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Microfluidic device for high-throughput affinity-based isolation of extracellular vesicles

机译:用于高通量亲和基于细胞外囊泡的微流体装置

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Immunoaffinity based EV isolation technologies use antibodies targeting surface markers on EVs to provide higher isolation specificity and purity compared to existing approaches. One standing challenge for researchers is how to release captured EVs from the substrate to increase downstream and biological studies. The strong binding between the antibody and antigen or the antibody and substrate is commonly unbreakable without operating at conditions outside of the critical physiological range, making the release of EVs problematic. Additionally, immuno-affinity approaches are usually low-throughput due to their low flow velocity to ensure adequate time for antibody-antigen binding. To overcome these limitations, we modified the OncoBean chip, a previously reported circulating tumor cell isolation microfluidic device. The OncoBean chip is a radial flow microfluidic device with bean-shape microposts functionalized with biotin-conjugated EPCAM antibody through biotin-avidin link chemistry. It was demonstrated that the high surface area and varying shear rate provided by the bean-shaped posts and the radial flow design in the chip, enabled efficient capture of CTCs at high flow rate. We replace the anti-EPCAM with antibodies that recognize common EV surface markers to achieve high-throughput EV isolation. Moreover, by incorporating desthiobiotin-conjugated antibodies, EVs can be released from the device after capture, which offers a significant improvement over the existing isolation. The released EVs were found to be functional by confirming their uptake by cells using flow cytometry and fluorescent microscopy. We believe the proposed technology can facilitate both the study of EVs as cell-to-cell communicators and the further identification of EV markers.
机译:基于免疫亲安的EV隔离技术使用抗体靶向EV上的表面标志物,与现有方法相比,提供更高的隔离特异性和纯度。研究人员的一个常规挑战是如何从基材释放捕获的EV,以增加下游和生物学研究。抗体和抗原或抗体和底物之间的强粘合通常是不可用的,而不在关键生理范围之外的条件下操作,使得EVS有问题的释放。另外,由于其低流速,免疫亲和力方法通常是低通量,以确保抗体 - 抗原结合的足够时间。为了克服这些限制,我们修饰了先前报道的循环肿瘤细胞分离微流体装置。野生动物芯片是一种径向流动微流体装置,具有通过生物素 - 抗霉素连杆化学用生物素缀合的EPCAM抗体官能化的豆形微水。据证明,由豆形柱提供的高表面积和变化的剪切速率和芯片中的径向流动设计,使能高流速高效捕获CTC。我们用识别常见的EV表面标记的抗体替换抗EPCAM以实现高通量EV隔离。此外,通过掺入Desthiobiotin-缀合的抗体,可以在捕获后从装置释放EV,这对现有隔离提供了显着改善。发现释放的EVS通过使用流式细胞术和荧光显微镜确认其摄取来效果是有效的。我们认为,该技术可以促进EVS的研究作为电池到细胞通信和EV标记的进一步识别。

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