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Theoretical Design and Analysis of Multivolume Digital Assays with Wide Dynamic Range Validated Experimentally with Microfluidic Digital PCR

机译:微流控数字PCR实验验证的宽动态范围多体积数字化验的理论设计和分析

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This paper presents a protocol using theoretical methods and free software to design and analyze multivolume digital PCR (MV digital PCR) devices; the theory and software are also applicable to design and analysis of dilution series in digital PCR. MV digital PCR minimizes the total number of wells required for "digital" (single molecule) measurements while maintaining high dynamic range and high resolution. In some examples, multivolume designs with fewer than 200 total wells are predicted to provide dynamic range with 5-fold resolution similar to that of single-volume designs requiring 12000 wells. Mathematical techniques were utilized and expanded to maximize the information obtained from each experiment and to quantify performance of devices and were experimentally validated using the SlipChip platform. MV digital PCR was demonstrated to perform reliably, and results from wells of different volumes agreed with one another. No artifacts due to different surface-to-volume ratios were observed, and single molecule amplification in volumes ranging from 1 to 125 nL was self-consistent. The device presented here was designed to meet the testing requirements for measuring clinically relevant levels of HIV viral load at the point-of-care (in plasma, <500 molecules/mL to >1000 000 molecules/mL), and the predicted resolution and dynamic range was experimentally validated using a control sequence of DNA. This approach simplifies digital PCR experiments, saves space, and thus enables multiplexing using separate areas for each sample on one chip, and facilitates the development of new high-performance diagnostic tools for resource-limited applications. The theory and software presented here are general and are applicable to designing and analyzing other digital analytical platforms including digital immunoassays and digital bacterial analysis. It is not limited to SlipChip and could also be useful for the design of systems on platforms including valve-based and droplet-based platforms. In a separate publication by Shen et al. (J. Am. Chem. Soc., 2011, DOI: 10.1021/ja2060116), this approach is used to design and test digital RT-PCR devices for quantifying RNA.
机译:本文提出了一种使用理论方法和免费软件设计和分析多体积数字PCR(MV digital PCR)装置的协议。该理论和软件也适用于数字PCR稀释系列的设计和分析。 MV数字PCR使“数字”(单分子)测量所需的孔总数最小化,同时保持了高动态范围和高分辨率。在一些示例中,预计总井数少于200的多容积设计将提供5倍分辨率的动态范围,类似于需要12000井的单容积设计。利用和扩展了数学技术,以使从每个实验中获得的信息最大化并量化设备的性能,并使用SlipChip平台进行了实验验证。 MV数字PCR表现出可靠的性能,不同体积的孔得到的结果彼此一致。没有观察到由于不同的表面体积比造成的伪影,并且单分子扩增的体积在1到125 nL之间是自洽的。此处介绍的设备旨在满足在现场检查HIV病毒载量临床相关水平的测试要求(在血浆中,<500分子/ mL至> 1000 000分子/ mL),以及预计的分辨率和使用DNA的控制序列对动态范围进行了实验验证。这种方法简化了数字PCR实验,节省了空间,因此可以在一块芯片上为每个样本使用单独的区域进行多路复用,并促进了针对资源受限应用的新型高性能诊断工具的开发。此处介绍的理论和软件是通用的,适用于设计和分析其他数字分析平台,包括数字免疫分析和数字细菌分析。它不限于SlipChip,也可用于平台上的系统设计,包括基于阀和基于液滴的平台。在Shen等人的单独出版物中。 (J. Am。Chem。Soc。,2011,DOI:10.1021 / ja2060116),此方法用于设计和测试用于定量RNA的数字RT-PCR设备。

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