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α2δ-2 蛋白控制小脑攀附纤维突触的结构和功能。

α2δ-2 Protein Controls Structure and Function at the Cerebellar Climbing Fiber Synapse.

机构信息

Neuroscience Graduate Program.

Department of Anesthesiology and Perioperative Medicine.

出版信息

J Neurosci. 2020 Mar 18;40(12):2403-2415. doi: 10.1523/JNEUROSCI.1514-19.2020. Epub 2020 Feb 21.

Abstract

α2δ proteins () are auxiliary subunits of voltage-dependent calcium channels that also drive synapse formation and maturation. Because cerebellar Purkinje cells (PCs) predominantly, if not exclusively, express one isoform of this family, α2δ-2 (), we used PCs as a model system to examine roles of α2δ in excitatory synaptic function in male and female knock-out (KO) mice. Whole-cell recordings of PCs from acute cerebellar slices revealed altered climbing fiber (CF)-evoked complex spike generation, as well as increased amplitude and faster decay of CF-evoked EPSCs. CF terminals in the KO were localized more proximally on PC dendrites, as indicated by VGLUT2 immunoreactive puncta, and computational modeling demonstrated that the increased EPSC amplitude can be partly attributed to the more proximal location of CF terminals. In addition, CFs in KO mice exhibited increased multivesicular transmission, corresponding to greater sustained responses during repetitive stimulation, despite a reduction in the measured probability of release. Electron microscopy demonstrated that mutant CF terminals had twice as many vesicle release sites, providing a morphologic explanation for the enhanced glutamate release. Though KO CFs evoked larger amplitude EPSCs, the charge transfer was the same as wild-type as a result of increased glutamate reuptake, producing faster decay kinetics. Together, the larger, faster EPSCs in the KO explain the altered complex spike responses, which degrade information transfer from PCs and likely contribute to ataxia in KO mice. Our results also illustrate the multidimensional synaptic roles of α2δ proteins. α2δ proteins () regulate synaptic transmission and synaptogenesis, but coexpression of multiple α2δ isoforms has obscured a clear understanding of how various α2δ proteins control synaptic function. We focused on roles of the α2δ-2 protein (), the deletion of which causes cerebellar ataxia and epilepsy in mice and humans. Because cerebellar Purkinje cells (PCs) only express this single isoform, we studied excitatory climbing fiber synaptic function onto PCs in KO mice. Using optical and electrophysiological analysis, we provide a detailed description of the changes in PCs lacking α2δ-2, and provide a comprehensive mechanistic explanation for how functional synaptic phenotypes contribute to the altered cerebellar output.

摘要

α2δ 蛋白 () 是电压依赖性钙通道的辅助亚基,也能驱动突触形成和成熟。由于小脑浦肯野细胞 (PCs) 主要(如果不是唯一的话)表达这个家族的一种同工型,即 α2δ-2 (),因此我们使用 PCs 作为模型系统,研究 α2δ 在雄性和雌性 敲除 (KO) 小鼠兴奋性突触功能中的作用。急性小脑切片中 PCs 的全细胞膜片钳记录显示,兴奋性传入纤维(CF)诱发的复杂 spikes 产生发生改变,CF 诱发的 EPSC 幅度增大,衰减加快。KO 中的 CF 末梢在 PC 树突上的定位更接近近端,这表明 VGLUT2 免疫反应性的点状结构更多,计算模型表明 EPSC 幅度的增加部分归因于 CF 末梢的更近端位置。此外,尽管 KO 小鼠中 CF 的释放概率降低,但 CF 表现出更多的多泡体传递,这对应于在重复刺激期间更大的持续反应。电镜显示,突变 CF 末梢有两倍多的囊泡释放位点,为增强的谷氨酸释放提供了形态学解释。虽然 KO 的 CF 诱发更大幅度的 EPSC,但由于谷氨酸再摄取增加,导致衰减动力学更快,因此电荷转移与野生型相同。总的来说,KO 中更大、更快的 EPSC 解释了复杂 spikes 反应的改变,这降低了从 PCs 传递的信息,可能导致 KO 小鼠的共济失调。我们的结果还说明了 α2δ 蛋白的多维突触作用。α2δ 蛋白 () 调节突触传递和突触发生,但多种 α2δ 同工型的共表达使得对各种 α2δ 蛋白如何控制突触功能的理解变得模糊。我们专注于 α2δ-2 蛋白 () 的作用,该蛋白的缺失会导致小鼠和人类的小脑共济失调和癫痫。由于小脑浦肯野细胞 (PC) 仅表达这一种同工型,因此我们在 KO 小鼠中研究了兴奋性 climbing 纤维突触功能到 PCs 的作用。使用光学和电生理分析,我们详细描述了缺乏 α2δ-2 的 PCs 的变化,并提供了一个全面的机制解释,说明功能性突触表型如何导致改变的小脑输出。

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