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Genomic data analysis workflows for tumors from patient-derived xenografts (PDXs): challenges and guidelines

机译:来自患者异种移植物(PDX)的肿瘤的基因组数据分析工作流程:挑战和指南

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摘要

BackgroundPatient-derived xenograft (PDX) models are in vivo models of human cancer that have been used for translational cancer research and therapy selection for individual patients. The Jackson Laboratory (JAX) PDX resource comprises 455 models originating from 34 different primary sites (as of 05/08/2019). The models undergo rigorous quality control and are genomically characterized to identify somatic mutations, copy number alterations, and transcriptional profiles. Bioinformatics workflows for analyzing genomic data obtained from human tumors engrafted in a mouse host (i.e., Patient-Derived Xenografts; PDXs) must address challenges such as discriminating between mouse and human sequence reads and accurately identifying somatic mutations and copy number alterations when paired non-tumor DNA from the patient is not available for comparison.
机译:背景患者源异种移植(PDX)模型是人类癌症的体内模型,已用于个体患者的转化性癌症研究和治疗选择。杰克逊实验室(JAX)PDX资源包括455个模型,这些模型来自34个不同的主要站点(截至2019年5月8日)。该模型经过严格的质量控制,并进行了基因组学鉴定,以鉴定体细胞突变,拷贝数变化和转录谱。用于分析从植入小鼠宿主的人类肿瘤(即患者衍生的异种移植物; PDX)中获得的基因组数据的生物信息学工作流程,必须应对以下挑战:区分小鼠和人类的序列读数,以及在与非人类配对时准确识别体细胞突变和拷贝数变化无法获得患者的肿瘤DNA进行比较。

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