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Deciphering causal and statistical relations of molecular aberrations and gene expressions in NCI-60 cell lines

机译:NCI-60细胞系中分子畸变和基因表达的因果关系和统计关系的破译

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BackgroundCancer cells harbor a large number of molecular alterations such as mutations, amplifications and deletions on DNA sequences and epigenetic changes on DNA methylations. These aberrations may dysregulate gene expressions, which in turn drive the malignancy of tumors. Deciphering the causal and statistical relations of molecular aberrations and gene expressions is critical for understanding the molecular mechanisms of clinical phenotypes.ResultsIn this work, we proposed a computational method to reconstruct association modules containing driver aberrations, passenger mRNA or microRNA expressions, and putative regulators that mediate the effects from drivers to passengers. By applying the module-finding algorithm to the integrated datasets of NCI-60 cancer cell lines, we found that gene expressions were driven by diverse molecular aberrations including chromosomal segments' copy number variations, gene mutations and DNA methylations, microRNA expressions, and the expressions of transcription factors. In-silico validation indicated that passenger genes were enriched with the regulator binding motifs, functional categories or pathways where the drivers were involved, and co-citations with the driver/regulator genes. Moreover, 6 of 11 predicted MYB targets were down-regulated in an MYB-siRNA treated leukemia cell line. In addition, microRNA expressions were driven by distinct mechanisms from mRNA expressions.ConclusionsThe results provide rich mechanistic information regarding molecular aberrations and gene expressions in cancer genomes. This kind of integrative analysis will become an important tool for the diagnosis and treatment of cancer in the era of personalized medicine.
机译:背景癌细胞具有大量的分子变化,例如DNA序列的突变,扩增和缺失以及DNA甲基化的表观遗传变化。这些畸变可能使基因表达失调,进而驱动肿瘤的恶性发展。阐明分子畸变与基因表达之间的因果关系和统计关系对于理解临床表型的分子机制至关重要。调解驾驶员对乘客的影响。通过将模块查找算法应用于NCI-60癌细胞系的集成数据集,我们发现基因表达是由多种分子畸变驱动的,这些异常包括染色体片段的拷贝数变异,基因突变和DNA甲基化,microRNA表达以及这些表达。转录因子。计算机内验证表明,乘客基因富含调节子结合基序,涉及驱动程序的功能类别或途径,以及与驱动程序/调节子基因的共同引用。此外,在MYB-siRNA处理的白血病细胞系中,11种预测的MYB靶标中有6种被下调。此外,microRNA的表达是由与mRNA表达不同的机制驱动的。结论该结果提供了有关癌症基因组中分子畸变和基因表达的丰富机制信息。这种综合分析将成为个性化医学时代诊断和治疗癌症的重要工具。

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