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接近实时生物传感:用于实时分析物检测的基于微流控微球的生物传感器。

Approaching near real-time biosensing: microfluidic microsphere based biosensor for real-time analyte detection.

机构信息

Department of Pharmaceutical Sciences, Northeastern University, 140 The Fenway, Room 441/ 446, 360 Huntington Avenue, Boston, 02115 MA, USA.

Centre for Engineering in Medicine, Massachusetts General Hospital, Harvard Medical School, Shriners Burns Institute, Boston, MA, USA.

出版信息

Biosens Bioelectron. 2015 Apr 15;66:454-60. doi: 10.1016/j.bios.2014.11.018. Epub 2014 Nov 29.

Abstract

In this study we describe a simple lab-on-a-chip (LOC) biosensor approach utilizing well mixed microfluidic device and a microsphere-based assay capable of performing near real-time diagnostics of clinically relevant analytes such cytokines and antibodies. We were able to overcome the adsorption kinetics reaction rate-limiting mechanism, which is diffusion-controlled in standard immunoassays, by introducing the microsphere-based assay into well-mixed yet simple microfluidic device with turbulent flow profiles in the reaction regions. The integrated microsphere-based LOC device performs dynamic detection of the analyte in minimal amount of biological specimen by continuously sampling micro-liter volumes of sample per minute to detect dynamic changes in target analyte concentration. Furthermore we developed a mathematical model for the well-mixed reaction to describe the near real time detection mechanism observed in the developed LOC method. To demonstrate the specificity and sensitivity of the developed real time monitoring LOC approach, we applied the device for clinically relevant analytes: Tumor Necrosis Factor (TNF)-α cytokine and its clinically used inhibitor, anti-TNF-α antibody. Based on the reported results herein, the developed LOC device provides continuous sensitive and specific near real-time monitoring method for analytes such as cytokines and antibodies, reduces reagent volumes by nearly three orders of magnitude as well as eliminates the washing steps required by standard immunoassays.

摘要

在这项研究中,我们描述了一种简单的微流控芯片(LOC)生物传感器方法,该方法利用充分混合的微流控装置和基于微球的分析,能够实时诊断临床相关分析物,如细胞因子和抗体。我们能够通过将基于微球的分析引入充分混合但简单的微流控装置中,并在反应区域中产生湍流流动模式,克服标准免疫分析中扩散控制的吸附动力学反应速率限制机制。集成的基于微球的 LOC 装置通过每分钟连续采集微升体积的样品来进行动态检测,从而在最小量的生物样本中对分析物进行动态检测,以检测目标分析物浓度的动态变化。此外,我们开发了一个用于充分混合反应的数学模型,以描述在开发的 LOC 方法中观察到的实时检测机制。为了证明所开发的实时监测 LOC 方法的特异性和灵敏度,我们将该装置应用于临床相关分析物:肿瘤坏死因子(TNF)-α细胞因子及其临床应用抑制剂,抗 TNF-α抗体。基于本文报道的结果,所开发的 LOC 装置为细胞因子和抗体等分析物提供了连续、敏感和特异性的实时监测方法,将试剂体积减少了近三个数量级,并消除了标准免疫分析所需的洗涤步骤。

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