首页> 外文会议>International Symposium on Abstraction, Reformulation and Approximation(SARA 2005); 20050726-29; Airth Castle(GB) >Categorizing Gene Expression Correlations with Bioclinical Data: An Abstraction Based Approach
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Categorizing Gene Expression Correlations with Bioclinical Data: An Abstraction Based Approach

机译:基因表达相关性与生物临床数据的分类:基于抽象的方法

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Our research takes place in a bioinformatics team embedded in a biological unit where the biologists are using pangenomics cDNA chips to measure expression level of thousands of genes at a time. The goal of our research is to systematically categorize of relations between genes expression levels (1) and biomedical values to support finding of candidate genes allowing a better diagnostic of obesities and related diseases (2). A key issue in the analysis of cDNA chips is that the number of expression levels per chip is very high compared to the number of chips. We are working with 40 cDNA chips with ±40000 spots each one and with 2 biomedical parameters. One way used by biologists to discover relationships between these types of data consists in computing correlations for a small number of them based on their biological knowledge. To go beyond such a biased and manual selection, we propose to explore automatically combinations between all available bioclinical parameters with all gene expressions. These new data need to be classify to identify significant Linear Correlation Discoveries (3). Our method, DISCOCLINI, consists in using abstraction operators to remove outliers, approximation to define correlations and reformulation to describe and to cluster correlations by variations patterns.
机译:我们的研究在一个嵌入生物单位的生物信息学团队中进行,生物学家在其中使用泛基因组学cDNA芯片一次测量数千种基因的表达水平。我们研究的目的是对基因表达水平(1)和生物医学值之间的关系进行系统分类,以支持寻找候选基因,从而更好地诊断肥胖症和相关疾病(2)。 cDNA芯片分析中的一个关键问题是,与芯片数量相比,每个芯片的表达水平数量非常高。我们正在研究40个cDNA芯片,每个芯片具有±40000个斑点,并具有2个生物医学参数。生物学家用来发现这些类型数据之间关系的一种方法是根据他们的生物学知识为少数数据计算相关性。为了超越这种有偏见和手动的选择,我们建议自动探索所有可用的生物临床参数与所有基因表达之间的组合。这些新数据需要分类以识别重要的线性相关发现(3)。我们的方法DISCOCLINI包括使用抽象运算符去除异常值,近似值以定义相关性以及重新制定格式以通过变化模式描述和聚类相关性。

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