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一种用于发现结直肠癌潜在临床可行诊断和预后生物标志物的综合基因组学方法。

An Integrative Genomics Approach for the Discovery of Potential Clinically Actionable Diagnostic and Prognostic Biomarkers in Colorectal Cancer.

作者信息

Fertel Mark, Alawad Duaa Mohammad, Hicks Chindo

机构信息

Department of Genetics and the Bioinformatics and Computational Medicine Program, School of Medicine, Louisiana State University Health Sciences Center, 533 Bolivar, New Orleans, LA 70112, USA.

出版信息

Biomedicines. 2025 Jul 7;13(7):1651. doi: 10.3390/biomedicines13071651.

Abstract

Despite remarkable progress in clinical management of patients and intensified screening, colorectal cancer remains the second most common cause of cancer-related death in the United States. The recent surge of next generation sequencing has enabled genomic analysis of colorectal cancer genomes. However, to date, there is little information about leveraging gene expression data and integrating it with somatic mutation information to discover potential biomarkers and therapeutic targets. Here, we integrated gene expression data with somatic mutation information to discover potential diagnostic and prognostic biomarkers and molecular drivers of colorectal cancer. We used publicly available gene expression and somatic mutation data generated on the same patient populations from The Cancer Genome Atlas. We compared gene expression data between tumors and controls and between dead and alive. Significantly differentially expressed genes were evaluated for the presence of somatic mutations and subjected to functional enrichment analysis to discover molecular networks and signaling pathways enriched for somatic mutations. The investigation revealed a signature of somatic mutated genes transcriptionally associated with colorectal cancer and a signature of significantly differentially expressed somatic mutated genes distinguishing dead from alive. Enrichment analysis revealed molecular networks and signaling pathways enriched for somatic mutations. Integrative bioinformatics analysis combining gene expression with somatic mutation data is a powerful approach for the discovery of potential diagnostic and prognostic biomarkers and potential drivers of colorectal cancer.

摘要

尽管在患者的临床管理和强化筛查方面取得了显著进展,但结直肠癌仍是美国癌症相关死亡的第二大常见原因。新一代测序技术的迅速发展使得对结直肠癌基因组进行基因组分析成为可能。然而,迄今为止,关于利用基因表达数据并将其与体细胞突变信息整合以发现潜在生物标志物和治疗靶点的信息很少。在此,我们将基因表达数据与体细胞突变信息整合,以发现结直肠癌潜在的诊断和预后生物标志物以及分子驱动因素。我们使用了来自癌症基因组图谱(The Cancer Genome Atlas)的、在相同患者群体上生成的公开可用基因表达和体细胞突变数据。我们比较了肿瘤与对照之间以及死亡与存活患者之间的基因表达数据。对显著差异表达的基因进行体细胞突变存在情况评估,并进行功能富集分析,以发现富含体细胞突变的分子网络和信号通路。该研究揭示了与结直肠癌转录相关的体细胞突变基因特征,以及区分死亡与存活患者的显著差异表达体细胞突变基因特征。富集分析揭示了富含体细胞突变的分子网络和信号通路。将基因表达与体细胞突变数据相结合的综合生物信息学分析是发现结直肠癌潜在诊断和预后生物标志物以及潜在驱动因素的有力方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbac/12292145/38f758e0eb42/biomedicines-13-01651-g001.jpg

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