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在阿尔茨海默病小鼠模型中通过β-分泌酶1逆向转运调控突触淀粉样β蛋白的生成

Regulation of Synaptic Amyloid-β Generation through BACE1 Retrograde Transport in a Mouse Model of Alzheimer's Disease.

作者信息

Ye Xuan, Feng Tuancheng, Tammineni Prasad, Chang Qing, Jeong Yu Young, Margolis David J, Cai Huaibin, Kusnecov Alexander, Cai Qian

机构信息

Departments of Cell Biology and Neuroscience and.

Psychology, Rutgers University, Piscataway, New Jersey 08854 and.

出版信息

J Neurosci. 2017 Mar 8;37(10):2639-2655. doi: 10.1523/JNEUROSCI.2851-16.2017. Epub 2017 Feb 3.

Abstract

Amyloid-β (Aβ) peptides play a key role in synaptic damage and memory deficits in the early pathogenesis of Alzheimer's disease (AD). Abnormal accumulation of Aβ at nerve terminals leads to synaptic pathology and ultimately to neurodegeneration. β-site amyloid precursor protein (APP) cleaving enzyme 1 (BACE1) is the major neuronal β-secretase for Aβ generation. However, the mechanisms regulating BACE1 distribution in axons and β cleavage of APP at synapses remain largely unknown. Here, we reveal that dynein-Snapin-mediated retrograde transport regulates BACE1 trafficking in axons and APP processing at presynaptic terminals. BACE1 is predominantly accumulated within late endosomes at the synapses of AD-related mutant human APP (hAPP) transgenic (Tg) mice and patient brains. Defective retrograde transport by genetic ablation of in mice recapitulates late endocytic retention of BACE1 and increased APP processing at presynaptic sites. Conversely, overexpressing Snapin facilitates BACE1 trafficking and reduces synaptic BACE1 accumulation by enhancing the removal of BACE1 from distal AD axons and presynaptic terminals. Moreover, elevated Snapin expression via stereotactic hippocampal injections of adeno-associated virus particles in mutant hAPP Tg mouse brains decreases synaptic Aβ levels and ameliorates synapse loss, thus rescuing cognitive impairments associated with hAPP mice. Altogether, our study provides new mechanistic insights into the complex regulation of BACE1 trafficking and presynaptic localization through Snapin-mediated dynein-driven retrograde axonal transport, thereby suggesting a potential approach of modulating Aβ levels and attenuating synaptic deficits in AD. β-Site amyloid precursor protein (APP) cleaving enzyme 1 (BACE1) trafficking and synaptic localization significantly influence its β secretase activity and amyloid-β (Aβ) production. In AD brains, BACE1 is accumulated within dystrophic neurites, which is thought to augment Aβ-induced synaptotoxicity by Aβ overproduction. However, it remains largely unknown whether axonal transport regulates synaptic APP processing. Here, we demonstrate that Snapin-mediated retrograde transport plays a critical role in removing BACE1 from presynaptic terminals toward the soma, thus reducing synaptic Aβ production. Adeno-associated virus-mediated Snapin overexpression in the hippocampus of mutant hAPP mice significantly decreases synaptic Aβ levels, attenuates synapse loss, and thus rescues cognitive deficits. Our study uncovers a new pathway that controls synaptic APP processing by enhancing axonal BACE1 trafficking, thereby advancing our fundamental knowledge critical for ameliorating Aβ-linked synaptic pathology.

摘要

淀粉样蛋白β(Aβ)肽在阿尔茨海默病(AD)早期发病机制中的突触损伤和记忆缺陷中起关键作用。Aβ在神经末梢的异常积累会导致突触病变,并最终导致神经退行性变。β位点淀粉样前体蛋白(APP)裂解酶1(BACE1)是生成Aβ的主要神经元β分泌酶。然而,调节BACE1在轴突中的分布以及APP在突触处的β裂解的机制在很大程度上仍然未知。在此,我们揭示动力蛋白-Snapin介导的逆行运输调节轴突中BACE1的运输以及突触前末端的APP加工。在与AD相关的突变型人类APP(hAPP)转基因(Tg)小鼠和患者大脑的突触中,BACE1主要积聚在晚期内体中。通过基因敲除小鼠中的 导致逆行运输缺陷,重现了BACE1在晚期内吞中的滞留以及突触前位点APP加工的增加。相反,过表达Snapin通过增强从远端AD轴突和突触前末端去除BACE1来促进BACE1的运输并减少突触中BACE1的积累。此外,通过在突变型hAPP Tg小鼠大脑中立体定向海马注射腺相关病毒颗粒来提高Snapin表达,可降低突触Aβ水平并改善突触丢失,从而挽救与hAPP小鼠相关的认知障碍。总之,我们的研究为通过Snapin介导的动力蛋白驱动的逆行轴突运输对BACE1运输和突触前定位的复杂调节提供了新的机制见解,从而提出了一种调节AD中Aβ水平和减轻突触缺陷的潜在方法。β位点淀粉样前体蛋白(APP)裂解酶1(BACE1)的运输和突触定位显著影响其β分泌酶活性和淀粉样蛋白β(Aβ)的产生。在AD大脑中,BACE1积聚在营养不良的神经突内,这被认为会通过Aβ的过量产生增强Aβ诱导的突触毒性。然而,轴突运输是否调节突触APP加工在很大程度上仍然未知。在此,我们证明Snapin介导的逆行运输在将BACE1从突触前末端向胞体清除中起关键作用,从而减少突触Aβ的产生。腺相关病毒介导的突变型hAPP小鼠海马中Snapin的过表达显著降低突触Aβ水平,减轻突触丢失,从而挽救认知缺陷。我们的研究揭示了一条通过增强轴突BACE1运输来控制突触APP加工的新途径,从而推进了我们对改善Aβ相关突触病理学至关重要的基础知识。

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