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首页> 外文期刊>Journal of biopharmaceutical statistics >Design of experiment for nonlinear dynamic gene regulatory network identification
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Design of experiment for nonlinear dynamic gene regulatory network identification

机译:非线性动态基因监管网络识别实验设计

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摘要

The gene regulatory network (GRN) is critical for understanding the regulatory interaction between genes. Time-course microarray experiments provide ample information for constructing GRN. The designs for microarray experiments serve different purposes. However, the experiment design specifically for GRN identification is still sparse. In this article, we use a simulation-based approach to deal with design problems in the framework of nonparametric differential equations. We investigate a number of feasible designs. In particular, we evaluate whether earlier samplings can result in more useful information for GRN identification. We also evaluate the effectiveness of two strategies: more frequent samplings per replicate with fewer replicates versus fewer samplings per replicate with more replicates while keeping the total number of samplings constant. The results of our investigation provide quantitative guidance for designing and selecting microarray experiments for the purpose of GRN identification.
机译:基因调节网络(GRN)对于理解基因之间的调节相互作用至关重要。时间课程微阵列实验提供了构建GRN的充分信息。微阵列实验的设计提供了不同的目的。然而,专门用于GRN识别的实验设计仍然稀疏。在本文中,我们使用基于模拟的方法来处理非参数微分方程框架中的设计问题。我们调查了许多可行的设计。特别是,我们评估早期的采样是否可以导致GRN识别的更有用信息。我们还评估了两种策略的有效性:每次复制的更频繁的采样与每次复制的复制相反,在保持常量的总数的同时,每次复制更少的样本。我们的调查结果提供了用于设计和选择MicroArray实验的定量指导,以获得GRN识别的目的。

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