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Probing lactate metabolism variations in large-scale bioreactors

机译:大规模生物反应器探测乳酸新陈代谢变化

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摘要

Lactate metabolism variations are frequently encountered in mammalian cell culture processes, especially during process scale-up. In this study, we took a multipronged approach to investigate the impact of pH, pCO(2), osmolality, base addition, and mixing conditions on the observed lactate variations in a Chinese Hamster Ovary (CHO) fed-batch process at 2,000 L scale. Two cultivating methods, CO2-controlled and pH-controlled, were used to decouple the individual and synergistic effects from those factors. The individual effects from pH, pCO(2), and osmolality on lactate consumption/reproduction in the stationary phase were insignificant in the ranges studied though the initial lactate production rates varied. In contrast, lactate metabolism was found to be impacted by an interaction between mixing conditions and CO2 accumulation. High CO2 accumulation and poor mixing led to lactate reproduction, whereas either low CO2 or improved mixing were sufficient to result in lactate consumption. Base addition was not required for pH control in the low CO2 conditions, and therefore lactate reproduction was correlated with base addition under poor mixing conditions. Under good mixing conditions, CO2-triggered base addition did not significantly impact lactate reproduction. It is reasonable to postulate that increased mixing times further promoted lactate production during base addition. As lactate reproduction results in more base addition to maintain pH, a cycle could be formed between lactate production and base addition. As a remediation, we showed that such lactate reproduction could be eliminated by improving CO2 removal at 2,000 L scale. (c) 2018 American Institute of Chemical Engineers Biotechnol. Prog., 34:756-766, 2018
机译:哺乳动物细胞培养方法经常遇到乳酸乳酸代谢变异,尤其是在过程中展示期间。在这项研究中,我们采取了多强的方法来研究PH,PCO(2),渗透性,碱度加法和混合条件对2,000升级别(CHO)FED批处理过程中所观察到的乳酸变化的影响。 。两种培养方法,CO 2控制和pH控制,用于与这些因素的个体和协同效应脱钩。虽然初始乳酸生产率变化,所以在所研究的范围内,来自pH,PCO(2)和渗透性的乳酸乳酸消耗/繁殖的个体效果在所研究的范围内微不足道。相反,发现乳酸乳酸代谢受混合条件和CO2积聚之间的相互作用影响。高二氧化碳积聚和差的混合导致乳酸繁殖,而低二氧化碳或改善的混合足以导致乳酸消耗。在低CO 2条件下pH控制不需要基础添加,因此在差的混合条件下,乳酸乳酸繁殖与碱加成相关。在良好的混合条件下,二氧化碳触发的碱基加入并未显着影响乳酸繁殖。假设增加混合时间在基础加法期间进一步促进乳酸生产是合理的。由于乳酸乳酸繁殖导致更多碱基以维持pH,可以在乳酸生产和碱添加之间形成循环。作为一种修复,我们表明通过改善2,000升规模的CO 2去除来消除这种乳酸繁殖。 (c)2018美国化学工程师学院Biotechnol。 Prog。,34:756-766,2018

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  • 来源
    《Biotechnology Progress》 |2018年第3期|共11页
  • 作者单位

    Merck &

    Co Inc Upstream Proc Dev &

    Engn Biol Proc Dev &

    Clin Mfg Kenilworth NJ 07033 USA;

    Merck &

    Co Inc Upstream Proc Dev &

    Engn Biol Proc Dev &

    Clin Mfg Kenilworth NJ 07033 USA;

    MSD Werthenstein BioPharma GmbH Biol Proc Dev &

    Clin Mfg Schachen Switzerland;

    MSD Werthenstein BioPharma GmbH Biol Proc Dev &

    Clin Mfg Schachen Switzerland;

    MSD Werthenstein BioPharma GmbH Biol Proc Dev &

    Clin Mfg Schachen Switzerland;

    Merck &

    Co Inc Bioproc Tech Operat Biol Proc Dev &

    Clin Mfg Kenilworth NJ USA;

    Merck &

    Co Inc Upstream Proc Dev &

    Engn Biol Proc Dev &

    Clin Mfg Kenilworth NJ 07033 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物科学;
  • 关键词

    scale-up; mixing; Chinese Hamster Ovary cells; CO2 removal; single-use;

    机译:扩展;混合;中国仓鼠卵巢细胞;二氧化碳去除;单用;

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