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Genetic regulatory network identification using multivariate monotone functions

机译:使用多元单调函数的遗传调控网络识别

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We present a method for identification of gene regulatory network topology using a time series of gene expression data. The underlying assumption is that the regulatory effects of a set of regulators to a gene can be described by a multivariate function. The multivariate function is constrained to be continuous, nonnegative and monotonic in each variable. We present necessary and sufficient conditions for the validity of the regulation hypothesis. Checking these conditions can be expressed as a Linear Programming feasibility problem. This paper builds on our previous work, where the regulation is described by a summation of multiple regulator functions, one function for each gene in the regulator set. Our procedure is two phased; the first identifies the correct set of regulators, the second uses the data and the regulator set to generate an appropriate regulator function. This paper focuses on the identification of the correct regulator set. As demonstration, we run our main algorithm on some experimental data from a synthetic gene network in yeast. We are able to show that the correct set of regulators is picked by the algorithm.
机译:我们提出了一种使用基因表达数据的时间序列来鉴定基因调控网络拓扑的方法。基本假设是一组调节基因对基因的调节作用可以用多元函数来描述。多元函数在每个变量中被约束为连续,非负和单调。我们为监管假设的有效性提出了充分必要的条件。检查这些条件可以表示为线性规划可行性问题。本文以我们之前的工作为基础,其中通过多个调节器功能的总和来描述调节,调节器集中每个基因的一个功能。我们的过程分为两个阶段:第一个标识正确的调节器集,第二个使用数据和调节器集生成适当的调节器功能。本文着重于正确调节器的识别。作为演示,我们对酵母合成基因网络中的一些实验数据运行主要算法。我们能够证明该算法选择了正确的调节器组。

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