Center for Biomedical Engineering, School of Engineering, Brown University, Providence, Rhode Island 02912; email:
Sandia National Laboratories, Livermore, California 94551-0969.
Annu Rev Biomed Eng. 2015;17:267-86. doi: 10.1146/annurev-bioeng-071114-040538. Epub 2015 Aug 19.
Fast and reliable diagnoses are invaluable in clinical care. Samples (e.g., blood, urine, and saliva) are collected and analyzed for various biomarkers to quickly and sensitively assess disease progression, monitor response to treatment, and determine a patient's prognosis. Processing conventional samples entails many manual time-consuming steps. Consequently, clinical specimens must be processed by skilled technicians before antigens or nucleic acids are detected, and these are often present at dilute concentrations. Recently, several automated microchip technologies have been developed that potentially offer many advantages over traditional bench-top extraction methods. The smaller length scales and more refined transport mechanisms that characterize these microfluidic devices enable faster and more efficient biomarker enrichment and extraction. Additionally, they can be designed to perform multiple tests or experimental steps on one integrated, automated platform. This review explores the current research on microfluidic methods of sample preparation that are designed to aid diagnosis, and covers a broad spectrum of extraction techniques and designs for various types of samples and analytes.
快速可靠的诊断在临床护理中至关重要。采集样本(如血液、尿液和唾液)并分析各种生物标志物,以快速、敏感地评估疾病进展、监测治疗反应,并确定患者的预后。处理常规样本需要许多繁琐的手动步骤。因此,在检测抗原或核酸之前,临床标本必须由熟练的技术人员进行处理,而这些抗原或核酸通常浓度较低。最近,已经开发出几种自动化微芯片技术,它们可能比传统的台式提取方法具有许多优势。这些微流控设备的更小长度尺度和更精细的传输机制使生物标志物的富集和提取更快、更高效。此外,它们可以设计为在一个集成的自动化平台上执行多个测试或实验步骤。本文综述了旨在辅助诊断的微流控样品制备方法的最新研究进展,涵盖了各种类型的样本和分析物的广泛的提取技术和设计。