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Identifying Ovarian Cancer Chemotherapy Response Relevant Gene Cliques

机译:鉴定卵巢癌化疗反应相关基因组

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Operation with adjuvant chemotherapy is still the principal means to treat Ovarian cancer. Identifying Ovarian Cancer Chemotherapy Response (OCCR) relevant genes and describe their interactions is thus an important issue. However the problems of high dimensional micro array data and the scarcity of biological priors make building a complete OCCR biological network intractable. To this end, we combine liquid association (LA) algorithm with biological knowledgebase searching to identify OCCR relevant gene clique and describe their interactions. Rather than trying to build a gene network, our approach focus on identifying OCCR relevant gene cliques and then patching them up. Statistical analysis and biological validation show that the identified gene cliques play important roles in tumor genesis, immunity, cells proliferation and migration etc and significantly OCCR relevant. More importantly, the connection of independent gene cliques is established and the associations of genes are described. Methodologically, the proposed method avoids the problem of complex computation, relies only on available biological priors and provides a novel way to build gene network.
机译:辅助化疗仍然是治疗卵巢癌的主要手段。因此,鉴定卵巢癌化疗反应(OCCR)相关基因并描述它们之间的相互作用是一个重要的问题。但是,高维微阵列数据的问题和生物学先驱的匮乏使建立完整的OCCR生物网络变得十分棘手。为此,我们将液体关联(LA)算法与生物学知识库搜索相结合,以识别与OCCR相关的基因组并描述它们之间的相互作用。我们的方法不是尝试建立基因网络,而是着眼于确定与OCCR相关的基因群体,然后对其进行修补。统计分析和生物学验证表明,所鉴定的基因组在肿瘤的发生,免疫,细胞增殖和迁移等方面起着重要作用,并且与OCCR显着相关。更重要的是,建立了独立基因集团的联系并描述了基因的关联。从方法上讲,所提出的方法避免了复杂的计算问题,仅依赖于可用的生物学先验,并提供了构建基因网络的新颖方法。

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