» Articles » PMID: 9774106

Mechanism of Calcium Gating in Small-conductance Calcium-activated Potassium Channels

Overview
Journal Nature
Specialty Science
Date 1998 Oct 17
PMID 9774106
Citations 399
Authors
Affiliations
Soon will be listed here.
Abstract

The slow afterhyperpolarization that follows an action potential is generated by the activation of small-conductance calcium-activated potassium channels (SK channels). The slow afterhyperpolarization limits the firing frequency of repetitive action potentials (spike-frequency adaptation) and is essential for normal neurotransmission. SK channels are voltage-independent and activated by submicromolar concentrations of intracellular calcium. They are high-affinity calcium sensors that transduce fluctuations in intracellular calcium concentrations into changes in membrane potential. Here we study the mechanism of calcium gating and find that SK channels are not gated by calcium binding directly to the channel alpha-subunits. Instead, the functional SK channels are heteromeric complexes with calmodulin, which is constitutively associated with the alpha-subunits in a calcium-independent manner. Our data support a model in which calcium gating of SK channels is mediated by binding of calcium to calmodulin and subsequent conformational alterations in the channel protein.

Citing Articles

Inactivation of CaV1 and CaV2 channels.

Limpitikul W, Dick I J Gen Physiol. 2025; 157(2).

PMID: 39883005 PMC: 11781272. DOI: 10.1085/jgp.202313531.


From Atrial Small-conductance Calcium-activated Potassium Channels to New Antiarrhythmics.

Saljic A, Heijman J, Dobrev D Eur Cardiol. 2025; 19:e26.

PMID: 39872420 PMC: 11770539. DOI: 10.15420/ecr.2024.41.


Calmodulin binding is required for calcium mediated TRPA1 desensitization.

Sanders J, Taiwo K, Adekanye G, Bali A, Zhang Y, Paulsen C bioRxiv. 2024; .

PMID: 39713425 PMC: 11661184. DOI: 10.1101/2024.12.11.627969.


The role and mechanism of vascular wall cell ion channels in vascular fibrosis remodeling.

Zhang X, Tian H, Xie C, Yang Y, Li P, Cheng J Channels (Austin). 2024; 18(1):2418128.

PMID: 39425532 PMC: 11492694. DOI: 10.1080/19336950.2024.2418128.


Reverse-engineered models reveal differential membrane properties of autonomic and cutaneous unmyelinated fibers.

Thio B, Titus N, Pelot N, Grill W PLoS Comput Biol. 2024; 20(10):e1012475.

PMID: 39374306 PMC: 11486378. DOI: 10.1371/journal.pcbi.1012475.