Selective expression of the soluble product fraction in Escherichia coli cultures employed in recombinant protein production processes

被引:0
作者
Stefan Gnoth
Rimvydas Simutis
Andreas Lübbert
机构
[1] Martin-Luther-University,Center for Bioprocess Engineering
[2] Halle,undefined
[3] Institute of Automation and Control Systems,undefined
[4] Kaunas University of Technology,undefined
来源
Applied Microbiology and Biotechnology | 2010年 / 87卷
关键词
Specific biomass growth rate; Temperature; Hybrid artificial neural network; Process model; Optimization; Feedback control; PAT;
D O I
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中图分类号
学科分类号
摘要
Recombinant proteins produced in Escherichia coli hosts may appear within the cells’ cytoplasm in form of insoluble inclusion bodies (IB’s) and/or as dissolved functional protein molecules. If no efficient refolding procedure is available, one is interested in obtaining as much product as possible in its soluble form. Here, we present a process engineering approach to maximizing the soluble target protein fraction. For that purpose, a dynamic process model was developed. Its essential kinetic component, the specific soluble product formation rate, if represented as a function of the specific growth rate and the culture temperature, depicts a clear maximum. Based on the dynamic model, optimal specific growth rate and temperature profiles for the fed-batch fermentation were determined. In the course of the study reported, the mass of desired soluble protein was increased by about 25%. At the same time, the formation of inclusion bodies was essentially avoided. As the optimal cultivation procedure is rather susceptible to distortions, control measures are necessary to guarantee that the real process can be kept on its desired path. This was possible with robust closed loop control. Experimental process validation revealed that, in this way, high dissolved product fractions could be obtained at an excellent batch-to-batch reproducibility.
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页码:2047 / 2058
页数:11
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