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利用典型相关分析鉴定病毒整合偏好。

Application of canonical correlation analysis for identifying viral integration preferences.

机构信息

Department of Computer Engineering, Istanbul University, Istanbul 34320, Turkey.

出版信息

Bioinformatics. 2012 Mar 1;28(5):651-5. doi: 10.1093/bioinformatics/bts027. Epub 2012 Jan 12.

Abstract

MOTIVATION

Gene therapy aims at using viral vectors for attaching helpful genetic code to target genes. Therefore, it is of great importance to develop methods that can discover significant patterns around viral integration sites. Canonical correlation analysis is an unsupervised statistical tool that is used to describe the relations between two related views of the same semantic object, which fits well for identifying such salient patterns.

RESULTS

Proposed method is demonstrated on a sequence dataset obtained from a study on HIV-1 preferred integration regions. The subsequences on the left and right sides of the integration points are given to the method as the two views, and statistically significant relations are found between sequence-driven features derived from these two views, which suggest that the viral preference must be the factor responsible for this correlation. We found that there are significant correlations at x=5 indicating a palindromic behavior surrounding the viral integration site, which complies with the previously reported results.

AVAILABILITY

Developed software tool is available at http://ce.istanbul.edu.tr/bioinformatics/hiv1/.

摘要

动机

基因治疗旨在使用病毒载体将有用的遗传密码附着到靶基因上。因此,开发能够发现病毒整合位点周围显著模式的方法非常重要。典型相关分析是一种无监督的统计工具,用于描述同一语义对象的两个相关视图之间的关系,非常适合识别这种显著模式。

结果

该方法在从 HIV-1 优先整合区域研究中获得的序列数据集上进行了演示。将整合点左右两侧的子序列作为两种视图提供给该方法,并且从这两种视图中得出的序列驱动特征之间发现了统计学上显著的关系,这表明病毒的偏好一定是导致这种相关性的因素。我们发现 x=5 处存在显著的相关性,表明病毒整合位点周围存在回文行为,这与之前报道的结果一致。

可用性

开发的软件工具可在 http://ce.istanbul.edu.tr/bioinformatics/hiv1/ 上获得。

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