Gascoyne Peter R C, Vykoukal Jody V
Department of Molecular Pathology, M.D., Anderson Cancer Center, University of Texas, Houston, TX 77030 USA.
Proc IEEE Inst Electr Electron Eng. 2004 Jan 1;92(1):22-42. doi: 10.1109/JPROC.2003.820535.
As the molecular origins of disease are better understood, the need for affordable, rapid, and automated technologies that enable microscale molecular diagnostics has become apparent. Widespread use of microsystems that perform sample preparation and molecular analysis could ensure that the benefits of new biomedical discoveries are realized by a maximum number of people, even those in environments lacking any infrastructure. While progress has been made in developing miniaturized diagnostic systems, samples are generally processed off-device using labor-intensive and time-consuming traditional sample preparation methods. We present the concept of an integrated programmable general-purpose sample analysis processor (GSAP) architecture where raw samples are routed to separation and analysis functional blocks contained within a single device. Several dielectrophoresis-based methods that could serve as the foundation for building GSAP functional blocks are reviewed including methods for cell and particle sorting, cell focusing, cell ac impedance analysis, cell lysis, and the manipulation of molecules and reagent droplets.
随着对疾病分子起源的理解日益深入,对能够实现微观分子诊断的经济实惠、快速且自动化技术的需求变得愈发明显。广泛使用执行样品制备和分子分析的微系统能够确保新生物医学发现的益处被尽可能多的人所实现,即便那些身处缺乏任何基础设施环境中的人。虽然在开发小型化诊断系统方面已取得进展,但样品通常使用劳动密集型且耗时的传统样品制备方法在设备外部进行处理。我们提出了一种集成可编程通用样品分析处理器(GSAP)架构的概念,其中原始样品被路由到单个设备内包含的分离和分析功能模块。本文综述了几种基于介电电泳的方法,这些方法可作为构建GSAP功能模块的基础,包括细胞和颗粒分选、细胞聚焦、细胞交流阻抗分析、细胞裂解以及分子和试剂液滴的操控方法。