Dept. of Biomedical Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA.
Biotechnol Prog. 2010 May-Jun;26(3):872-80. doi: 10.1002/btpr.369.
The number of therapeutic proteins produced by cell culture in the pharmaceutical industry continues to increase. During the early stages of manufacturing process development, hundreds of clones and various cell culture conditions are evaluated to develop a robust process to identify and select cell lines with high productivity. It is highly desirable to establish a high throughput system to accelerate process development and reduce cost. Multiwell plates and shake flasks are widely used in the industry as the scale down model for large-scale bioreactors. However, one of the limitations of these two systems is the inability to measure and control pH in a high throughput manner. As pH is an important process parameter for cell culture, this could limit the applications of these scale down model vessels. An economical, rapid, and robust pH measurement method was developed at Eli Lilly and Company by employing SNARF-4F 5-(-and 6)-carboxylic acid. The method demonstrated the ability to measure the pH values of cell culture samples in a high throughput manner. Based upon the chemical equilibrium of CO(2), HCO(3)(-), and the buffer system, i.e., HEPES, we established a mathematical model to regulate pH in multiwell plates and shake flasks. The model calculates the required %CO(2) from the incubator and the amount of sodium bicarbonate to be added to adjust pH to a preset value. The model was validated by experimental data, and pH was accurately regulated by this method. The feasibility of studying the pH effect on cell culture in 96-well plates and shake flasks was also demonstrated in this study. This work shed light on mini-bioreactor scale down model construction and paved the way for cell culture process development to improve productivity or product quality using high throughput systems.
在制药行业,细胞培养生产的治疗性蛋白数量持续增加。在制造工艺开发的早期阶段,需要评估数百个克隆和各种细胞培养条件,以开发出稳健的工艺,从而鉴定和选择具有高生产力的细胞系。建立高通量系统以加速工艺开发并降低成本是非常可取的。在工业中,多孔板和摇瓶作为大规模生物反应器的缩小模型被广泛应用。然而,这两个系统的局限性之一是无法以高通量的方式测量和控制 pH 值。由于 pH 值是细胞培养的重要工艺参数,这可能会限制这些缩小模型容器的应用。礼来公司开发了一种经济、快速且稳健的 pH 值测量方法,该方法采用 SNARF-4F 5-(-和 6)-羧酸。该方法证明了以高通量方式测量细胞培养样品 pH 值的能力。基于 CO(2)、HCO(3)(-)和缓冲液系统(即 HEPES)的化学平衡,我们建立了一个数学模型来调节多孔板和摇瓶中的 pH 值。该模型根据培养箱中的 %CO(2)和需要添加的碳酸氢钠量来计算,以将 pH 值调节到预设值。该模型通过实验数据进行了验证,并且该方法可以准确地调节 pH 值。本研究还证明了在 96 孔板和摇瓶中研究 pH 值对细胞培养影响的可行性。这项工作为构建微型生物反应器缩小模型提供了思路,并为使用高通量系统提高生产力或产品质量的细胞培养工艺开发铺平了道路。