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通过限氧培养糖基化工程酵母提高单克隆抗体的产量。

Improved production of monoclonal antibodies through oxygen-limited cultivation of glycoengineered yeast.

机构信息

Biologics New & Enabling Technologies, Merck & Co. Inc., 126 E. Lincoln Ave, Rahway, NJ 07065, United States.

出版信息

J Biotechnol. 2011 Sep 10;155(2):217-24. doi: 10.1016/j.jbiotec.2011.06.021. Epub 2011 Jun 23.

Abstract

Glycoengineering technology can elucidate and exploit glycan related structure-function relationships for therapeutic proteins. Glycoengineered yeast has been established as a safe, robust, scalable, and economically viable expression platform. It has been found that specific productivity of antibodies in glycoengineered Pichia pastoris is a non-linear function of specific growth rate that is dictated by a limited methanol feed rate. The optimal carbon-limited cultivation requires an exponential methanol feed rate with an increasing biomass concentration and more significantly an increase in heat and mass transfer requirements that often become the limiting factor in scale-up. Both heat and mass transfer are stoichiometrically linked to the oxygen uptake rate. Consequently an oxygen-limited cultivation approach was evaluated to limit the oxygen uptake rate and ensure robust and reliable scale-up. The oxygen-limited process not only limited the maximum oxygen uptake rate (and consequently the required heat removal rate) in mut+ P. pastoris strains but also enabled extension of the induction phase leading to an increased antibody concentration (1.9gL(-1) vs. 1.2gL(-1)), improved N-glycan composition and galactosylation, and reduced antibody fragmentation. Furthermore, the oxygen-limited process was successfully scaled to manufacturing pilot scale and thus presents a promising process option for the glycoengineered yeast protein expression platform.

摘要

糖基工程技术可以阐明和利用聚糖相关的结构-功能关系,用于治疗性蛋白质。糖基工程酵母已被确立为一种安全、稳健、可扩展和经济可行的表达平台。已经发现,糖基工程毕赤酵母中抗体的特异性生产力是特定生长速率的非线性函数,这是由有限的甲醇进料速率决定的。最佳碳限制培养需要以指数方式进料甲醇,同时生物质浓度增加,更重要的是,需要增加热量和质量传递,这通常成为放大的限制因素。热量和质量传递都与耗氧速率成比例。因此,评估了氧限制培养方法来限制耗氧速率,以确保稳健和可靠的放大。氧限制过程不仅限制了 mut+毕赤酵母菌株的最大耗氧速率(从而限制了所需的热去除速率),而且还延长了诱导期,从而提高了抗体浓度(1.9gL(-1)比 1.2gL(-1))、改善了 N-糖基化和半乳糖基化,并减少了抗体片段化。此外,氧限制过程成功地扩展到了生产中试规模,因此为糖基工程酵母蛋白表达平台提供了一种有前途的工艺选择。

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