basis for the functional coupling of the binding and pore domains, resulting in channel opening, remains a topic of intense investigation. Here, a series of alpha 7 nicotinic receptor mutants were constructed for expression in cultured mammalian cells, and their single-channel properties were examined using the patch-clamp technique combined with radio ligand binding and the fluorescence staining technique. We demonstrated that the replacement of the four pore-lining residues in the channel domain of the alpha 7 nicotinic receptor with the hydrophilic residue serine prolongs the open-channel lifetime, although the conductance of these mutants decreases. At the coupling interface between the extracellular and transmembrane domains, when the VRW residues in the Cys-loop were substituted with the corresponding residues (i.e., IYN) in the 5-HT3A receptor, the single-channel activity elicited by acetylcholine is impaired. This effect occurred despite the expression of the mutant receptors on the cell surface and despite the fact that the apparent K-d values were much lower than those of the wild-type alpha 7 receptor. When we further lowered the channel-gating barrier of this chimera to enhance the open-channel probability, the loss of function was rescued. Overall, we explored the microscopic mechanisms underlying the interplay between the channel domains and the coupling interface that affect the channel activity, and we generated an allosteric gating model for the alpha 7 receptor. This model shows that the gating machinery and coupling assembly codetermine the single-channel gating kinetics. These results likely apply to all channels in the Cys-loop receptor family. (C) 2015 Elsevier Ltd. All rights reserved.

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