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Retroviral Integration Process in the Human Genome: Is It Really Non-Random? A New Statistical Approach

机译:人类基因组中的逆转录病毒整合过程:真的是非随机的吗?一种新的统计方法

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摘要

Retroviral vectors are widely used in gene therapy to introduce therapeutic genes into patients' cells, since, once delivered to the nucleus, the genes of interest are stably inserted (integrated) into the target cell genome. There is now compelling evidence that integration of retroviral vectors follows non-random patterns in mammalian genome, with a preference for active genes and regulatory regions. In particular, Moloney Leukemia Virus (MLV)–derived vectors show a tendency to integrate in the proximity of the transcription start site (TSS) of genes, occasionally resulting in the deregulation of gene expression and, where proto-oncogenes are targeted, in tumor initiation. This has drawn the attention of the scientific community to the molecular determinants of the retroviral integration process as well as to statistical methods to evaluate the genome-wide distribution of integration sites. In recent approaches, the observed distribution of MLV integration distances (IDs) from the TSS of the nearest gene is assumed to be non-random by empirical comparison with a random distribution generated by computational simulation procedures. To provide a statistical procedure to test the randomness of the retroviral insertion pattern, we propose a probability model (Beta distribution) based on IDs between two consecutive genes. We apply the procedure to a set of 595 unique MLV insertion sites retrieved from human hematopoietic stem/progenitor cells. The statistical goodness of fit test shows the suitability of this distribution to the observed data. Our statistical analysis confirms the preference of MLV-based vectors to integrate in promoter-proximal regions.
机译:逆转录病毒载体广泛用于基因治疗中,以将治疗性基因引入患者的细胞,因为一旦将其传递到细胞核后,感兴趣的基因就会稳定地插入(整合)到靶细胞基因组中。现在有令人信服的证据表明,逆转录病毒载体的整合遵循哺乳动物基因组中的非随机模式,并且优先选择活性基因和调控区。特别是,源自莫洛尼氏白血病病毒(MLV)的载体显示出整合到基因转录起始位点(TSS)附近的趋势,偶尔会导致基因表达失调,并且靶向原癌基因引发。这引起了科学界对逆转录病毒整合过程的分子决定因素以及评估整合位点全基因组分布的统计方法的关注。在最近的方法中,通过经验比较与通过计算仿真程序生成的随机分布,假定从最近基因的TSS到MLV整合距离(IDs)的观察分布是非随机的。为了提供统计程序来测试逆转录病毒插入模式的随机性,我们提出了一个基于两个连续基因之间的ID的概率模型(Beta分布)。我们将该程序应用于从人类造血干/祖细胞中检索到的595个独特的MLV插入位点。拟合检验的统计优度表明此分布对观察到的数据的适用性。我们的统计分析证实了基于MLV的载体在启动子附近区域整合的偏好。

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