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ASAPP: Architectural Similarity-Based Automated Pathway Prediction System and Its Application in Host-Pathogen Interactions

机译:基于AAPP:基于架构相似性的自动化途径预测系统及其在宿主 - 病原体交互中的应用

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The significance of metabolic pathway prediction is to envision the viable unknown transformations that can occur provided the appropriate enzymes are present. It can facilitate the prediction of the consequences of host-pathogen interactions. In this article, we have proposed a new algorithm Architectural Similarity-based Automated Pathway Prediction (ASAPP) to predict metabolic pathways based on the structural similarity among the metabolites. ASAPP takes two-dimensional structure and molecular weight of metabolites as input, and generates a list of probable transformations without the knowledge of any externally established reactions, with an accuracy of 85.09 percent. ASAPP has also been applied to predict the outcome of pathogen liberated toxins on the carbohydrate and lipid pathways of the hosts. We have analyzed the disruption of host pathways in the presence of toxins, and have found that some metabolites in Glycolysis and the TCA cycle have a high chance of being the breakpoints in the pathway. The tool is available at http://asapp.droppages.com/.
机译:代谢途径预测的重要性是设想可以出现的可行未知转化,所以提供了适当的酶。它可以促进预测宿主病原体相互作用的后果。在本文中,我们提出了一种新的基于算法的基于算法的架构相似性的自动化通路预测(ASApp),以基于代谢物之间的结构相似性来预测代谢途径。 ASAPP采用二维结构和代谢物的分子量作为输入,并在没有任何外部建立的反应的情况下产生可能的变换列表,精度为85.09%。 ASAPP也已被应用于预测宿主碳水化合物和脂质途径上病原体释放的毒素的结果。我们已经分析了毒素存在下宿主途径的破坏,并发现糖酵解的一些代谢物和TCA循环具有很大的机会成为途径的断点。该工具可在http://asapp.droppages.com/获取。

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