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Identifying the biologically relevant gene categories based on gene expression and biological data: an example on prostate cancer

机译:根据基因表达和生物学数据识别生物学相关的基因类别:以前列腺癌为例

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Motivation: Most gene-expression based studies aim to identify genes with the capability of distinguishing different phenotypes. Although analysis at the genomic level is important, results of the molecular/cellular level are essential for understanding biological mechanisms. To deliver molecular/cellular-level results, a two-stage scheme is widely employed. This scheme just evaluates biological processes/molecular activities individually, totally overlooking the relationship between processes/activities. This treatment conflicts with the fact that most biological processes/ molecular activities do not work alone. In order to deliver improved results, this shortcoming should be addressed. Results: We design a selection model from a novel perspective to directly detect important gene functional categories (each category represents a cellular process or a molecular activity). More importantly, the correlations between gene categories are considered. Contributed by this capability, the proposed method shows its advantages over others.
机译:动机:大多数基于基因表达的研究旨在鉴定具有区分不同表型能力的基因。尽管在基因组水平上进行分析很重要,但分子/细胞水平的结果对于理解生物学机制至关重要。为了提供分子/细胞水平的结果,广泛采用了两阶段方案。该方案仅评估生物过程/分子活动,完全忽略了过程/活性之间的关系。这种处理与大多数生物过程/分子活性不能单独起作用这一事实相矛盾。为了提供更好的结果,应该解决该缺点。结果:我们从新颖的角度设计了一个选择模型,以直接检测重要的基因功能类别(每个类别代表细胞过程或分子活性)。更重要的是,考虑了基因类别之间的相关性。通过此功能,所提出的方法显示出其优于其他方法的优势。

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