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首页> 外文期刊>The Journal of general physiology >Custom Distinctions in the Interaction of G-protein β Subunits with N-type (CaV2.2) Versus P/Q-type (CaV2.1) Calcium Channels
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Custom Distinctions in the Interaction of G-protein β Subunits with N-type (CaV2.2) Versus P/Q-type (CaV2.1) Calcium Channels

机译:G蛋白β亚基与N型(CaV2.2)与P / Q型(CaV2.1)钙通道相互作用的自定义区分

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Inhibition of N- (Cav2.2) and P/Q-type (Cav2.1) calcium channels by G-proteins contribute importantly to presynaptic inhibition as well as to the effects of opiates and cannabinoids. Accordingly, elucidating the molecular mechanisms underlying G-protein inhibition of voltage-gated calcium channels has been a major research focus. So far, inhibition is thought to result from the interaction of multiple proposed sites with the Gβγ complex (Gβγ). Far less is known about the important interaction sites on Gβγ itself. Here, we developed a novel electrophysiological paradigm, “compound-state willing-reluctant analysis,” to describe Gβγ interaction with N- and P/Q-type channels, and to provide a sensitive and efficient screen for changes in modulatory behavior over a broad range of potentials. The analysis confirmed that the apparent (un)binding kinetics of Gβγ with N-type are twofold slower than with P/Q-type at the voltage extremes, and emphasized that the kinetic discrepancy increases up to ten-fold in the mid-voltage range. To further investigate apparent differences in modulatory behavior, we screened both channels for the effects of single point alanine mutations within four regions of Gβ1, at residues known to interact with Gα. These residues might thereby be expected to interact with channel effectors. Of eight mutations studied, six affected G-protein modulation of both N- and P/Q-type channels to varying degrees, and one had no appreciable effect on either channel. The remaining mutation was remarkable for selective attenuation of effects on P/Q-, but not N-type channels. Surprisingly, this mutation decreased the (un)binding rates without affecting its overall affinity. The latter mutation suggests that the binding surface on Gβγ for N- and P/Q-type channels are different. Also, the manner in which this last mutation affected P/Q-type channels suggests that some residues may be important for “steering” or guiding the protein into the binding pocket, whereas others are important for simply binding to the channel.
机译:G蛋白对N-(Cav2.2)和P / Q型(Cav2.1)钙通道的抑制作用对突触前抑制以及鸦片和大麻素的作用有重要作用。因此,阐明潜在的G蛋白抑制电压门控钙通道的分子机制已成为主要研究重点。迄今为止,认为抑制是由于多个提议的位点与Gβγ复合物(Gβγ)的相互作用引起的。人们对Gβγ本身上重要的相互作用位点知之甚少。在这里,我们开发了一种新颖的电生理范式,“化合物态愿意-不愿分析”,以描述Gβγ与N和P / Q型通道的相互作用,并为广泛的调制行为变化提供灵敏而有效的筛选潜力范围。分析证实,在极端电压下,N型Gβγ的表观(非)结合动力学比P / Q型慢两倍,并强调在中压范围内动力学差异增加至十倍。 。为了进一步研究调节行为的明显差异,我们在已知与Gα相互作用的残基处,针对Gβ1四个区域内的单点丙氨酸突变的影响,对两个通道进行了筛选。从而可以预期这些残基与通道效应子相互作用。在研究的八种突变中,有六种在不同程度上影响了N型通道和P / Q型通道的G蛋白调节,并且其中一个对任一通道均无明显影响。剩下的突变对于选择性减弱对P / Q-的影响非常显着,但对N型通道却没有。出人意料的是,这种突变降低了(非)结合率,而不影响其整体亲和力。后一种突变表明,Gβγ上N和P / Q型通道的结合表面是不同的。同样,最后一个突变影响P / Q型通道的方式表明,某些残基可能对“引导”或将蛋白导入结合袋很重要,而其他残基对于简单地与通道结合很重要。

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