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K2.2(KCNN2):一种具有生理和治疗意义的钾通道。

K 2.2 (KCNN2): A physiologically and therapeutically important potassium channel.

机构信息

Department of Biomedical and Pharmaceutical Sciences, Chapman University School of Pharmacy, Irvine, California, USA.

出版信息

J Neurosci Res. 2023 Nov;101(11):1699-1710. doi: 10.1002/jnr.25233. Epub 2023 Jul 19.


DOI:10.1002/jnr.25233
PMID:37466411
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10932612/
Abstract

One group of the K ion channels, the small-conductance Ca -activated potassium channels (K 2.x, also known as SK channels family), is widely expressed in neurons as well as the heart, endothelial cells, etc. They are named small-conductance Ca -activated potassium channels (SK channels) due to their comparatively low single-channel conductance of about ~10 pS. These channels are insensitive to changes in membrane potential and are activated solely by rises in the intracellular Ca . According to the phylogenic research done on the K 2.x channels family, there are three channels' subtypes: K 2.1, K 2.2, and K 2.3, which are encoded by KCNN1, KCNN2, and KCNN3 genes, respectively. The K 2.x channels regulate neuronal excitability and responsiveness to synaptic input patterns. K 2.x channels inhibit excitatory postsynaptic potentials (EPSPs) in neuronal dendrites and contribute to the medium afterhyperpolarization (mAHP) that follows the action potential bursts. Multiple brain regions, including the hippocampus, express the K 2.2 channel encoded by the KCNN2 gene on chromosome 5. Of particular interest, rat cerebellar Purkinje cells express K 2.2 channels, which are crucial for various cellular processes during development and maturation. Patients with a loss-of-function of KCNN2 mutations typically exhibit extrapyramidal symptoms, cerebellar ataxia, motor and language developmental delays, and intellectual disabilities. Studies have revealed that autosomal dominant neurodevelopmental movement disorders resembling rodent symptoms are caused by heterozygous loss-of-function mutations, which are most likely to induce KCNN2 haploinsufficiency. The K 2.2 channel is a promising drug target for spinocerebellar ataxias (SCAs). SCAs exhibit the dysregulation of firing in cerebellar Purkinje cells which is one of the first signs of pathology. Thus, selective K 2.2 modulators are promising potential therapeutics for SCAs.

摘要

钾离子通道(K + 离子通道)中的一组,小电导钙激活钾通道(K 2.x,也称为 SK 通道家族),在神经元以及心脏、内皮细胞等中广泛表达。它们被命名为小电导钙激活钾通道(SK 通道),是因为它们的单通道电导相对较低,约为~10 pS。这些通道对膜电位的变化不敏感,仅被细胞内 Ca 2+ 的升高激活。根据对 K 2.x 通道家族的系统发生研究,有三种通道亚型:K 2.1、K 2.2 和 K 2.3,它们分别由 KCNN1、KCNN2 和 KCNN3 基因编码。K 2.x 通道调节神经元的兴奋性和对突触输入模式的反应性。K 2.x 通道抑制神经元树突中的兴奋性突触后电位(EPSP),并有助于动作电位爆发后的中期后超极化(mAHP)。包括海马体在内的多个脑区表达染色体 5 上的 KCNN2 基因编码的 K 2.2 通道。特别有趣的是,大鼠小脑浦肯野细胞表达 K 2.2 通道,这对于发育和成熟过程中的各种细胞过程至关重要。KCNN2 基因突变的功能丧失患者通常表现出锥体外系症状、小脑共济失调、运动和语言发育迟缓以及智力障碍。研究表明,类似于啮齿动物症状的常染色体显性神经发育运动障碍是由杂合功能丧失突变引起的,最有可能导致 KCNN2 单倍不足。K 2.2 通道是脊髓小脑共济失调(SCA)的有前途的药物靶点。SCA 表现为小脑浦肯野细胞放电失调,这是病理学的第一个迹象之一。因此,选择性的 K 2.2 调节剂是 SCA 的有前途的潜在治疗方法。

相似文献

[1]
K 2.2 (KCNN2): A physiologically and therapeutically important potassium channel.

