Re-programming CHO cell metabolism using miR-23 tips the balance towards a highly productive phenotype

被引:38
作者
Kelly, Paul S. [1 ]
Breen, Laura [1 ]
Gallagher, Clair [1 ]
Kelly, Shane [1 ]
Henry, Michael [1 ]
Lao, Nga T. [1 ]
Meleady, Paula [1 ]
O'Gorman, Donal [2 ]
Clynes, Martin [1 ]
Barron, Niall [1 ]
机构
[1] Dublin City Univ, Natl Inst Cellular Biotechnol, Dublin 9, Ireland
[2] Dublin City Univ, Sch Hlth & Human Performance, Ctr Preventat Med, Dublin 9, Ireland
基金
爱尔兰科学基金会;
关键词
Chinese hamster ovary (CHO); microRNA-sponge; Mitochondria; miR-23; Productivity; HAMSTER OVARY CELLS; GLUTAMINE-METABOLISM; PROTEIN-PRODUCTION; CEREBRAL-ISCHEMIA; EXPRESSION; MICRORNAS; APOPTOSIS; CULTURE; INHIBITION; OVEREXPRESSION;
D O I
10.1002/biot.201500101
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
microRNA engineering of CHO cells has already proved successful in enhancing various industrially relevant phenotypes and producing various recombinant products. A single miRNA's ability to interact with multiple mRNA targets allows their regulatory capacity to extend to processes such as cellular metabolism. Various metabolic states have previously been associated with particular CHO cell phenotypes such as glycolytic or oxidative metabolism accommodating growth and productivity, respectively. miR-23 has previously been demonstrated to play a role in glutamate metabolism resulting in enhanced oxidative phosphorylation through the TCA cycle. Re-programming cellular bioenergetics through miR-23 could tip the balance, forcing mammalian production cells to be more productive by favoring metabolic channelling into oxidative metabolism. CHO clones depleted of miR-23 using a miR-sponge decoy demonstrated an average approximate to three-fold enhanced specific productivity with no impact on cell growth. Using a cell respirometer, mitochondrial activity was found to be enhanced by approximate to 30% at Complex I and II of the electron transport system. Additionally, label-free proteomic analysis uncovered various potential novel targets of miR-23 including LE1 and IDH1, both implicated in oxidative metabolism and mitochondrial activity. These results demonstrate miRNA-based engineering as a route to re-programming cellular metabolism resulting in increased productivity, without affecting growth.
引用
收藏
页码:1029 / 1040
页数:12
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