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Droplet microfluidics platform for highly sensitive and quantitative detection of malaria-causing plasmodium parasites based on enzyme activity measurement

机译:液滴微流控平台,用于基于酶活性测量的高灵敏度和定量检测引起疟疾的疟原虫

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摘要

We present an attractive new system for the specific and sensitive detection of the malaria-causing Plasmodium parasites. The system relies on isothermal conversion of single DNA cleavage-ligation events catalyzed specifically by the Plasmodium enzyme topoisomerase I to micrometer-sized products detectable at the single-molecule level. Combined with a droplet microfluidics lab-on-a-chip platform, this design allowed for sensitive, specific, and quantitative detection of all human-malaria-causing Plasmodium species in single drops of unprocessed blood with a detection limit of less than one parasite/μL. Moreover, the setup allowed for detection of Plasmodium parasites in noninvasive saliva samples from infected patients. During recent years malaria transmission has declined worldwide, and with this the number of patients with low-parasite density has increased. Consequently, the need for accurate detection of even a few parasites is becoming increasingly important for the continued combat against the disease. We believe that the presented droplet microfluidics platform, which has a high potential for adaptation to point-of-care setups suitable for low-resource settings, may contribute significantly to meet this demand. Moreover, potential future adaptation of the presented setup for the detection of other microorganisms may form the basis for the development of a more generic platform for diagnosis, fresh water or food quality control, or other purposes within applied or basic science.
机译:我们提出了一种有吸引力的新系统,用于特异性和灵敏地检测引起疟疾的疟原虫寄生虫。该系统依赖于由疟原虫酶拓扑异构酶I特异性催化的单个DNA裂解连接事件的等温转化为可在单分子水平检测到的微米级产物。结合液滴微流实验室芯片平台,该设计可对未经处理的单滴血液中所有引起人类疟疾的疟原虫物种进行灵敏,特异性和定量检测,且检测限小于一个寄生虫/微升此外,该设置允许检测来自感染患者的非侵入性唾液样本中的疟原虫。近年来,疟疾的传播在全世界范围内有所减少,因此,低寄生虫密度的患者数量有所增加。因此,准确地检测甚至几个寄生虫的需求对于持续对抗该疾病变得越来越重要。我们相信,提出的液滴微流体平台具有很大的潜力,可以适应适用于低资源环境的现场护理装置,可以极大地满足这一需求。而且,所提出的用于检测其他微生物的装置的未来可能的适应性,可以为开发更通用的诊断,淡水或食品质量控制或应用科学或基础科学目的的平台奠定基础。

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