J Neurosci Res. 2023-11

[2]
Distinct contributions of small and large conductance Ca2+-activated K+ channels to rat Purkinje neuron function.

J Physiol. 2003-4-1

[3]
Apamin-sensitive small conductance calcium-activated potassium channels, through their selective coupling to voltage-gated calcium channels, are critical determinants of the precision, pace, and pattern of action potential generation in rat subthalamic nucleus neurons in vitro.

J Neurosci. 2003-8-20

[4]
Iberiotoxin-sensitive and -insensitive BK currents in Purkinje neuron somata.

J Neurophysiol. 2013-2-27

[5]
Increased calcium-dependent K+ channel activity contributes to the maturation of cellular firing patterns in developing cerebellar Purkinje neurons.

Brain Res Dev Brain Res. 1998-6-15

[6]
Variants in the SK2 channel gene (KCNN2) lead to dominant neurodevelopmental movement disorders.

Brain. 2020-12-1

[7]
Kv7/KCNQ/M and HCN/h, but not KCa2/SK channels, contribute to the somatic medium after-hyperpolarization and excitability control in CA1 hippocampal pyramidal cells.

J Physiol. 2005-8-1

[8]
HDAC2-dependent remodeling of K2.2 (KCNN2) and K2.3 (KCNN3) K channels in atrial fibrillation with concomitant heart failure.

Life Sci. 2021-2-1

[9]
Developmental regulation of small-conductance Ca2+-activated K+ channel expression and function in rat Purkinje neurons.

J Neurosci. 2002-6-1

[10]
SK2 channel expression and function in cerebellar Purkinje cells.

J Physiol. 2011-4-26

引用本文的文献

[1]
A Novel de novo Exceptional Complex Chromosomal Rearrangement Involving 5 Chromosomes Resulting in Neurodevelopmental Delay and Dysmorphism.

Mol Syndromol. 2025-3-25

[2]
Multi-Omics Approach Reveals Genes and Pathways Affected in Miller-Dieker Syndrome.

Mol Neurobiol. 2025-4

[3]
Oxidative stress and ion channels in neurodegenerative diseases.

Front Physiol. 2024-1-29

[4]
A Single-Nucleus Transcriptome-Wide Association Study Implicates Novel Genes in Depression Pathogenesis.

Biol Psychiatry. 2024-7-1

本文引用的文献

[1]
Loss-of-function K2.2 mutations abolish channel activity.

Am J Physiol Cell Physiol. 2023-3-1

[2]
Ca-Sensitive Potassium Channels.

Molecules. 2023-1-16

[3]
Characterization and Chemical Synthesis of Cm39 (α-KTx 4.8): A Scorpion Toxin That Inhibits Voltage-Gated K Channel K1.2 and Small- and Intermediate-Conductance Ca-Activated K Channels K2.2 and K3.1.

Toxins (Basel). 2023-1-5

[4]
Channelopathy of small- and intermediate-conductance Ca-activated K channels.

Acta Pharmacol Sin. 2023-2

[5]
Channelopathy-causing mutations in the SA/SB and HA/HB helices of K2.3 and K3.1 channels alter their apparent Ca sensitivity.

Cell Calcium. 2022-3

[6]
Subtype-selective positive modulation of K 2 channels depends on the HA/HB helices.

Br J Pharmacol. 2022-2

[7]
Spinocerebellar ataxias (SCAs) caused by common mutations.

Neurogenetics. 2021-10

[8]
Physiology and Therapeutic Potential of SK, H, and M Medium AfterHyperPolarization Ion Channels.

Front Mol Neurosci. 2021-6-3

[9]
Differential regulation of K 2.1 (KCNN1) K channel expression by histone deacetylases in atrial fibrillation with concomitant heart failure.

Physiol Rep. 2021-6

[10]
Spinocerebellar ataxia clinical trials: opportunities and challenges.

Ann Clin Transl Neurol. 2021-7

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