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Merging Microfluidics with Microtitre Technology for More Efficient Drug Discovery

机译:将微流控技术与微量滴定技术相结合,以实现更高效的药物发现

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摘要

Detecting multiple components from a single red blood cell (RBC) sample within a flow-based system in less than 20 min will enable improved in vitro determinations of drug efficacy and cellular response to administered drugs. Here, an example of an improved in vitro measurement involving iloprost, a pharmaceutical reported to improve blood flow, has been determined by incorporating multiple cell types onto a single device. The method allows fluid flow to address individual rows of wells contained within an 18-well microfluidic array that serves as a precursor to a 96-well microtitre plate device. The ability to better mimic the in vivo circulation by incorporating the flow of blood components, coupled with simultaneous detection and laboratory automation in place for microtitre plates, suggests that the microfluidic array presented here will allow for improved mechanistic drug research studies. Using fluorescence microscopy, concentrations of multiple metabolites present within the RBC can also be determined using the microfluidic array. The current progress toward using this device for personalized medicine is presented here.
机译:在不到20分钟的时间内,在基于流的系统中从单个红细胞(RBC)样品中检测多种成分,将可以改善体外测定药物功效和对给药药物的细胞反应的能力。在此,已通过将多种细胞类型整合到单个设备上来确定涉及伊洛前列素(一种据报道可改善血流的药物)的改进的体外测量实例。该方法允许流体流动以解决包含在18孔微流控阵列中的各行孔,该阵列用作96孔微量滴定板设备的前身。通过结合血液成分的流动更好地模拟体内循环的能力,以及同时进行的微量滴定板的检测和实验室自动化,表明此处介绍的微流体阵列将有助于改善机械药物研究。使用荧光显微镜,还可以使用微流控阵列确定RBC中存在的多种代谢物的浓度。这里介绍了使用该设备进行个性化医疗的最新进展。

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