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USING FUNCTIONAL GENOMIC UNITS TO CORROBORATE USER EXPERIMENTS WITH THE ROSETTA COMPENDIUM

机译:使用功能基因组单位与Rosetta纲要进行证实用户实验

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The Rosetta data set opens the possibility of comparing an experimental microarray data set with a reference profile from the compendium. However, explaining this comparison in terms of individual genes could be a daunting task because of the sheer number of genes. Thus, we postulate a new strategy of modeling microarray data in terms of functional genomic units (FGUs). A functional genomic unit is a group of genes that carries out a certain biological function. We explored the possibility of defining the functional genomic units from the Gene Ontology (GO) annotation of the yeast genome. To visualize the tree structure of the GO, we have written a yeast genomic knowledge browser in Java, and integrated it with the microarray data. The pitfall of using the GO is that only a portion of the genes in the genome are functionally known or inferred. Thus, we further investigated an unsupervized learning method to identify those functional genomic units in the yeast genome. We have applied an established analysis method from digital signal processing, Independent Component Analysis (ICA), to the Rosetta data set. To further validate the utility of the Rosetta compendium, we have designed an experiment to investigate the yeast cells transfected with human Racl, a small GTPase protein of the Rho family, and demonstrated that functional genomic units helped us to corroborate our own microarray experiment with the Rosetta data set.
机译:Rosetta数据集打开了将实验微阵列数据设置与概要的参考配置文件进行比较。然而,由于基因数量的纯粹数量,解释在个体基因中的这种比较可能是令人生畏的任务。因此,我们在功能基因组单位(FGU)方面假设微阵列数据建模的新策略。功能基因组单元是一组进行某种生物学功能的基因。我们探讨了从基因本体学(GO)注释的基因本体中的功能基因组单元的可能性。为了可视化Go的树结构,我们在Java中写了一款酵母基因组知识浏览器,并将其与微阵列数据集成。使用Go的缺陷是在功能上只知道或推断基因组中的一部分基因。因此,我们进一步研究了一种无核化的学习方法,以鉴定酵母基因组中的那些功能基因组单元。我们已从数字信号处理,独立分量分析(ICA)的建立的分析方法应用于Rosetta数据集。为了进一步验证罗塞塔汇编的实用工具,我们已经设计了一个实验来研究人类消旋,Rho家族的小GTP酶蛋白,转染,并证明了功能基因组学单位帮助我们的酵母细胞来证实自己的微阵列实验用Rosetta数据集。

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