Integrated cell and process engineering for improved transient production of a "difficult-to-express" fusion protein by CHO cells

被引:56
|
作者
Johari, Yusuf B. [1 ]
Estes, Scott D. [2 ]
Alves, Christina S. [2 ]
Sinacore, Marty S. [2 ]
James, David C. [1 ]
机构
[1] Univ Sheffield, Dept Chem & Biol Engn, ChELSI Inst, Sheffield S1 3JD, S Yorkshire, England
[2] Biogen Idec Inc, Cell Culture Dev, Cambridge, MA USA
关键词
Chinese hamster ovary cells; difficult-to-express proteins; aggregation; unfolded protein response; cell engineering; chemical chaperones; MONOCLONAL-ANTIBODY PRODUCTION; LINE-SPECIFIC CONTROL; IN-VITRO; INHIBITOR; SECRETION; QUALITY; DESIGN; SYSTEM;
D O I
10.1002/bit.25687
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Based on an optimized electroporation protocol, we designed a rapid, milliliter-scale diagnostic transient production assay to identify limitations in the ability of Chinese hamster ovary (CHO) cells to produce a model difficult-to-express homodimeric Fc-fusion protein, Sp35Fc, that exhibited very low volumetric titer and intracellular formation of disulfide-bonded oligomeric aggregates post-transfection. As expression of Sp35Fc induced an unfolded protein response in transfected host cells, we utilized the transient assay to compare, in parallel, multiple functionally diverse strategies to engineer intracellular processing of Sp35Fc in order to increase production and reduce aggregation as two discrete design objectives. Specifically, we compared the effect of (i) co-expression of ER-resident molecular chaperones (BiP, PDI, CypB) or active forms of UPR transactivators (ATF6c, XBP1s) at varying recombinant gene load, (ii) addition of small molecules known to act as chemical chaperones (PBA, DMSO, glycerol, betaine, TMAO) or modulate UPR signaling (PERK inhibitor GSK2606414) at varying concentration, (iii) a reduction in culture temperature to 32 degrees C. Using this information, we designed a biphasic, Sp35Fc-specific transient manufacturing process mediated by lipofection that utilized CypB co-expression at an optimal Sp35Fc:CypB gene ratio of 5:1 to initially maximize transfected cell proliferation, followed by addition of a combination of PBA (0.5mM) and glycerol (1% v/v) at the onset of stationary phase to maximize cell specific production and eliminate Sp35Fc aggregation. Using this optimal, engineered process transient Sp35Fc production was significantly increased sixfold over a 12 day production process with no evidence of disulfide-bonded aggregates. Finally, transient production in clonally derived sub-populations (derived from parental CHO host) screened for a heritably improved capability to produce Sp35Fc was also significantly improved by the optimized process, showing that protein-specific cell/process engineering can provide a solution that exceeds the limits of genetic/functional diversity within heterogeneous host cell populations. Biotechnol. Bioeng. 2015;112: 2527-2542. (c) 2015 Wiley Periodicals, Inc.
引用
收藏
页码:2527 / 2542
页数:16
相关论文
共 50 条
  • [31] Integration of cell line and process development to overcome the challenge of a difficult to express protein
    Alves, Christina S.
    Gilbert, Alan
    Dalvi, Swati
    Germain, Bryan St.
    Xie, Wenqi
    Estes, Scott
    Kshirsagar, Rashmi
    Ryll, Thomas
    BIOTECHNOLOGY PROGRESS, 2015, 31 (05) : 1201 - 1211
  • [32] Metabolic engineering of CHO cells for the development of a robust protein production platform
    Gupta, Sanjeev Kumar
    Srivastava, Santosh K.
    Sharma, Ankit
    Nalage, Vaibhav H. H.
    Salvi, Darshita
    Kushwaha, Hiralal
    Chitnis, Nikhil B.
    Shukla, Pratyoosh
    PLOS ONE, 2017, 12 (08):
  • [33] The emerging role of systems biology for engineering protein production in CHO cells
    Kuo, Chih-Chung
    Chiang, Austin W. T.
    Shamie, Isaac
    Samoudi, Mojtaba
    Gutierrez, Jahir M.
    Lewis, Nathan E.
    CURRENT OPINION IN BIOTECHNOLOGY, 2018, 51 : 64 - 69
  • [34] "Difficult-to-express" Coat Protein from Plant Cucumovirus Is Capable of Forming Virus-like Particles in E. coli Cells
    Gasanova, T. V.
    Skurat, E. V.
    Ivanov, P. A.
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-PLANT, 2020, 56 (04) : 564 - 564
  • [35] Optimizing amino acid composition of CHO cell culture media for a fusion protein production
    Xing, Zizhuo
    Kenty, Brian
    Koyrakh, Inna
    Borys, Michael
    Pan, Shih-Hsie
    Li, Zheng Jian
    PROCESS BIOCHEMISTRY, 2011, 46 (07) : 1423 - 1429
  • [36] Effect of hydrocortisone on the production and glycosylation of an Fc-fusion protein in CHO cell cultures
    Rouiller, Yolande
    Perilleux, Arnaud
    Marsaut, Milene
    Stettler, Matthieu
    Vesin, Marie-Noelle
    Broly, Herve
    BIOTECHNOLOGY PROGRESS, 2012, 28 (03) : 803 - 813
  • [37] A platform for context-specific genetic engineering of recombinant protein production by CHO cells
    Cartwright, Joseph F.
    Arnall, Claire L.
    Patel, Yash D.
    Barber, Nicholas O. W.
    Lovelady, Clare S.
    Rosignoli, Guglielmo
    Harris, Claire L.
    Dunn, Sarah
    Field, Ray P.
    Dean, Greg
    Daramola, Olalekan
    Gibson, Suzanne J.
    Peden, Andrew A.
    Brown, Adam J.
    Hatton, Diane
    James, David C.
    JOURNAL OF BIOTECHNOLOGY, 2020, 312 : 11 - 22
  • [38] Cellular engineering of plant cells for improved therapeutic protein production
    Karki, Uddhab
    Fang, Hong
    Guo, Wenzheng
    Unnold-Cofre, Carmela
    Xu, Jianfeng
    PLANT CELL REPORTS, 2021, 40 (07) : 1087 - 1099
  • [39] Cellular engineering of plant cells for improved therapeutic protein production
    Uddhab Karki
    Hong Fang
    Wenzheng Guo
    Carmela Unnold-Cofre
    Jianfeng Xu
    Plant Cell Reports, 2021, 40 : 1087 - 1099
  • [40] Synthetic biology approaches: the next tools for improved protein production from CHO cells
    McGraw, Claire E.
    Peng, Danqia
    Sandoval, Nicholas R.
    CURRENT OPINION IN CHEMICAL ENGINEERING, 2020, 30 : 26 - 33