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Pathway Detection from Protein Interaction Networks and Gene Expression Data Using Color-Coding Methods and A* Search Algorithms

机译:使用颜色编码方法和*搜索算法从蛋白质相互作用网络和基因表达数据中检测途径检测

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With the large availability of protein interaction networks and microarray data supported, to identify the linear paths that have biological significance in search of a potential pathway is a challenge issue. We proposed a color-coding method based on the characteristics of biological network topology and applied heuristic search to speed up color-coding method. In the experiments, we tested our methods by applying to two datasets: yeast and human prostate cancer networks and gene expression data set. The comparisons of our method with other existing methods on known yeast MAPK pathways in terms of precision and recall show that we can find maximum number of the proteins and perform comparably well. On the other hand, our method is more efficient than previous ones and detects the paths of length 10 within 40 seconds using CPU Intel 1.73GHz and 1GB main memory running under windows operating system.
机译:随着蛋白质交互网络和微阵列数据的较大可用性,以识别具有寻求潜在途径的生物学意义的线性路径是一个挑战问题。我们提出了一种基于生物网络拓扑特性和应用启发式搜索来加速颜色编码方法的颜色编码方法。在实验中,我们通过申请两种数据集来测试我们的方法:酵母和人前列腺癌网络和基因表达数据集。在精确和召回的酵母MAPK途径上与其他现有方法的方法比较,并召回显示我们可以找到最大数量的蛋白质并进行相对良好的表现。另一方面,我们的方法比以前的方法更有效,并在Windows操作系统下运行的CPU Intel 1.73GHz和1GB主内存在40秒内检测长度10的路径。

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