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Finding Finer Functions of Cancer Proteins and Rebuilding Cancer-Associated Functional Sub-Networks

机译:寻找更精细的癌症蛋白功能并重建与癌症相关的功能子网络

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The functional knowledge of cancer proteins and cancer pathways is currently limited and not detailed enough, remaining as a major hurdle to cancer studies. Particularly, many cancer proteins are only annotated to high-level general GO categories. Here, we apply an efficient algorithm, by constructing function-specific protein-protein interaction sub-networks, to find finer functions of the cancer proteins compiled in Cancer Gene Census database. By exploiting their previously known functions, 193 cancer proteins are predicted to finer functional categories, with F score higher than 0.6. Furthermore, because cancer proteins contribute to carcinogenesis through alterations of some essential cellular functions, discovering additional proteins involved in such functions is also of importance for uncovering the mechanisms of cancer. To approximate cancer functions, 37 specific functions significantly enriched with known cancer proteins are selected. With F score higher than 0.6, 221 proteins are predicted to these cancer functions, improving the connection of the function-specific interaction sub-networks and thus delineating cancer functions more integrally and clearly.
机译:癌症蛋白和癌症途径的功能知识目前有限,不够详尽,仍然是癌症研究的主要障碍。特别是,许多癌症蛋白仅被标注为高级通用GO类别。在这里,我们通过构建功能特定的蛋白质-蛋白质相互作用子网络,应用有效的算法,以查找在癌症基因普查数据库中编译的癌症蛋白质的更精细功能。通过利用它们先前已知的功能,可以预测193种癌蛋白具有更精细的功能类别,F分数高于0.6。此外,由于癌症蛋白质通过改变某些基本细胞功能而促成癌变,因此发现参与此类功能的其他蛋白质对于揭示癌症的机制也很重要。为了近似癌症功能,选择了37种明显富含已知癌症蛋白的特定功能。当F分数高于0.6时,预计有221种蛋白质可实现这些癌症功能,从而改善了功能特异性相互作用子网络的连接,从而更加完整,清晰地描绘了癌症功能。

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