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分泌型淀粉样前体蛋白片段 APPsα 在突触可塑性中的急性功能。

Acute function of secreted amyloid precursor protein fragment APPsα in synaptic plasticity.

机构信息

Department of Bioinformatics and Functional Genomics, Institute of Pharmacy and Molecular Biotechnology, Heidelberg University, Im Neuenheimer Feld 364, 69120, Heidelberg, Germany.

出版信息

Acta Neuropathol. 2015 Jan;129(1):21-37. doi: 10.1007/s00401-014-1368-x. Epub 2014 Nov 29.

Abstract

The key role of APP in the pathogenesis of Alzheimer disease is well established. However, postnatal lethality of double knockout mice has so far precluded the analysis of the physiological functions of APP and the APLPs in the brain. Previously, APP family proteins have been implicated in synaptic adhesion, and analysis of the neuromuscular junction of constitutive APP/APLP2 mutant mice showed deficits in synaptic morphology and neuromuscular transmission. Here, we generated animals with a conditional APP/APLP2 double knockout (cDKO) in excitatory forebrain neurons using NexCre mice. Electrophysiological recordings of adult NexCre cDKOs indicated a strong synaptic phenotype with pronounced deficits in the induction and maintenance of hippocampal LTP and impairments in paired pulse facilitation, indicating a possible presynaptic deficit. These deficits were also reflected in impairments in nesting behavior and hippocampus-dependent learning and memory tasks, including deficits in Morris water maze and radial maze performance. Moreover, while no gross alterations of brain morphology were detectable in NexCre cDKO mice, quantitative analysis of adult hippocampal CA1 neurons revealed prominent reductions in total neurite length, dendritic branching, reduced spine density and reduced spine head volume. Strikingly, the impairment of LTP could be selectively rescued by acute application of exogenous recombinant APPsα, but not APPsβ, indicating a crucial role for APPsα to support synaptic plasticity of mature hippocampal synapses on a rapid time scale. Collectively, our analysis reveals an essential role of APP family proteins in excitatory principal neurons for mediating normal dendritic architecture, spine density and morphology, synaptic plasticity and cognition.

摘要

淀粉样前体蛋白(APP)在阿尔茨海默病发病机制中的关键作用已得到充分证实。然而,双敲除小鼠的产后致死性迄今妨碍了 APP 和 APLP 在大脑中的生理功能分析。先前,APP 家族蛋白已被牵连到突触黏附中,对组成型 APP/APLP2 突变小鼠的神经肌肉接头的分析显示突触形态和神经肌肉传递存在缺陷。在这里,我们使用 NexCre 小鼠在兴奋性前脑神经元中生成了条件性 APP/APLP2 双敲除(cDKO)动物。成年 NexCre cDKO 的电生理记录表明存在强烈的突触表型,海马 LTP 的诱导和维持明显受损,以及成对脉冲易化受损,表明可能存在突触前缺陷。这些缺陷也反映在筑巢行为和海马依赖型学习和记忆任务的缺陷中,包括 Morris 水迷宫和放射状迷宫表现的缺陷。此外,虽然在 NexCre cDKO 小鼠中未检测到大脑形态的明显改变,但对成年海马 CA1 神经元的定量分析显示总神经突长度、树突分支、棘密度和棘头体积显著减少。引人注目的是,外源性重组 APPsα的急性应用可选择性挽救 LTP 的损伤,但 APPsβ 则不能,表明 APPsα 在支持成熟海马突触的快速时间尺度上的突触可塑性方面起着至关重要的作用。总之,我们的分析揭示了 APP 家族蛋白在兴奋性主神经元中对介导正常树突结构、棘密度和形态、突触可塑性和认知的重要作用。

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