Metabolic analysis of antibody producing CHO cells in fed-batch production

被引:108
作者
Dean, Jason [1 ]
Reddy, Pranhitha [1 ]
机构
[1] Amgen Cell Sci & Technol, Seattle, WA 98119 USA
关键词
stable isotope tracers; fed-batch mAb production; Chinese hamster ovary cells; metabolic flux analysis; HAMSTER OVARY CELLS; FLUX ANALYSIS; PYRUVATE-CARBOXYLASE; PHOSPHOENOLPYRUVATE CARBOXYKINASE; GLUTAMINE-METABOLISM; MASS ISOTOPOMER; CULTURE; LACTATE; PROTEIN; C-13;
D O I
10.1002/bit.24826
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
Chinese hamster ovary (CHO) cells are commonly used for industrial production of recombinant proteins in fed batch or alternative production systems. Cells progress through multiple metabolic stages during fed-batch antibody (mAb) production, including an exponential growth phase accompanied by lactate production, a low growth, or stationary phase when specific mAb production increases, and a decline when cell viability declines. Although media composition and cell lineage have been shown to impact growth and productivity, little is known about the metabolic changes at a molecular level. Better understanding of cellular metabolism will aid in identifying targets for genetic and metabolic engineering to optimize bioprocess and cell engineering. We studied a high expressing recombinant CHO cell line, designated high performer (HP), in fed-batch productions using stable isotope tracers and biochemical methods to determine changes in central metabolism that accompany growth and mAb production. We also compared and contrasted results from HP to a high lactate producing cell line that exhibits poor growth and productivity, designated low performer (LP), to determine intrinsic metabolic profiles linked to their respective phenotypes. Our results reveal alternative metabolic and regulatory pathways for lactate and TCA metabolite production to those reported in the literature. The distribution of key media components into glycolysis, TCA cycle, lactate production, and biosynthetic pathways was shown to shift dramatically between exponential growth and stationary (production) phases. We determined that glutamine is both utilized more efficiently than glucose for anaplerotic replenishment and contributes more significantly to lactate production during the exponential phase. Cells shifted to glucose utilization in the TCA cycle as growth rate decreased. The magnitude of this metabolic switch is important for attaining high viable cell mass and antibody titers. We also found that phosphoenolpyruvate carboxykinase (PEPCK1) and pyruvate kinase (PK) are subject to differential regulation during exponential and stationary phases. The concomitant shifts in enzyme expression and metabolite utilization profiles shed light on the regulatory links between cell metabolism, media metabolites, and cell growth. Biotechnol. Bioeng. 2013; 110: 17351747. (c) 2013 Wiley Periodicals, Inc.
引用
收藏
页码:1735 / 1747
页数:13
相关论文
共 43 条
[31]   Effect of Anaplerotic Fluxes and Amino Acid Availability on Hepatic Lipoapoptosis [J].
Noguchi, Yasushi ;
Young, Jamey D. ;
Aleman, Jose O. ;
Hansen, Michael E. ;
Kelleher, Joanne K. ;
Stephanopoulos, Gregory .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (48) :33425-33436
[32]   Proteome analysis of anti body-producing CHO cell lines with different metabolic profiles [J].
Pascoe, Deborah E. ;
Arnott, David ;
Papoutsakis, Eleftherios T. ;
Miller, William M. ;
Anderseni, Dana C. .
BIOTECHNOLOGY AND BIOENGINEERING, 2007, 98 (02) :391-410
[33]   Isolation, characterization and recombinant protein expression in Veggie-CHO: A serum-free CHO host cell line [J].
Rasmussen, B ;
Davis, R ;
Thomas, J ;
Reddy, P .
CYTOTECHNOLOGY, 1998, 28 (1-3) :31-42
[34]   Metabolic Flux Analysis of CHO Cell Metabolism in the Late Non-Growth Phase [J].
Sengupta, Neelanjan ;
Rose, Steven T. ;
Morgan, John A. .
BIOTECHNOLOGY AND BIOENGINEERING, 2011, 108 (01) :82-92
[35]   Phosphoenolpyruvate carboxykinase is necessary for the integration of hepatic energy metabolism [J].
She, P ;
Shiota, H ;
Shelton, KD ;
Chalkley, R ;
Postic, C ;
Magnuson, MA .
MOLECULAR AND CELLULAR BIOLOGY, 2000, 20 (17) :6508-6517
[36]   Modeling hybridoma cell metabolism using a generic genome-scale metabolic model of Mus musculus [J].
Sheikh, K ;
Förster, J ;
Nielsen, LK .
BIOTECHNOLOGY PROGRESS, 2005, 21 (01) :112-121
[37]  
Templeton N, 2012, BIOTECHNOL IN PRESS
[38]   DETERMINATION OF C-13 LABELED LACTATE IN BLOOD BY GAS-CHROMATOGRAPHY MASS-SPECTROMETRY [J].
TSERNG, KY ;
GILFILLAN, CA ;
KALHAN, SC .
ANALYTICAL CHEMISTRY, 1984, 56 (03) :517-523
[39]   ORIGIN OF CANCER CELLS [J].
WARBURG, O .
SCIENCE, 1956, 123 (3191) :309-314
[40]   Production of recombinant protein therapeutics in cultivated mammalian cells [J].
Wurm, FM .
NATURE BIOTECHNOLOGY, 2004, 22 (11) :1393-1398