Live-cell quantitative monitoring reveals distinct, high-affinity Gβγ regulations of GIRK2 and GIRK1/2 channels

R Reem Handklo-Jamal T Tal Keren Raifman B Boris Shalomov P Patrick Hofer U Uri Kahanovitch T Theres Friesacher G Galit Tabak V Vladimir Tsemakhovich H Haritha P. Reddy O Orna Chomsky-Hecht D Debi Ranjan Tripathy K Kerstin Zuhlke C Carmen W. Dessauer E Enno Klussmann Y Yoni Haitin J Joel A. Hirsch A Anna Stary-Weinzinger D Daniel Yakubovich N Nathan Dascal

Abstract

Abstract G i/o protein-coupled receptors (GPCRs) inhibit cardiac and neuronal excitability via G protein-activated K + channels (GIRK), assembled by combinations of GIRK1 - GIRK4 subunits. GIRKs are activated by direct binding of the Gβγ dimer of inhibitory G i/o proteins. However, key aspects of this textbook signaling pathway remain debated. Recent studies suggested no G i/o -GIRK pre-coupling and low (>250 µM) Gβγ-GIRK interaction affinity, contradicting earlier sub-µM estimates and implying low signaling efficiency. We show that Gγ prenylation, which mediates Gβγ membrane attachment required for GIRK activation, also contributes to the Gβγ-GIRK interaction, explaining the poor affinity obtained with non-prenylated Gβγ. Using quantitative protein titration and electrophysiology in live Xenopus oocytes, Gβγ affinity for homotetrameric GIRK2 ranges from 4-30 µM. Heterotetrameric GIRK1/2 shows a higher Gβγ apparent affinity due to the Gβγ-docking site (anchor) in GIRK1, which enriches Gβγ at the channel. Biochemical approaches and molecular dynamic simulations reveal that the Gβγ anchor is formed by interacting N-terminal and distal C-terminal domains of the GIRK1 subunits, distinct from the Gβγ-binding “activation” site(s) underlying channel opening. Thus, the affinity of Gβγ-GIRK interaction is within the expected physiological range, while dynamic pre-coupling of Gβγ to GIRK1-containing channels through high-affinity interactions further enhances the GPCR-G i/o -GIRK signaling efficiency.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 24, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

R

Reem Handklo-Jamal

T

Tal Keren Raifman

B

Boris Shalomov

P

Patrick Hofer

U

Uri Kahanovitch

T

Theres Friesacher

G

Galit Tabak

V

Vladimir Tsemakhovich

H

Haritha P. Reddy

O

Orna Chomsky-Hecht

D

Debi Ranjan Tripathy

K

Kerstin Zuhlke

C

Carmen W. Dessauer

E

Enno Klussmann

Y

Yoni Haitin

J

Joel A. Hirsch

A

Anna Stary-Weinzinger

D

Daniel Yakubovich

N

Nathan Dascal