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Digital PCR Modeling for Maximal Sensitivity Dynamic Range and Measurement Precision

机译:最大灵敏度动态范围和测量精度的数字PCR建模

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摘要

The great promise of digital PCR is the potential for unparalleled precision enabling accurate measurements for genetic quantification. A challenge associated with digital PCR experiments, when testing unknown samples, is to perform experiments at dilutions allowing the detection of one or more targets of interest at a desired level of precision. While theory states that optimal precision (Po) is achieved by targeting ~1.59 mean copies per partition (λ), and that dynamic range (R) includes the space spanning one positive (λL) to one negative (λU) result from the total number of partitions (n), these results are tempered for the practitioner seeking to construct digital PCR experiments in the laboratory. A mathematical framework is presented elucidating the relationships between precision, dynamic range, number of partitions, interrogated volume, and sensitivity in digital PCR. The impact that false reaction calls and volumetric variation have on sensitivity and precision is next considered. The resultant effects on sensitivity and precision are established via Monte Carlo simulations reflecting the real-world likelihood of encountering such scenarios in the laboratory. The simulations provide insight to the practitioner on how to adapt experimental loading concentrations to counteract any one of these conditions. The framework is augmented with a method of extending the dynamic range of digital PCR, with and without increasing n, via the use of dilutions. An example experiment demonstrating the capabilities of the framework is presented enabling detection across 3.33 logs of starting copy concentration.
机译:数字PCR的巨大前景是实现无与伦比的精确度的潜力,从而可以进行精确的基因定量测量。当测试未知样品时,与数字PCR实验相关的挑战是在稀释条件下进行实验,以允许以所需的精确度检测一个或多个目标靶标。虽然理论指出,最佳精度(Po)是通过将每个分区的平均拷贝数定为〜1.59来实现的,而动态范围(R)包括从总数中得出一个正数(λL)到一个负数(λU)的空间对于分区(n),这些结果对于寻求在实验室中构建数字PCR实验的从业人员来说是很合适的。提出了一个数学框架,阐明了数字PCR中精度,动态范围,分区数,询问体积和灵敏度之间的关系。接下来要考虑错误的反应和体积变化对灵敏度和精度的影响。通过蒙特卡洛模拟建立了对灵敏度和精度的最终影响,反映了现实世界在实验室中遇到这种情况的可能性。模拟为从业者提供了有关如何调整实验负载浓度以抵消这些条件中的任何一种的见解。通过使用稀释液,通过增加数字PCR的动态范围(增加和不增加n)的方法来增强框架。展示了一个演示框架功能的示例实验,可对3.33个起始拷贝浓度的日志进行检测。

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