首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Smartphone based on-chip fluorescence imaging and capillary flow velocity measurement for detecting ROR1+cancer cells from buffy coat blood samples on dual-layer paper microfluidic chip
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Smartphone based on-chip fluorescence imaging and capillary flow velocity measurement for detecting ROR1+cancer cells from buffy coat blood samples on dual-layer paper microfluidic chip

机译:智能手机基础荧光成像和毛细管流速测量,用于检测来自双层纸微流体芯片上的Buffy Cata血液样品的ROR1 +癌细胞

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摘要

Diagnosis of hematological cancer requires complete white blood cell count, followed by flow cytometry with multiple markers, and cytology. It requires substantial time and specialized training. A dual-layer paper microfluidic chip was developed as a quicker, low-cost, and field-deployable alternative to detect ROR1+ (receptor tyrosine-like orphan receptor one) cancer cells from the undiluted and untreated buffy coat blood samples. The first capture layer consisted of a GF/D glass fiber substrate, preloaded with cancer specific anti-ROR1 conjugated fluorescent particles to its center for cancer cell capture and direct smartphone fluorescence imaging. The second flow layer was comprised of a grade 1 cellulose chromatography paper with wax-printed four channels for wicking and capillary flow-based detection. The flow velocity was used as measure of antigen concentration in the buffy coat sample. In this manner, intact cells and their antigens were separated and independently analyzed by both imaging and flow velocity analyses. A custom-made smartphone-based fluorescence microscope and automated image processing and particle counter software were developed to enumerate particles on paper, with the limit of detection of 1 cell/mu L. Flow velocity analysis showed even greater sensitivity, with the limit of detection of 0.1 cells/mu L in the first 6 s of assay. Comparison with capillary flow model revealed great alignment with experimental data and greater correlation to viscosity than interfacial tension. Our proposed device Is able to capture and on-chip image ROR1+ cancer cells within a complex sample matrix (buffy coat) while simultaneously quantifying cell concentration in a point-of-care manner.
机译:血液学癌的诊断需要完全白细胞计数,然后具有多种标记的流式细胞术和细胞学。它需要大量的时间和专业培训。将双层纸微流体芯片作为更快,低成本和现场可部署的替代品,以检测来自未稀释的和未经处理的巴菲涂层血液样品的ROR1 +(受体酪氨酸状孤儿感染者一)癌细胞。第一捕获层由GF / D玻璃纤维底物组成,用癌细胞特异性抗ROR1共轭荧光颗粒预加载到其癌细胞捕获中心和直接智能手机荧光成像中心。第二流动层由1级纤维素色谱纸组成,用蜡印刷的四个通道用于芯吸和毛细血管流动的检测。将流速用作脂涂层样品中抗原浓度的量度。以这种方式,分离完整细胞和它们的抗原并通过成像和流速分析独立分析。开发了一种定制的智能手机的荧光显微镜和自动图像处理和粒子计数器软件,以枚举纸上的粒子,其中1个细胞/μL的检测极限。流速分析表现出更大的灵敏度,具有检测极限在测定的前6秒钟中为0.1细胞/ mu l。与毛细管流程模型的比较显示与实验数据的巨大对准,与粘度的相关性比界面张力更大。我们所提出的装置能够在复杂的样品基质(Buffy涂层)内捕获和片上图像ROR1 +癌细胞,同时以护理点的方式定量细胞浓度。

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