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量化秀丽隐杆线虫多巴胺能神经元形态改变和退化的程度。

Quantifying Levels of Dopaminergic Neuron Morphological Alteration and Degeneration in Caenorhabditis elegans.

机构信息

Nicholas School of the Environment, Duke University.

Nicholas School of the Environment, Duke University;

出版信息

J Vis Exp. 2021 Nov 20(177). doi: 10.3791/62894.

Abstract

Dopamine neuron loss is involved in the pathology of Parkinson's Disease (PD), a highly prevalent neurodegenerative disorder affecting over 10 million people worldwide. Since many details about PD etiology remain unknown, studies investigating genetic and environmental contributors to PD are needed to discover methods of prevention, management, and treatment. Proper characterization of dopaminergic neuronal loss may be relevant not only to PD research, but to other increasingly prevalent neurodegenerative disorders. There are established genetic and chemical models of dopaminergic neurodegeneration in the Caenorhabditis elegans model system, with easy visualization of neurobiology supported by the nematodes' transparency and invariant neuronal architecture. In particular, hermaphroditic C. elegans' dopaminergic neuron morphological changes can be visualized using strains with fluorescent reporters driven by cell-specific promotors such as the dat-1 dopamine transporter gene, which is expressed exclusively in their eight dopaminergic neurons. With the capabilities of this model system and the appropriate technology, many laboratories have studied dopaminergic neurodegeneration. However, there is little consistency in the way the data is analyzed and much of the present literature uses binary scoring analyses that capture the presence of degeneration but not the full details of the progression of neuron loss. Here, we introduce a universal scoring system to assess morphological changes and degeneration in C. elegans' cephalic neuron dendrites. This seven-point scale allows for analysis across a full range of dendrite morphology, ranging from healthy neurons to complete dendrite loss, and considering morphological details including kinks, branching, blebs, and breaks. With this scoring system, researchers can quantify subtle age-related changes as well as more dramatic chemical-induced changes. Finally, we provide a practice set of images with commentary that can be used to train, calibrate, and assess the scoring consistency of researchers new to this method. This should improve within- and between- laboratory consistency, increasing rigor and reproducibility.

摘要

多巴胺神经元的损失与帕金森病(PD)的病理学有关,这是一种高度流行的神经退行性疾病,影响着全球超过 1000 万人。由于 PD 的病因有许多细节尚不清楚,因此需要研究遗传和环境因素对 PD 的影响,以发现预防、管理和治疗的方法。多巴胺能神经元损失的正确描述不仅与 PD 研究有关,而且与其他日益流行的神经退行性疾病有关。在秀丽隐杆线虫的模式系统中,已经建立了多巴胺能神经退行性变的遗传和化学模型,通过线虫的透明性和不变的神经元结构,支持神经生物学的易于可视化。特别是,使用荧光报告基因驱动的细胞特异性启动子(例如,dat-1 多巴胺转运体基因)驱动的荧光报告基因,可以可视化雌雄同体秀丽隐杆线虫的多巴胺能神经元形态变化,该基因仅在其 8 个多巴胺能神经元中表达。利用该模型系统的功能和适当的技术,许多实验室已经研究了多巴胺能神经退行性变。然而,数据分析的方法缺乏一致性,目前的许多文献使用二元评分分析,该分析仅捕捉到退行性变的存在,而没有完全描述神经元损失的进展。在这里,我们引入了一种通用的评分系统来评估秀丽隐杆线虫头部神经元树突的形态变化和退行性变。这个七点评分系统可以分析从健康神经元到完全丧失树突的整个范围的树突形态,并考虑到形态学细节,包括扭结、分支、气泡和断裂。使用这种评分系统,研究人员可以量化与年龄相关的细微变化以及更剧烈的化学诱导变化。最后,我们提供了一组带有注释的实践图像,可用于训练、校准和评估新使用该方法的研究人员的评分一致性。这将提高实验室内部和实验室之间的一致性,提高严谨性和可重复性。

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