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An Integrative Approach to Identifying Biologically Relevant Genes

机译:一种鉴定生物学相关基因的综合方法

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Gene selection aims at detecting biologically relevant genes to assist biologists' research. The cDNA Microarray data used in gene selection is usually wide". With more than several thousand genes, but only less than a hundred of samples, many biologically irrelevant genes can gain their statistical relevance by sheer randomness. Addressing this problem goes beyond what the cDNA Microarray can offer and necessitates the use of additional information. Recent developments in bioinformatics have made various knowledge sources available, such as the KEGG pathway repository and Gene Ontology database. Integrating different types of knowledge could provide more information about genes and samples. In this work, we propose a novel approach to integrate different types of knowledge for identifying biologically relevant genes. The approach converts different types of external knowledge to its internal knowledge, which can be used to rank genes. Upon obtaining the ranking lists, it aggregates them via a probabilistic model and generates a final list. Experimental results from our study on acute lymphoblastic leukemia demonstrate the efficacy of the proposed approach and show that using different types of knowledge together can help detect biologically relevant genes.
机译:基因选择旨在检测生物相关基因以协助生物学家的研究。基因选择中使用的cDNA微阵列数据通常是“宽的”。具有超过几千个基因,但只有少于一百个样品,许多生物无关基因可以通过纯粹的随机性获得其统计相关性。解决这个问题超出了什么cDNA微阵列可以提供和需要使用其他信息。生物信息学的最新进展使得可用的各种知识来源,例如Kegg Pathway Repository和基因本体数据库。集成不同类型的知识可以提供有关基因和样品的更多信息。在此工作,提出一种新的方法来整合不同类型的知识来识别生物学相关基因。该方法将不同类型的外部知识转换为其内部知识,可以用于排名基因。在获得排名列表时,它通过概率模型并生成最终列表。我们研究的实验结果在急性淋巴细胞白血病上表明所提出的方法的功效并表明使用不同类型的知识在一起可以帮助检测生物相关基因。

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