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首页> 外文期刊>Neurobiology of disease >Regulation of motor proteins, axonal transport deficits and adult-onset neurodegenerative diseases
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Regulation of motor proteins, axonal transport deficits and adult-onset neurodegenerative diseases

机译:电机蛋白,轴突运输缺陷和成人发作神经退行性疾病的调节

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Abstract Neurons affected in a wide variety of unrelated adult-onset neurodegenerative diseases (AONDs) typically exhibit a “dying back” pattern of degeneration, which is characterized by early deficits in synaptic function and neuritic pathology long before neuronal cell death. Consistent with this observation, multiple unrelated AONDs including Alzheimer's disease, Parkinson's disease, Huntington's disease, and several motor neuron diseases feature early alterations in kinase-based signaling pathways associated with deficits in axonal transport (AT), a complex cellular process involving multiple intracellular trafficking events powered by microtubule-based motor proteins. These pathogenic events have important therapeutic implications, suggesting that a focus on preservation of neuronal connections may be more effective to treat AONDs than addressing neuronal cell death. While the molecular mechanisms underlying AT abnormalities in AONDs are still being analyzed, evidence has accumulated linking those to a well-established pathological hallmark of multiple AONDs: altered patterns of neuronal protein phosphorylation . Here, we present a short overview on the biochemical heterogeneity of major motor proteins for AT, their regulation by protein kinases, and evidence revealing cell type-specific AT specializations. When considered together, these findings may help explain how independent pathogenic pathways can affect AT differentially in the context of each AOND. ]]>
机译:摘要神经元受各种无关的成人发病神经退行性疾病(掩镀)通常表现出一种“濒临灭火”的变性模式,其特征在于神经元细胞死亡前的突触功能和神经炎病理的早期缺陷。与这种观察结果一致,包括阿尔茨海默病,帕金森病,亨廷顿疾病和几种运动神经元疾病,以及几种运动神经元疾病的多个无关余烬具有与轴突运输(AT)缺陷相关的基于激酶的信号通路的早期改变,涉及多个细胞内贩运的复杂的细胞过程由基于微管的电机蛋白提供动力的事件。这些致病事件具有重要的治疗意义,表明重点保存神经元连接可能比解决神经元细胞死亡更有效地治疗铝。虽然仍在分析码头异常的分子机制仍在分析,但证据累计将那些与多个灰烬的既定病理标志相结合:神经元蛋白磷酸化改变模式。在这里,我们概述了主要运动蛋白的生化异质性,其蛋白激酶调节,以及在专业中揭示细胞类型的证据。当被认为在一起时,这些发现可能有助于解释在每个覆盖的背景下如何在差异上影响均匀的致病途径。 ]]>

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