Anderson Caitlin E, Shah Kamal G, Yager Paul
University of Washington, Seattle, WA, United States.
University of Washington, Seattle, WA, United States.
Methods Enzymol. 2017;589:383-411. doi: 10.1016/bs.mie.2017.01.018. Epub 2017 Mar 13.
The design of appropriate diagnostic assays for the point of care requires development of suitable biosensors, detection methods, and diagnostic platforms for sensitive, quantitative detection of biological analytes. Protein targets in particular are especially challenging to detect quantitatively and sensitively due to the lack of amplification strategies akin to nucleic acid amplification. However, recent advances in transducer and biosensor design, new detection labels, and paper-based microfluidics may realize the goal of sensitive, fast, portable, and low-cost protein detection. In this review, we discuss the biochemistry, optics, and engineering advances that may be leveraged to design such a sensitive protein diagnostic assay. The binding kinetics, mechanisms of binding in porous networks, and potential transducers are explained in detail. We discuss the relative merits of various optical detection strategies, potential detection labels, optical readout approaches, and image-processing techniques that are amenable to point-of-care use. To conclude, we present a systematic analysis of potential approaches to enhance the sensitivity of paper-based assays. The assay development framework presented here provides bioassay developers a strategy to methodically enhance the sensitivity and point-of-care suitability of protein diagnostics.
用于即时检测的合适诊断检测方法的设计需要开发合适的生物传感器、检测方法和诊断平台,以对生物分析物进行灵敏、定量的检测。由于缺乏类似于核酸扩增的扩增策略,蛋白质靶点的定量和灵敏检测尤其具有挑战性。然而,传感器和生物传感器设计、新型检测标记以及基于纸的微流控技术的最新进展可能实现灵敏、快速、便携且低成本的蛋白质检测目标。在本综述中,我们讨论了可用于设计这种灵敏蛋白质诊断检测方法的生物化学、光学和工程学进展。详细解释了结合动力学、多孔网络中的结合机制以及潜在的传感器。我们讨论了各种光学检测策略、潜在检测标记、光学读出方法以及适用于即时检测的图像处理技术的相对优点。最后,我们对提高基于纸的检测灵敏度的潜在方法进行了系统分析。这里提出的检测方法开发框架为生物检测开发者提供了一种系统提高蛋白质诊断检测灵敏度和即时检测适用性的策略。