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首页> 外文期刊>Acta Neuropathologica Communications >Comparative analysis of single and combined APP/APLP knockouts reveals reduced spine density in APP-KO mice that is prevented by APPsα expression
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Comparative analysis of single and combined APP/APLP knockouts reveals reduced spine density in APP-KO mice that is prevented by APPsα expression

机译:单个和组合APP / APLP基因敲除的比较分析表明,APPsα表达可以防止APP-KO小鼠的脊柱密度降低

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Synaptic dysfunction and synapse loss are key features of Alzheimer’s pathogenesis. Previously, we showed an essential function of APP and APLP2 for synaptic plasticity, learning and memory. Here, we used organotypic hippocampal cultures to investigate the specific role(s) of APP family members and their fragments for dendritic complexity and spine formation of principal neurons within the hippocampus. Whereas CA1 neurons from APLP1-KO or APLP2-KO mice showed normal neuronal morphology and spine density, APP-KO mice revealed a highly reduced dendritic complexity in mid-apical dendrites. Despite unaltered morphology of APLP2-KO neurons, combined APP/APLP2-DKO mutants showed an additional branching defect in proximal apical dendrites, indicating redundancy and a combined function of APP and APLP2 for dendritic architecture. Remarkably, APP-KO neurons showed a pronounced decrease in spine density and reductions in the number of mushroom spines. No further decrease in spine density, however, was detectable in APP/APLP2-DKO mice. Mechanistically, using APPsα-KI mice lacking transmembrane APP and expressing solely the secreted APPsα fragment we demonstrate that APPsα expression alone is sufficient to prevent the defects in spine density observed in APP-KO mice. Collectively, these studies reveal a combined role of APP and APLP2 for dendritic architecture and a unique function of secreted APPs for spine density.
机译:突触功能障碍和突触丧失是阿尔茨海默病发病机制的关键特征。以前,我们展示了APP和APLP2对于突触可塑性,学习和记忆的重要功能。在这里,我们使用器官型海马培养物来研究APP家族成员及其片段对海马内主要神经元的树突复杂性和脊柱形成的特定作用。来自APLP1-KO或APLP2-KO小鼠的CA1神经元显示出正常的神经元形态和脊柱密度,而APP-KO小鼠显示出中尖顶树突中的树突复杂性大大降低。尽管APLP2-KO神经元的形态没有改变,但组合的APP / APLP2-DKO突变体在近端根尖树突中显示出额外的分支缺陷,表明了冗余以及APP和APLP2对于树突结构的组合功能。值得注意的是,APP-KO神经元显示出脊柱密度显着降低,蘑菇棘数量减少。但是,在APP / APLP2-DKO小鼠中未检测到脊柱密度的进一步降低。从机制上讲,使用缺少跨膜APP并仅表达分泌的APPsα片段的APPsα-KI小鼠,我们证明仅APPsα的表达就足以防止在APP-KO小鼠中观察到的脊柱密度缺陷。总的来说,这些研究揭示了APP和APLP2在树突结构中的组合作用以及分泌的APP在脊柱密度方面的独特功能。

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