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Subunit gating resulting from individual protonation events in Kir2 channels

  • Grigory Maksaev
  • , Michael Bründl-Jirout
  • , Anna Stary-Weinzinger
  • , Eva-Maria Zangerl-Plessl
  • , Sun-Joo Lee
  • , Colin G Nichols

Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

Abstract

Inwardly rectifying potassium (Kir) channels open at the 'helix bundle crossing' (HBC), formed by the M2 helices at the cytoplasmic end of the transmembrane pore. Introduced negative charges at the HBC (G178D) in Kir2.2 channels forces opening, allowing pore wetting and free movement of permeant ions between the cytoplasm and the inner cavity. Single-channel recordings reveal striking, pH-dependent, subconductance behaviors in G178D (or G178E and equivalent Kir2.1[G177E]) mutant channels, with well-resolved non-cooperative subconductance levels. Decreasing cytoplasmic pH shifts the probability towards lower conductance levels. Molecular dynamics simulations show how protonation of Kir2.2[G178D], or the D173 pore-lining residues, changes solvation, K+ ion occupancy, and K+ conductance. Ion channel gating and conductance are classically understood as separate processes. The present data reveal how individual protonation events change the electrostatic microenvironment of the pore, resulting in step-wise alterations of ion pooling, and hence conductance, that appear as 'gated' substates.

OriginalspracheEnglisch
Aufsatznummer4538
Seiten (von - bis)4538
FachzeitschriftNature Communications
Jahrgang14
Ausgabenummer1
DOIs
PublikationsstatusVeröffentlicht - 28 Juli 2023

Fördermittel

This work was supported by NIH R35 HL140024 to C.G.N., NIH R03 TR003670 to S.J-.L., Austrian Science Fund grant nr. W1232 (Moltag) to M.B.-J. and A.S.-W, and the post-doc program \u201CZukunftskolleg\u201D ZK-81B to E.-M.Z.-P. Molecular Dynamics simulations were achieved with resources provided by the Vienna Scientific Cluster (VSC) and the Texas Advanced Computing Center (TACC).

ÖFOS 2012

  • 301206 Pharmakologie

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