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基于微流控的显微镜平台,用于在环境干扰期间对布氏锥虫进行连续检测。

A Microfluidic-Based Microscopy Platform for Continuous Interrogation of Trypanosoma brucei during Environmental Perturbation.

机构信息

Department of Chemistry , Clemson University , Clemson , South Carolina 29634 , United States.

Department of Chemistry and Biochemistry , Brigham Young University , Provo , Utah 84602 , United States.

出版信息

Biochemistry. 2019 Feb 19;58(7):875-882. doi: 10.1021/acs.biochem.8b01269. Epub 2019 Jan 29.

Abstract

The African trypanosome, Trypanosoma brucei, is the causative agent of human African trypanosomiasis (HAT). African trypanosomes are extracellular parasites that possess a single flagellum that imparts a high degree of motility to the microorganisms. In addition, African trypanosomes show significant metabolic and structural adaptation to environmental conditions. Analysis of the ways that environmental cues affect these organisms generally requires rapid perfusion experiments in combination with single-cell imaging, which are difficult to apply under conditions of rapid motion. Microfluidic devices have been used previously as a strategy for trapping small motile cells in a variety of organisms, including trypanosomes; however, in the past, such devices required individual fabrication in a cleanroom, limiting their application. Here we demonstrate that a commercial microfluidic device, typically used for bacterial trapping, can trap bloodstream and procyclic form trypanosomes, allowing for rapid buffer exchange via perfusion. As a result, time-lapse single-cell microscopy images of these highly motile parasites were acquired during environmental variations. Using these devices, we have been able to perform and analyze perfusion-based single-cell tracking experiments of the responses of the parasite to changes in glucose availability, which is a major step in resolving the mechanisms of adaptation of kinetoplasts to their individual biological niches; we demonstrate utility of this tool for making measurements of procyclic form trypanosome intracellular glucose levels as a function of changes in extracellular glucose concentrations. These experiments demonstrate that cytosolic glucose equilibrates with external conditions as fast as, or faster than, the rate of solution exchange in the instrument.

摘要

非洲锥体虫,即布氏锥虫,是引起人类非洲锥虫病(HAT)的病原体。非洲锥体虫是一种细胞外寄生虫,拥有一条鞭毛,使其具有高度的运动能力。此外,非洲锥体虫对环境条件表现出显著的代谢和结构适应性。分析环境线索如何影响这些生物体通常需要快速灌注实验与单细胞成像相结合,但在快速运动的条件下,这些方法很难应用。微流控设备以前曾被用作捕获各种生物体中小而活跃的细胞的策略,包括锥体虫;然而,过去,这些设备需要在洁净室中进行单独制造,限制了它们的应用。在这里,我们证明了一种商业微流控设备,通常用于细菌捕获,可以捕获血液和前鞭毛体形式的锥体虫,允许通过灌注进行快速缓冲液交换。因此,在环境变化期间获得了这些高度活跃寄生虫的延时单细胞显微镜图像。使用这些设备,我们已经能够进行和分析基于灌注的单细胞跟踪实验,以研究寄生虫对葡萄糖供应变化的反应,这是解决动基体适应其个体生物小生境机制的重要步骤;我们证明了该工具在测量前鞭毛体细胞内葡萄糖水平作为细胞外葡萄糖浓度变化的函数方面的实用性。这些实验表明,细胞质葡萄糖与外部条件的平衡速度与仪器中的溶液交换速度一样快,或者更快。

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Imaging African trypanosomes.非洲锥虫的影像学检查。
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Microfluidics for single cell analysis.微流控技术用于单细胞分析。
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