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实时在线流式细胞术用于生物工艺监测。

Real-time on-line flow cytometry for bioprocess monitoring.

机构信息

Institute of Chemistry and Biological Chemistry, Zurich University of Applied Sciences, Einsiedlerstrasse 29, 8820 Waedenswil, Switzerland.

出版信息

J Biotechnol. 2011 Jul 20;154(4):240-7. doi: 10.1016/j.jbiotec.2011.05.003. Epub 2011 May 14.

Abstract

As the understanding of variation is the key to a good process and product quality one should pay attention to dynamics on the single-cell level. The basic idea of this approach was to qualify and quantify variations on the single-cell level during bioreactor cultivations by monitoring the expression of an eGFP tagged target protein (human membrane protein) using fully automated real-time, flow injection flow cytometry (FI-FCM). The FI-FCM system consists of a sampling- and defoaming- as well as of a dilution-section. It allows a very short monitoring interval (5 min) and is able to dilute the reactor sample by a factor ranging up to more than 10,000. In bioreactor cultivations of recombinant Pichia pastoris expressing the eGFP tagged target protein, high correlations (R(2)≥ 0.97) between the FI-FCM fluorescent signal and other, however, population-averaged fluorescence signals (off-line fluorescence, in situ fluorescence probe) were obtained. FI-FCM is the only method able to distinguish between few cells with high fluorescence and many cells with low fluorescence intensity and proved that cells differ significantly from each other within the population during bioreactor cultivations. Single-cell fluorescence was distributed over a broad range within the cell population. These distributions strongly suggest that (a) the AOX-I promoter is leaky and (b) a fraction of the population is able to express more protein of interest within shorter time and (c) a fraction of the population does not express the fusion protein at all. These findings can help in the selection of high producing, stable strains. To show the platform-independency of the system, it has successfully been tested during bioreactor cultivations of three different strains (P. pastoris, Saccharomyces cerevisiae, Escherichia coli). Along with its applications in PAT, the FI-FCM could be used as a platform-independent (prokaryotes and eukaryotes) method in various other applications; for example in the closed-loop-control of bioprocesses using different kinds of fluorescent reporters, (waste- and drinking-) water analysis, clone selection in combination with FACS or even for surgery applications.

摘要

由于对变异的理解是获得良好工艺和产品质量的关键,因此应关注单细胞水平上的动力学。该方法的基本思路是通过使用全自动实时、流动注射流式细胞术(FI-FCM)监测标记有 eGFP 的靶蛋白(人膜蛋白)的表达,在生物反应器培养过程中定性和定量单细胞水平上的变异。FI-FCM 系统由取样、消泡和稀释部分组成。它允许非常短的监测间隔(5 分钟),并能够将反应器样品稀释 10000 倍以上。在表达标记有 eGFP 的靶蛋白的重组毕赤酵母的生物反应器培养中,FI-FCM 荧光信号与其他、但群体平均荧光信号(离线荧光、原位荧光探针)之间获得了高度相关性(R²≥0.97)。FI-FCM 是唯一能够区分少数高荧光细胞和许多低荧光强度细胞的方法,并证明细胞在生物反应器培养过程中在群体内存在显著差异。单细胞荧光在细胞群体内分布在很宽的范围内。这些分布强烈表明:(a)AOX-I 启动子是渗漏的,(b)一部分群体能够在更短的时间内表达更多的目的蛋白,(c)一部分群体根本不表达融合蛋白。这些发现有助于选择高产、稳定的菌株。为了展示该系统的平台独立性,它已成功应用于三种不同菌株(巴斯德毕赤酵母、酿酒酵母、大肠杆菌)的生物反应器培养中。除了在 PAT 中的应用,FI-FCM 还可以作为一种独立于平台的(原核生物和真核生物)方法,用于各种其他应用;例如,使用不同类型的荧光报告基因进行生物过程的闭环控制、(废水和饮用水)分析、克隆选择与 FACS 结合,甚至用于手术应用。

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