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钙与神经节苷脂的相互作用及突触可塑性:钙对混合单层和双层中特定神经节苷脂/肽(缬氨霉素、短杆菌肽A)复合物的影响。

Calcium-ganglioside interactions and synaptic plasticity: effect of calcium on specific ganglioside/peptide (valinomycin, gramicidin A)-complexes in mixed mono- and bilayers.

作者信息

Rahmann H, Schifferer F, Beitinger H

机构信息

Institute of Zoology, University of Stuttgart-Hohenheim, Fed. Rep. Germany.

出版信息

Neurochem Int. 1992 Apr;20(3):323-38. doi: 10.1016/0197-0186(92)90047-u.

Abstract

A controlled exchange of calcium between the extracellular space (mM Ca2+) and the neuroplasm (microM Ca2+) is considered to be an essential prerequisite for almost every stage of neuronal activity. Our research interest is focused on those compounds, which due to their physico-chemical properties and localization within the synaptic membrane might fulfill the task as neuromodulators for functional synaptic proteins. Because of this specific binding properties towards calcium and their peculiar interactions with calcium in model systems gangliosides (amphiphilic sialic acid containing glycosphingolipids) are favorite candidates for a functional involvement in synaptic transmission of information. In this study we used monolayers to investigate the molecular packing and surface potential at the air/water interface, the interaction of gangliosides with the depsipeptide valinomycin (= monovalent ion carrier), and its influenceability by calcium. Furthermore we looked at calcium effects on the single channel conductance and mean channel life-time of the monovalent ion channel gramicidin A in mixed PC/ganglioside bilayers. In pure ganglioside monolayers the addition of 0.01 mM Ca2+ induces monolayer condensation, a rise in collapse pressure (= higher film stability), a shift of phase transition (= change of conformation), and a more negative head group potential (change of electric properties). In mixed ganglioside-valinomycin monolayers the addition of Ca2+ causes phase separation and/or aggregate formation between the ganglioside and the peptide. Single channel conductance fluctuations as well as mean channel life-time were analyzed for gramicidin A incorporated into binary mixed black lipid membranes of negatively charged gangliosides (GM1, GD1a, GT1b, GMix) and neutral lecithin (DOPC) in different molar ratios. At monovalent electrolyte concentrations up to < 250 mM CsCl the single channel conductance was significantly larger in the negatively charged mixed DOPC/ganglioside membranes than in the neutral DOPC membrane. Additionally, in the presence of gangliosides the mean channel life-time is increased. The addition of calcium (0.05 mM) induced a reduction of single channel conductance of gramicidin A in DOPC- and mixed DOPC/ganglioside membranes. These physico-chemical data in connection with new electromicroscopical evidences for a precise localization of calcium, a calcium pump (Ca(2+)-ATPase), a clustered arrangement of gangliosides in synaptic terminals, and biochemical results with regard to activatory nature of exogenous gangliosides for neuronal protein phosphorylation and ATPases, support the hypothesis of a modulatory function of gangliosides in synaptic transmission.

摘要

细胞外空间(毫摩尔钙离子浓度)与神经浆(微摩尔钙离子浓度)之间钙离子的可控交换被认为是神经元活动几乎每个阶段的必要前提条件。我们的研究兴趣集中在那些化合物上,由于它们的物理化学性质以及在突触膜内的定位,可能作为功能性突触蛋白的神经调节剂来完成这项任务。由于神经节苷脂(含唾液酸的两亲性糖鞘脂)对钙具有这种特定的结合特性,以及它们在模型系统中与钙的特殊相互作用,它们是参与信息突触传递功能的热门候选物。在本研究中,我们使用单层膜来研究气/水界面的分子堆积和表面电位、神经节苷脂与缩肽缬氨霉素(=单价离子载体)的相互作用及其对钙的敏感性。此外,我们还研究了钙对混合PC/神经节苷脂双层膜中单价离子通道短杆菌肽A的单通道电导和平均通道寿命的影响。在纯神经节苷脂单层膜中加入0.01 mM钙离子会导致单层膜凝聚、崩溃压力升高(=更高的膜稳定性)、相变偏移(=构象变化)以及头基电位更负(电学性质变化)。在神经节苷脂 - 缬氨霉素混合单层膜中加入钙离子会导致神经节苷脂与肽之间发生相分离和/或聚集体形成。分析了不同摩尔比的带负电荷的神经节苷脂(GM1、GD1a、GT1b、GMix)和中性卵磷脂(DOPC)组成的二元混合黑色脂质膜中掺入的短杆菌肽A的单通道电导波动以及平均通道寿命。在单价电解质浓度高达<250 mM CsCl时,带负电荷的混合DOPC/神经节苷脂膜中的单通道电导明显大于中性DOPC膜。此外,在存在神经节苷脂的情况下,平均通道寿命会增加。加入钙(0.05 mM)会导致DOPC膜和混合DOPC/神经节苷脂膜中短杆菌肽A的单通道电导降低。这些物理化学数据,结合关于钙的精确定位、钙泵(Ca(2 +)-ATPase)、神经节苷脂在突触末端的聚集排列的新电镜证据,以及关于外源性神经节苷脂对神经元蛋白磷酸化和ATP酶的激活性质的生化结果,支持了神经节苷脂在突触传递中具有调节功能的假说。

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