微流控生物芯片的设计与测试

K. Chakrabarty
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引用次数: 1

摘要

基于微流控技术的生物芯片正在革新涉及分子生物学的实验室程序。微流体技术的进步为高通量DNA测序分析、蛋白质结晶、药物发现、免疫测定和环境毒性监测提供了令人兴奋的可能性。基于微流控技术的生物芯片的另一个新兴应用领域是临床诊断,特别是疾病的即时诊断。缺陷容忍度是用于医疗保健和环境监测的生物芯片的关键要求。有必要为生物芯片设计人员提供与半导体行业现在认为理所当然的相同水平的计算机辅助设计(CAD)支持。这些CAD工具将使设计人员能够利用集成生物流体的新技术。本讲座将介绍微流控生物芯片的早期设计和测试技术。演讲者将描述合成工具,这些工具可以将行为描述映射到基于液滴的微流控生物芯片上,并生成生物测定操作的优化时间表,将测定操作与功能单元结合,以及生物芯片的布局和液滴流动路径。本课程将介绍低成本的测试技术,用于在制造后和现场操作中检测故障。它将显示如何在线和离线重新配置技术可以用来很容易地绕过故障一旦检测到。因此,生物芯片用户可以专注于纳米和微尺度生物分析的开发,而将实施细节留给设计自动化工具。
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Design and Test of Microfluidic Biochips
Microfluidics-based biochips are revolutionizing laboratory procedures involving molecular biology. Advances in microfluidics technology offer exciting possibilities for high-throughput DNA sequencing analysis, protein crystallization, drug discovery, immunoassays, and environmental toxicity monitoring. Another emerging application area for microfluidics-based biochips is clinical diagnostics, especially the immediate point-of-care diagnosis of diseases. Defect tolerance is a key requirement for biochips that are used for healthcare and environmental monitoring. There is a need to deliver the same level of computer-aided design (CAD) support to the biochip designer that the semiconductor industry now takes for granted. These CAD tools will allow designers to harness the new technology that is rapidly emerging for integrated biofluidics. This talk will present early work on design and test techniques for microfluidic biochips. The speaker will describe synthesis tools that can map behavioral descriptions to a droplet-based microfluidic biochip and generate an optimized schedule of bioassay operations, the binding of assay operations to functional units, and the layout and droplet flow-paths for the biochip. Cost-effective testing techniques will be presented to detect faults after manufacture and during field operation. It will be shown how on-line and off-line reconfiguration techniques can be used to easily bypass faults once they are detected. Thus the biochip user can concentrate on the development of the nano-and micro-scale bioassays, leaving implementation details to design automation tools.
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