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微载体培养中贴壁依赖型MDCK细胞生长的分离数学模型。

Segregated mathematical model for growth of anchorage-dependent MDCK cells in microcarrier culture.

作者信息

Möhler Lars, Bock Andreas, Reichl Udo

机构信息

Otto-von-Guericke-Universität Magdeburg, Lehrstuhl für Bioprozesstechnik, Universitätsplatz 2, 39106 Magdeburg, Germany.

出版信息

Biotechnol Prog. 2008 Jan-Feb;24(1):110-9. doi: 10.1021/bp0701923. Epub 2008 Jan 3.

Abstract

To describe the growth behavior of anchorage-dependent mammalian cells in microcarrier systems, various approaches comprising deterministic and stochastic single cell models as well as automaton-based models have been presented in the past. The growth restriction of these often contact-inhibited cells by spatial effects is described at levels with different complexity but for the most part not taking into account their metabolic background. Compared to suspension cell lines these cells have a comparatively long lag phase required for attachment and start of proliferation on the microcarrier. After an initial phase of exponential growth only a moderate specific growth rate is achieved due to restrictions in space available for cell growth, limiting medium components, and accumulation of growth inhibitors. Here, a basic deterministic unstructured segregated cell model for growth of Madin Darby Canine Kidney (MDCK) cells used in influenza vaccine production is described. Four classes of cells are considered: cells on microcarriers, cells in suspension, dead cells, and lysed cells. Based on experimental data, cell attachment and detachment is taken explicitly into account. The model allows simulation of the overall growth behavior in microcarrier culture, including the lag phase. In addition, it describes the time course of uptake and release of key metabolites and the identification of parameters relevant for the design and optimization of vaccine manufacturing processes.

摘要

为了描述贴壁依赖性哺乳动物细胞在微载体系统中的生长行为,过去已经提出了各种方法,包括确定性和随机性单细胞模型以及基于自动机的模型。这些通常具有接触抑制特性的细胞因空间效应而受到的生长限制,在不同复杂程度的层面上进行了描述,但在很大程度上没有考虑它们的代谢背景。与悬浮细胞系相比,这些细胞在微载体上附着和开始增殖需要相对较长的延迟期。在指数生长的初始阶段之后,由于细胞生长可用空间的限制、培养基成分的限制以及生长抑制剂的积累,只能实现适度的比生长速率。在此,描述了一种用于流感疫苗生产的Madin Darby犬肾(MDCK)细胞生长的基本确定性非结构化分离细胞模型。考虑了四类细胞:微载体上的细胞、悬浮中的细胞、死细胞和裂解细胞。基于实验数据,明确考虑了细胞的附着和脱离。该模型允许模拟微载体培养中的整体生长行为,包括延迟期。此外,它描述了关键代谢物摄取和释放的时间进程以及与疫苗生产工艺设计和优化相关参数的识别。

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