Improving recombinant protein productivity in CHO cells via multi-omics data integration

中国仓鼠卵巢细胞 生物过程 生物制药 计算生物学 生物 生化工程 生物技术 系统生物学 计算机科学 生物过程工程 工程类 重组DNA 合成生物学 工业与生产工程 转化式学习 生产力 数据集成 翻译后修饰 生物医学
作者
Yuan Shen,Lei Shi,Xi Zhang,Xiao Guo,Wei-hua Dong,Tianyun Wang
出处
期刊:Bioresources and Bioprocessing [Springer Science+Business Media]
卷期号:13 (1)
标识
DOI:10.1186/s40643-026-01123-3
摘要

Chinese hamster ovary (CHO) cells represent the dominant host system for the production of recombinant therapeutic proteins. In recent decades, extensive research has focused on process/media optimization and cell line engineering to improve both the productivity and quality of biopharmaceutical proteins produced in CHO cells. Nevertheless, the inherent complexity of biological pathways and the heterogeneous cellular responses to different environmental conditions have posed substantial challenges to traditional methodologies. Recent advances in omics technologies have enabled comprehensive characterization of CHO cell physiology, providing multidimensional molecular and phenotypic insights that facilitate the enhancement of recombinant protein production. This review first summarizes the methodologies and advances in CHO omics research, including genomics, transcriptomics, proteomics, metabolomics, and epigenomics. It then examines contemporary approaches to integrate and analyze multi-omics data in CHO cells. The review further elucidates how these multi-omics datasets can be strategically applied across various developmental stages, including cell line selection, genetic engineering, expression vector design, and bioprocess optimization. Finally, we explore the transformative potential of integrating multi-omics with artificial intelligence and discuss promising future research directions in CHO cell studies. These emerging paradigms offer novel opportunities for data-driven cell engineering and bioprocess optimization in CHO-based biomanufacturing.
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