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原纤维前 α-突触核蛋白突变体导致果蝇帕金森病样非运动症状。

Pre-fibrillar α-synuclein mutants cause Parkinson's disease-like non-motor symptoms in Drosophila.

机构信息

Abteilung Molekulare Entwicklungsbiologie, Max-Planck-Institut für biophysikalische Chemie, Göttingen, Germany.

出版信息

PLoS One. 2011;6(9):e24701. doi: 10.1371/journal.pone.0024701. Epub 2011 Sep 8.

Abstract

Parkinson's disease (PD) is linked to the formation of insoluble fibrillar aggregates of the presynaptic protein α-Synuclein (αS) in neurons. The appearance of such aggregates coincides with severe motor deficits in human patients. These deficits are often preceded by non-motor symptoms such as sleep-related problems in the patients. PD-like motor deficits can be recapitulated in model organisms such as Drosophila melanogaster when αS is pan-neurally expressed. Interestingly, both these deficits are more severe when αS mutants with reduced aggregation properties are expressed in flies. This indicates that that αS aggregation is not the primary cause of the PD-like motor symptoms. Here we describe a model for PD in Drosophila which utilizes the targeted expression of αS mutants in a subset of dopadecarboxylase expressing serotonergic and dopaminergic (DA) neurons. Our results show that targeted expression of pre-fibrillar αS mutants not only recapitulates PD-like motor symptoms but also the preceding non-motor symptoms such as an abnormal sleep-like behavior, altered locomotor activity and abnormal circadian periodicity. Further, the results suggest that the observed non-motor symptoms in flies are caused by an early impairment of neuronal functions rather than by the loss of neurons due to cell death.

摘要

帕金森病(PD)与突触前蛋白α-突触核蛋白(αS)的不可溶纤维状聚集体的形成有关,在神经元中。这些聚集体的出现与人类患者严重的运动缺陷相一致。这些缺陷通常发生在患者出现与睡眠有关的非运动症状之前。当αS 在果蝇等模式生物中泛神经表达时,可重现类似 PD 的运动缺陷。有趣的是,当在果蝇中表达具有降低聚集特性的αS 突变体时,这些缺陷更为严重。这表明αS 聚集不是 PD 样运动症状的主要原因。在这里,我们描述了一种在果蝇中用于 PD 的模型,该模型利用αS 突变体在一组表达多巴胺脱羧酶的血清素能和多巴胺能(DA)神经元中的靶向表达。我们的结果表明,前纤维状αS 突变体的靶向表达不仅重现了 PD 样运动症状,还重现了先前的非运动症状,如异常的睡眠样行为、运动活性改变和异常的昼夜节律周期性。此外,结果表明,在果蝇中观察到的非运动症状是由神经元功能的早期损伤引起的,而不是由于细胞死亡导致神经元丧失。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44cf/3169624/fca4e5337f6b/pone.0024701.g001.jpg

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