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辐射药效基因组学:一种全基因组关联方法,用于使用人淋巴母细胞系鉴定辐射反应生物标志物。

Radiation pharmacogenomics: a genome-wide association approach to identify radiation response biomarkers using human lymphoblastoid cell lines.

机构信息

Department of Molecular Pharmacology and Experimental Therapeutics, Mayo Clinic, Rochester, Minnesota 55905, USA.

出版信息

Genome Res. 2010 Nov;20(11):1482-92. doi: 10.1101/gr.107672.110. Epub 2010 Oct 5.

Abstract

Radiation therapy is used to treat half of all cancer patients. Response to radiation therapy varies widely among patients. Therefore, we performed a genome-wide association study (GWAS) to identify biomarkers to help predict radiation response using 277 ethnically defined human lymphoblastoid cell lines (LCLs). Basal gene expression levels and 1.3 million genome-wide single nucleotide polymorphism (SNP) markers from both Affymetrix and Illumina platforms were assayed for all 277 human LCLs. MTS [3-(4,5-dimethylthiazol-2-yl)-5-(3-carboxymethoxyphenyl)-2-(4-sulfophenyl)-2H-tetrazolium] assays for radiation cytotoxicity were also performed to obtain area under the curve (AUC) as a radiation response phenotype for use in the association studies. Functional validation of candidate genes, selected from an integrated analysis that used SNP, expression, and AUC data, was performed with multiple cancer cell lines using specific siRNA knockdown, followed by MTS and colony-forming assays. A total of 27 loci, each containing at least two SNPs within 50 kb with P-values less than 10(-4) were associated with radiation AUC. A total of 270 expression probe sets were associated with radiation AUC with P < 10(-3). The integrated analysis identified 50 SNPs in 14 of the 27 loci that were associated with both AUC and the expression of 39 genes, which were also associated with radiation AUC (P < 10(-3)). Functional validation using siRNA knockdown in multiple tumor cell lines showed that C13orf34, MAD2L1, PLK4, TPD52, and DEPDC1B each significantly altered radiation sensitivity in at least two cancer cell lines. Studies performed with LCLs can help to identify novel biomarkers that might contribute to variation in response to radiation therapy and enhance our understanding of mechanisms underlying that variation.

摘要

放射疗法用于治疗一半的癌症患者。患者对放射疗法的反应差异很大。因此,我们进行了一项全基因组关联研究(GWAS),使用 277 个具有明确种族定义的人类淋巴母细胞系(LCL)来识别生物标志物,以帮助预测放射反应。对所有 277 个人类 LCL 进行了 Affymetrix 和 Illumina 平台的基础基因表达水平和 130 万个全基因组单核苷酸多态性(SNP)标记的检测。还进行了 MTS(3-(4,5-二甲基噻唑-2-基)-5-(3-羧基甲氧基苯基)-2-(4-磺基苯基)-2H-四唑)放射细胞毒性测定,以获得作为关联研究中放射反应表型的 AUC。对来自 SNP、表达和 AUC 数据的综合分析中选择的候选基因进行了功能验证,使用多个癌细胞系进行了特定的 siRNA 敲低,然后进行 MTS 和集落形成测定。总共 27 个位点,每个位点包含至少两个 SNP,位于 50kb 内,P 值小于 10(-4),与放射 AUC 相关。共有 270 个表达探针集与放射 AUC 相关,P 值小于 10(-3)。综合分析确定了 27 个位点中的 14 个中的 50 个 SNP,这些 SNP 与 AUC 和 39 个基因的表达均相关,这些基因也与放射 AUC 相关(P 值小于 10(-3))。在多个肿瘤细胞系中使用 siRNA 敲低进行的功能验证表明,C13orf34、MAD2L1、PLK4、TPD52 和 DEPDC1B 均至少在两种癌细胞系中显著改变了放射敏感性。使用 LCL 进行的研究有助于识别可能导致放射治疗反应变化的新生物标志物,并增强我们对这种变化背后机制的理解。

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