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Fault-tolerant valve-based microfluidic routing fabric for droplet barcoding in single-cell analysis

机译:用于单细胞分析中的液滴条形码的基于容错阀的微流体路由织物

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High-throughput single-cell genomics is used to gain insights into diseases such as cancer. Motivated by this important application, microfluidics has emerged as a key technology for developing comprehensive biochemical procedures for studying DNA, RNA, proteins, and many other cellular components. Recently, a hybrid microfluidic platform has been proposed to efficiently automate the analysis of a heterogeneous sequence of cells. In this design, a valve-based routing fabric based on transposers is used to label/barcode the target cells. However, the design proposed in prior work overlooked defects that are likely to occur during chip fabrication and system integration. We address the above limitation by investigating the fault tolerance of the valve-based routing fabric. We develop a theory of failure assessment and introduce a design technique for achieving fault tolerance. Simulation results show that the proposed method leads to a slight increase in the fabric size and decrease in cell-analysis throughput, but this is only a small price to pay for the added assurance of fault tolerance in the new design.
机译:高通量单细胞基因组学用于获得患有癌症等疾病的洞察力。通过这一重要的应用程序,Microfluidics已成为开发用于研究DNA,RNA,蛋白质和许多其他细胞组分的综合生化程序的关键技术。最近,已经提出了一种混合微流体平台以有效地自动化对异质细胞序列的分析。在这种设计中,基于转接器的基于阀的布线织物用于标记/条形码靶细胞。然而,在先前的工作中提出的设计忽略了在芯片制造和系统集成期间可能发生的缺陷。通过调查基于阀门的路由织物的容错来解决上述限制。我们开发了失败评估理论,并引入了实现容错的设计技术。仿真结果表明,该方法导致织物尺寸略有增加和细胞分析吞吐量的减少,但这只是为新设计中的容错保证提供了一个小的价格。

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