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Studying polyglutamine aggregation in Caenorhabditis elegans using an analytical ultracentrifuge equipped with fluorescence detection

机译:使用配备荧光检测器的分析超速离心机研究秀丽隐杆线虫中的聚谷氨酰胺聚集

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摘要

This work explores the heterogeneity of aggregation of polyglutamine fusion constructs in crude extracts of transgenic Caenorhabditis elegans animals. The work takes advantage of the recent technical advances in fluorescence detection for the analytical ultracentrifuge. Further, new sedimentation velocity methods, such as the multi‐speed method for data capture and wide distribution analysis for data analysis, are applied to improve the resolution of the measures of heterogeneity over a wide range of sizes. The focus here is to test the ability to measure sedimentation of polyglutamine aggregates in complex mixtures as a prelude to future studies that will explore the effects of genetic manipulation and environment on aggregation and toxicity. Using sedimentation velocity methods, we can detect a wide range of aggregates, ranging from robust analysis of the monomer species through an intermediate and quite heterogeneous population of oligomeric species, and all the way up to detecting species that likely represent intact inclusion bodies based on comparison to an analysis of fluorescent puncta in living worms by confocal microscopy. Our results support the hypothesis that misfolding of expanded polyglutamine tracts into insoluble aggregates involves transitions through a number of stable intermediate structures, a model that accounts for how an aggregation pathway can lead to intermediates that can have varying toxic or protective attributes. An understanding of the details of intermediate and large‐scale aggregation for polyglutamine sequences, as found in neurodegenerative diseases such as Huntington's Disease, will help to more precisely identify which aggregated species may be involved in toxicity and disease.
机译:这项工作探讨了转基因秀丽隐杆线虫动物的粗提物中聚谷氨酰胺融合构建体聚集的异质性。这项工作利用了分析超速离心机在荧光检测方面的最新技术进步。此外,新的沉降速度方法,例如用于数据捕获的多速方法和用于数据分析的宽分布分析,被用于提高大范围内非均质性度量的分辨率。这里的重点是测试测量复杂混合物中聚谷氨酰胺聚集体沉降的能力,以此作为未来研究的前奏,该研究将探索基因操作和环境对聚集和毒性的影响。使用沉降速度方法,我们可以检测到多种聚集体,从对单体物种的稳健分析到中间和相当异质的寡聚物种群体,一直到根据比较方法检测可能代表完整包涵体的物种共聚焦显微镜分析活虫中的荧光点。我们的结果支持以下假设:将扩展的聚谷氨酰胺束错误折叠成不溶的聚集体,涉及到通过许多稳定的中间结构的转变,该模型解释了聚集途径如何导致具有不同毒性或保护性属性的中间产物。对在诸如亨廷顿氏病等神经退行性疾病中发现的聚谷氨酰胺序列的中间和大规模聚集细节的理解,将有助于更准确地确定哪些聚集物种可能与毒性和疾病有关。

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