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Statistical methods for mining Chinese hamster ovary cell 'omics data: from differential expression to integrated multilevel analysis of the biological system

机译:挖掘中国仓鼠卵巢细胞组学数据的统计方法:从差异表达到生物系统综合多层次分析

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摘要

Publication of Chinese hamster ovary (CHO) cell line and Chinese hamster genomes is accelerating efforts to increase the efficiency of biopharmaceutical manufacturing through greater understanding of CHO cell biology. It is hoped that this knowledge will lead to more predictable bioprocesses through the identification of biomarkers for culture monitoring and engineering of the CHO cell itself. If we are to translate the potential of the CHO systems biology era to industrial practice, the extraction of knowledge from complex genomic, proteomic, transcriptomic and metabolomic datasets will be critical. In this manuscript, we review the methods utilized to analyze expression profiling data and highlight the role of advanced statistics as we generate larger scale datasets and move toward integrated multi-omic analyses of the biological system.
机译:中国仓鼠卵巢(CHO)细胞系和中国仓鼠基因组的发布正在加速努力,通过对CHO细胞生物学的深入了解来提高生物制药的效率。希望这一知识将通过鉴定用于培养物监测和CHO细胞自身工程化的生物标记物而导致更多可预测的生物过程。如果我们要将CHO系统生物学时代的潜力转化为工业实践,那么从复杂的基因组,蛋白质组学,转录组学和代谢组学数据集中提取知识将至关重要。在本手稿中,我们回顾了用于分析表达谱数据的方法,并强调了高级统计的作用,因为我们生成了较大规模的数据集并朝着生物系统的集成多组学分析迈进。

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