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对神经退行性疾病秀丽隐杆线虫模型体内蛋白质聚集进行自动化纵向监测。

Automated longitudinal monitoring of in vivo protein aggregation in neurodegenerative disease C. elegans models.

作者信息

Cornaglia Matteo, Krishnamani Gopalan, Mouchiroud Laurent, Sorrentino Vincenzo, Lehnert Thomas, Auwerx Johan, Gijs Martin A M

机构信息

Laboratory of Microsystems, EPFL, CH-1015, Lausanne, Switzerland.

Laboratory for Integrative and Systems Physiology, EPFL, CH-1015, Lausanne, Switzerland.

出版信息

Mol Neurodegener. 2016 Feb 9;11:17. doi: 10.1186/s13024-016-0083-6.

Abstract

BACKGROUND

While many biological studies can be performed on cell-based systems, the investigation of molecular pathways related to complex human dysfunctions - e.g. neurodegenerative diseases - often requires long-term studies in animal models. The nematode Caenorhabditis elegans represents one of the best model organisms for many of these tests and, therefore, versatile and automated systems for accurate time-resolved analyses on C. elegans are becoming highly desirable tools in the field.

RESULTS

We describe a new multi-functional platform for C. elegans analytical research, enabling automated worm isolation and culture, reversible worm immobilization and long-term high-resolution imaging, and this under active control of the main culture parameters, including temperature. We employ our platform for in vivo observation of biomolecules and automated analysis of protein aggregation in a C. elegans model for amyotrophic lateral sclerosis (ALS). Our device allows monitoring the growth rate and development of each worm, at single animal resolution, within a matrix of microfluidic chambers. We demonstrate the progression of individual protein aggregates, i.e. mutated human superoxide dismutase 1 - Yellow Fluorescent Protein (SOD1-YFP) fusion proteins in the body wall muscles, for each worm and over several days. Moreover, by combining reversible worm immobilization and on-chip high-resolution imaging, our method allows precisely localizing the expression of biomolecules within the worms' tissues, as well as monitoring the evolution of single aggregates over consecutive days at the sub-cellular level. We also show the suitability of our system for protein aggregation monitoring in a C. elegans Huntington disease (HD) model, and demonstrate the system's ability to study long-term doxycycline treatment-linked modification of protein aggregation profiles in the ALS model.

CONCLUSION

Our microfluidic-based method allows analyzing in vivo the long-term dynamics of protein aggregation phenomena in C. elegans at unprecedented resolution. Pharmacological screenings on neurodegenerative disease C. elegans models may strongly benefit from this method in the near future, because of its full automation and high-throughput potential.

摘要

背景

虽然许多生物学研究可以在基于细胞的系统上进行,但对与复杂人类功能障碍相关的分子途径的研究——例如神经退行性疾病——通常需要在动物模型中进行长期研究。秀丽隐杆线虫是许多此类测试的最佳模式生物之一,因此,用于对秀丽隐杆线虫进行准确的时间分辨分析的多功能自动化系统正成为该领域非常受欢迎的工具。

结果

我们描述了一种用于秀丽隐杆线虫分析研究的新型多功能平台,该平台能够实现线虫的自动分离和培养、可逆性线虫固定以及长期高分辨率成像,并且这一切都在包括温度在内的主要培养参数的主动控制下进行。我们利用我们的平台在肌萎缩侧索硬化症(ALS)的秀丽隐杆线虫模型中对生物分子进行体内观察和蛋白质聚集的自动分析。我们的设备允许在微流控腔室矩阵中以单只动物分辨率监测每只线虫的生长速率和发育情况。我们展示了每只线虫体内单个蛋白质聚集体(即体壁肌肉中突变的人类超氧化物歧化酶1 - 黄色荧光蛋白(SOD1 - YFP)融合蛋白)在数天内的进展情况。此外,通过结合可逆性线虫固定和芯片上高分辨率成像,我们的方法能够精确地定位生物分子在线虫组织内的表达,以及在亚细胞水平上连续数天监测单个聚集体的演变。我们还展示了我们的系统在秀丽隐杆线虫亨廷顿病(HD)模型中用于蛋白质聚集监测的适用性,并证明了该系统在ALS模型中研究长期多西环素治疗相关的蛋白质聚集谱变化的能力。

结论

我们基于微流控的方法能够以前所未有的分辨率在体内分析秀丽隐杆线虫中蛋白质聚集现象的长期动态。由于其完全自动化和高通量潜力,在不久的将来,对神经退行性疾病秀丽隐杆线虫模型的药理筛选可能会从这种方法中受益匪浅。

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