首页> 外文会议>2010 3rd International Conference on Advanced Computer Theory and Engineering >Identification of differentially expressed genes for diabetes with parental history vs healthy using Microarray data analysis
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Identification of differentially expressed genes for diabetes with parental history vs healthy using Microarray data analysis

机译:使用微阵列数据分析鉴定有父母病史与健康史的糖尿病差异表达基因

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Both environmental and genetic factors have roles in the development of any disease. A genetic disorder in a disease is caused by abnormalities in an individual's genetic material (genome). The quest for an understanding of how genetic factors contribute to human disease is gathering speed. Differential gene expression analysis plays an important role for the study of genetic factors causing diseases. We proposed a method for identifying differentially expressed genes causing Type-2 diabetes mellitus using micro array data for diabetes with parental history and healthy. This method focuses on identifying multivariate and univariate outliers using Mahalanobis Distance, Minimum Co-variance Determinant (MCD) and other statistical methods. This method is applied on microarray data from two samples one from diabetes with parental history and the other from healthy and identified 1579 genes which are differentially expressed. Prior to analysis, the micro array data is normalized using Loess Normalization method.
机译:环境因素和遗传因素均在任何疾病的发展中均起作用。疾病的遗传疾病是由个体的遗传物质(基因组)异常引起的。对遗传因素如何导致人类疾病的理解的追求正在加速。差异基因表达分析对引起疾病的遗传因素的研究起着重要的作用。我们提出了一种使用具有父母病史和健康状况的微阵列数据来鉴定引起2型糖尿病的差异表达基因的方法。该方法着重于使用马氏距离,最小协方差决定因素(MCD)和其他统计方法来识别多变量和单变量离群值。该方法适用于来自两个样本的微阵列数据,一个来自父母的病史,另一个来自健康的样本,并鉴定了1579个差异表达的基因。在分析之前,使用黄土归一化方法对微阵列数据进行归一化。

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