Ca2+和g蛋白对Cav2.2 n型Ca2+通道的复杂调控。

IF 2.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES PLoS ONE Pub Date : 2025-02-07 eCollection Date: 2025-01-01 DOI:10.1371/journal.pone.0314839
Jessica R Thomas, Jinglang Sun, Juan De la Rosa Vazquez, Amy Lee
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引用次数: 0

摘要

g蛋白偶联受体通过由Gαi/Gβγ介导的快速电压依赖性途径和由g αq依赖性磷脂酰肌醇4,5-二磷酸(PIP2)减少或花生四烯酸增加介导的缓慢电压依赖性途径抑制Cav2.2 n型Ca2+通道。这些形式的调控研究通常采用Ba2+作为渗透离子,尽管Ca2+依赖性途径可能会影响g蛋白的调节。为了解决这种可能性,我们比较了在转染Cav2.2的HEK293T细胞中,Ba2+ (IBa)和Ca2+ (ICa)携带电流的强直性g蛋白抑制。IBa和ICa均表现出电压依赖性促进(VDF),与Gβγ脱离通道相一致。与IBa相比,ICa的VDF对Gα蛋白抑制剂(GDP-β-S)和Gβγ (g蛋白偶联受体激酶2的c端构建体)的抑制剂不太敏感。尽管对细胞内高Ca2+缓冲不敏感,但保留在GDP-β-S中的ICa的VDF被PIP2的减少所钝化。我们提出,当g蛋白被抑制时,Ca2+通过Cav2.2内流促进了一种涉及PIP2的VDF形式。我们的研究结果强调了Cav2.2通道整合g蛋白信号通路的复杂性,这可能丰富了神经系统中化学突触的信息编码潜力。
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Complex regulation of Cav2.2 N-type Ca2+ channels by Ca2+ and G-proteins.

G-protein coupled receptors inhibit Cav2.2 N-type Ca2+ channels by a fast, voltage-dependent pathway mediated by Gαi/Gβγ and a slow, voltage-independent pathway mediated by Gαq-dependent reductions in phosphatidylinositol 4,5-bisphosphate (PIP2) or increases in arachidonic acid. Studies of these forms of regulation generally employ Ba2+ as the permeant ion, despite that Ca2+ -dependent pathways may impinge upon G-protein modulation. To address this possibility, we compared tonic G-protein inhibition of currents carried by Ba2+ (IBa) and Ca2+ (ICa) in HEK293T cells transfected with Cav2.2. Both IBa and ICa exhibited voltage-dependent facilitation (VDF), consistent with Gβγ unbinding from the channel. Compared to that for IBa, VDF of ICa was less sensitive to an inhibitor of Gα proteins (GDP-β-S) and an inhibitor of Gβγ (C-terminal construct of G-protein coupled receptor kinase 2). While insensitive to high intracellular Ca2+ buffering, VDF of ICa that remained in GDP-β-S was blunted by reductions in PIP2. We propose that when G-proteins are inhibited, Ca2+ influx through Cav2.2 promotes a form of VDF that involves PIP2. Our results highlight the complexity whereby Cav2.2 channels integrate G-protein signaling pathways, which may enrich the information encoding potential of chemical synapses in the nervous system.

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来源期刊
PLoS ONE
PLoS ONE 生物-生物学
CiteScore
6.20
自引率
5.40%
发文量
14242
审稿时长
3.7 months
期刊介绍: PLOS ONE is an international, peer-reviewed, open-access, online publication. PLOS ONE welcomes reports on primary research from any scientific discipline. It provides: * Open-access—freely accessible online, authors retain copyright * Fast publication times * Peer review by expert, practicing researchers * Post-publication tools to indicate quality and impact * Community-based dialogue on articles * Worldwide media coverage
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