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CLICK: A Clustering Algorithm with Applications to Gene Expression Analysis

机译:单击:使用应用于基因表达分析的聚类算法

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Novel DNA microarray technologies enable the monitoring of expression levels of thousands of genes simultaneously. this allows a global view on the transcription levels of many (or all) genes when the cell undergoes specific conditions or processes. Analyzing gene expression data requires the clustering of genes into groups with similar expression patterns. We have developed a novel clustering algorithm, called CLICK, which is applicable to gene expression analysis as well as to other biological applications. No prior assumptions are made on the structure or the number of the clusters. The algorithm utilizes graph-theoretic and statistical techniques to identify tight groups of highly similar elements (kernels), which are likely to belong to the same true cluster. Several heuristic procedures are then used to expand the kernels into the full clustering. CLICK has been implemented and tested on a variety of biological datasets, ranging from gene expression, cDNA oligo-fingerprinting to protein sequence similarity. In all those applications it outperformed extant algorithms according to several common figures of merit. CLICK is also very fast, allowing clustering of thousands of elements in minutes, and over 100,000 elements in a couple of hours on a regular workstation.
机译:新型DNA微阵列技术能够同时监测成千上万基因的表达水平。这允许当细胞经历特定条件或过程时,全局视图许多(或全部)基因的转录水平。分析基因表达数据需要将基因的聚类成具有相似表达模式的基团。我们开发了一种新的聚类算法,称为点击次数,可适用于基因表达分析以及其他生物学应用。在结构或集群的数量上没有提出任何假设。该算法利用图形 - 理论和统计技术来识别高度相似元素(内核)的紧密组,这可能属于相同的真实集群。然后使用几种启发式程序将内核扩展到完整的聚类中。点击已经在各种生物数据集上实施和测试,从基因表达,cDNA寡核 - 指纹识别到蛋白质序列相似度。在所有这些应用中,它根据许多常见数字的常见算法而表现优于现存的算法。单击也很快,允许在几分钟内群集数千个元素,并且在常规工作站上的几个小时内超过100,000个元素。

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