Atomistic mechanisms of calcium permeation modulated by Q/R editing and selectivity filter mutations in GluA2 AMPA receptors

成果类型:
Article
署名作者:
Heiser, Florian; Biedermann, Johann; Kuru, Ece; Plested, Andrew J. R.; Sun, Han
署名单位:
Humboldt University of Berlin; Leibniz Association; Leibniz Forschungsinstitut furr Molekulare Pharmakologie (FMP); Technical University of Berlin; Technische Universitat Dresden; Humboldt University of Berlin
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-9396
DOI:
10.1073/pnas.2425172122
发表日期:
2025-08-19
关键词:
ca2+ permeability glutamate receptors molecular-dynamics polyamine block software news subunit channel nmda gui rectification
摘要:
GluA2 is a key subunit of a-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor (AMPAR) ion channels that is abundantly expressed in the vertebrate brain. Posttranscriptional Q/R editing of GluA2 renders AMPARs nearly impermeable to calcium ions, which is crucial for their normal function. Although previous studies have characterized conductivity and selectivity differences between edited and unedited GluA2 variants and heteromeric receptors incorporating GluA2, the consequences of pore editing have not been studied in all-atom simulations, which leave the atomistic mechanisms unclear. In this study, we investigate ion permeation in the context of multiple Ca2+ binding sites along the pore predicted from molecular dynamics (MD) simulations, considering both mutations and co-permeating monovalent ions. Patch clamp electrophysiology recordings confirmed a binding site at the intracellular mouth of the selectivity filter that confers selectivity for calcium over monovalent ions. A patient mutation at the same site has been previously shown to cause neurodevelopmental abnormalities. Furthermore, MD simulations of GluA2 with different arginine copy number at the Q/R site show that Ca2+ conduction is blocked in the presence of two arginines, whereas K+ is only blocked by four arginines, in explaining the results from decades of electrophysiological work. Finally, MD simulations revealed that Ca2+ reduces K+ conduction by preferentially occupying the intracellular selectivity filter binding site, whereas Na+ does not. This result is consistent with electrophysiological results from the D590 mutants and suggests that divalent binding in the selectivity filter is a major determinant of AMPAR conductance.
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