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Detecting system based on framing camera for suspension array

机译:基于悬架阵列框架相机的检测系统

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High speed imaging technology has been applied on biomedical research for a long history. Suspension array technology is a new generation of biochip, which was widely used in fields of life science and analytical chemistry, and was developed quickly. This study present a detecting system based on framing camera for suspension array. In suspension array microspheres were used as the carrier of bio-probes and microchannels were used as analyzing platform. By pre-dyeing of fluorophores in microbeads, the addressing of microbeads was implemented by optical coden. Bio-probes attached to microbeads were distinguished by intensity of fluorescence. Suspension array was usually detected with flow cytometry serially, which was slow relatively. Then a 2D parallel measurement system based on framing camera for suspension array was established in order to increase the measurement speed. Liquid sample containing microsphere was injected into microchannel by a 100ul syringe connected by a capillary. Microspheres flowing in the microchannel form a 2D layer, which was illuminated freezingly by a pulsed Xenon lamp and imaged by a microscopy objective in parallel. The microfluidic channel was designed and fabricated, which was a rectangle microchannel of 1mm×50um in cross-section. The image was captured by CCD and transmitted into computer by frame grabber. Image was processed to distinguish microspheres extract information from the background. Thus area measurement of suspension array in microchannel was realized. Compared with flow cytometry, this technology increased analyzing rate greatly, which could be thousands of microspheres per second.
机译:高速成像技术已应用于悠久历史的生物医学研究。悬架阵列技术是一种新一代Biochip,广泛应用于生命科学和分析化学领域,并迅速发展。本研究介绍了一种基于悬架阵列的框架相机的检测系统。在悬浮氮阵列中,用作生物探针的载体,使用微通道作为分析平台。通过在微珠中预先染色的荧光团,通过光学码来实现微珠的寻址。通过荧光的强度来区分附着于微珠的生物探针。通常用顺序检测流式细胞术,悬浮仪速度相对较慢。然后建立了基于悬架阵列的框架相机的2D并行测量系统,以提高测量速度。通过毛细管连接的100UL注射器将含液体样品的微球注入微通道中。在微通道中流动的微球形成2D层,其通过脉冲氙灯冰冷地照射并通过显微镜目标并联成像。设计和制造微流体通道,其横截面为1mm×50um的矩形微通道。图像被CCD捕获并通过帧抓取器传输到计算机中。处理图像以区分微球提取信息从背景中提取信息。因此,实现了微通道中悬架阵列的区域测量。与流式细胞仪相比,该技术大大增加了分析速率,这可能是每秒数千个微球。

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