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A novel method for multiparameter physiological phenotype characterization at the single-cell level

机译:一种新型单细胞水平多次生理表型表征的方法

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Non-genetic intercellular heterogeneity has been increasingly recognized as one of the key factors in a variety of core cellular processes including proliferation, stimulus response, carcinogenesis and drug resistance. Many diseases, including cancer, originate in a single or a few cells. Early detection and characterization of these abnormal cells can provide new insights into the pathogenesis and serve as a tool for better disease diagnosis and treatment. We report on a novel technology for multiparameter physiological phenotype characterization at the single-cell level. It is based on real-time measurements of concentrations of several metabolites by means of extracellular optical sensors in microchambers of sub-nL volume containing single cells. In its current configuration, the measurement platform features the capability to detect oxygen consumption rate and pH changes under normoxic and hypoxic conditions at the single-cell level. We have conceived, designed and developed a semi-automated method for single-cell manipulation and loading into microwells utilizing custom, high-precision fluid handling at the nanoliter scale. We present the results of a series of measurements of oxygen consumption rates (OCRs) of single human metaplastic esophageal epithelial cells. In addition, to assess the effects of cell-to-cell interactions, we have measured OCRs of two and three cells placed in a single well. The major advantages of the approach are a) multiplexed characterization of cell phenotype at the single-cell level, b) minimal invasiveness due to the distant positioning of sensors, and c) flexibility in terms of accommodating measurements of other metabolites or biomolecules of interest.
机译:非遗传异质性间已日益认识到,在多种核心细胞过程,包括增殖,刺激反应,致癌作用和耐药性的关键因素之一。许多疾病,包括癌症,起源于单个或几个细胞。这些异常细胞的早期检测和表征可以提供新的见解的发病机制和作为更好的疾病诊断和治疗的工具。我们在单细胞水平上一个新的技术报告多参数生理表型特征。它是基于通过在含有单个细胞的子纳升体积的微容器的细胞外的光学传感器装置几种代谢物的浓度的实时测量。在其当前配置中,所述测量平台设有在单细胞水平检测含氧量正常和低氧条件下的氧消耗速率和pH变化的能力。我们已经构思,设计和开发了用于单小区操作和装载到利用定制,高精度流体处理在纳升规模微孔的半自动化方法。我们提出了一系列的单人化生食管上皮细胞的耗氧率(同时进行文本识别)测量的结果。此外,为了评估细胞 - 细胞相互作用的影响,我们测量放置在单井两个和三个细胞的同时进行文本识别。该方法的主要优点是:a)在单细胞水平,B)的最小侵入性细胞表型的复用的特征,由于传感器的遥远的定位,并且在容纳其他代谢产物或感兴趣的生物分子的测量值方面c)中的灵活性。

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