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首页> 外文期刊>The Journal of Physiology >Ca2+ transport properties and determinants of anomalous mole fraction effects of single voltage-gated Ca2+ channels in hair cells from bullfrog saccule.
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Ca2+ transport properties and determinants of anomalous mole fraction effects of single voltage-gated Ca2+ channels in hair cells from bullfrog saccule.

机译:Ca2 +的输运特性和牛蛙囊毛细胞中单个电压门控的Ca2 +通道中异常摩尔分数影响的决定因素。

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We studied the permeation properties of two distinct single voltage-gated Ca2+ channels in bullfrog saccular hair cells to assess the roles of the channels as physiological Ca2+ transporters and multi-ion pores. By varying the permeant ions (Ba2+, Ca2+) and concentrations (2-70 mM), we estimated the affinity constant (K(D)) of the two channels as follows (mM): L-type channel, K(D,Ba) = 7.4 +/- 1.0, K(D,Ca) = 7.1 +/- 2.2 (n = 7); non-L-type channel, K(D,Ba) = 5.3 +/- 3.2, K(D,Ca) = 2.0 +/- 1.0 (n = 8). Using ionic concentrations close to physiological conditions (2 mM Ca2+ and 1.0 mM Mg2+), the conductance of the L-type channel was approximately 2 pS. We determined the mechanisms by which ions traverse the pore of these single Ca2+ channels, using mixtures of Ba2+ and Ca2+ at total concentrations above (70 mM) or close to (5 mM) the K(D) of the channels. We found evidence for an anomalous mole fraction effect (AMFE) only when the total divalent ion concentration was 5 mM, consistent with a multi-ion pore. We show that AMFE arises from the boundaries between the pore and bulk solution in the atria of the channel, which is derived from the presence of depletion zones that become apparent at low divalent cation concentrations. The present findings provide an explanation as to why previous whole-cell Ca2+ currents that were recorded in quasi-physiological Ca2+ concentrations (approximately 2-5 mM) showed clear AMFE, whereas single Ca2+ channel currents that were recorded routinely at high Ca2+ concentrations (20-110 mM) did not.
机译:我们研究了牛蛙囊毛细胞中两个不同的单电压门控Ca2 +通道的渗透特性,以评估通道作为生理性Ca2 +转运蛋白和多离子孔的作用。通过改变渗透离子(Ba2 +,Ca2 +)和浓度(2-70 mM),我们估算了两个通道的亲和常数(K(D))如下(mM):L型通道,K(D,Ba )= 7.4 +/- 1.0,K(D,Ca)= 7.1 +/- 2.2(n = 7);非L型通道,K(D,Ba)= 5.3 +/- 3.2,K(D,Ca)= 2.0 +/- 1.0(n = 8)。使用接近生理条件的离子浓度(2 mM Ca2 +和1.0 mM Mg2 +),L型通道的电导约为2 pS。我们使用总浓度高于(70 mM)或接近(5 mM)通道K(D)的Ba2 +和Ca2 +的混合物,确定了离子穿越这些单个Ca2 +通道孔的机理。我们仅在总二价离子浓度为5 mM(与多离子孔一致)时才发现异常摩尔分数效应(AMFE)的证据。我们表明,AMFE是由通道心房中的孔隙和整体溶液之间的边界引起的,这是由耗尽区的存在而引起的,该耗尽区在低二价阳离子浓度下变得很明显。本发现为为什么以前以准生理性Ca2 +浓度(约2-5 mM)记录的全细胞Ca2 +电流显示出清晰的AMFE为何而在高Ca2 +浓度下常规记录的单个Ca2 +通道电流(20)做出了解释。 -110 mM)没有。

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