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实时比色环介导等温扩增反应的数据处理方法。

Data treatment methods for real-time colorimetric loop-mediated isothermal amplification reactions.

机构信息

Hilab, Rua José Altair Possebom, 800-CIC, Curitiba, Paraná, 81270-185, Brazil.

出版信息

Sci Rep. 2023 Sep 1;13(1):14397. doi: 10.1038/s41598-023-40737-x.

Abstract

With the SARS-CoV-2 pandemic and the need for affordable and rapid mass testing, colorimetric isothermal amplification reactions such as Loop-Mediated Isothermal Amplification (LAMP) are quickly rising in importance. The technique generates data that is similar to quantitative Polymerase Chain Reaction (qPCR), but instead of an endpoint color visualization, it is possible to construct a signal over a time curve. As the number of works using time-course analysis of isothermal reactions increases, there is a need to analyze data and standardize their related treatments quantitatively. Here, we take a step forward toward this goal by evaluating different available data treatments (curve models) for amplification curves, which allows for a cycle threshold-like parameter extraction. In this study, we uncover evidence of a double sigmoid equation as the most adequate model to describe amplification data from our remote diagnostics system and discuss possibilities for similar setups. We also demonstrate the use of multimodal Gompertz regression models. Thus, this work provides advances toward standardized and unbiased data reporting of Reverse Transcription (RT) LAMP reactions, which may facilitate and quicken assay interpretation, potentially enabling the application of machine learning techniques for further optimization and classification.

摘要

随着 SARS-CoV-2 大流行以及对经济实惠且快速的大规模检测的需求,比色恒温扩增反应(如环介导等温扩增(LAMP))的重要性迅速上升。该技术产生的数据类似于定量聚合酶链反应(qPCR),但不是终点颜色可视化,而是可以在时间曲线上构建信号。随着越来越多的使用等温反应时间过程分析的工作,需要对数据进行分析并对其相关处理进行定量标准化。在这里,我们通过评估用于扩增曲线的不同可用数据处理方法(曲线模型)来朝着这个目标迈出一步,这允许提取类似于循环阈值的参数。在这项研究中,我们发现双 sigmoid 方程是描述我们远程诊断系统中扩增数据的最合适模型的证据,并讨论了类似设置的可能性。我们还展示了使用多峰 Gompertz 回归模型。因此,这项工作为 RT-LAMP 反应的标准化和无偏数据报告提供了进展,这可能有助于加快检测解释,从而有可能应用机器学习技术进行进一步优化和分类。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc9a/10474118/4cb69c7d127e/41598_2023_40737_Fig1_HTML.jpg

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