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Dynamic Experiments for Bioprocess Parameter Optimization with Extreme Halophilic Archaea

机译:极端嗜盐古生菌生物工艺参数优化的动态实验

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The to-date studies on extreme halophiles were focused on shake flask cultivations. Bioreactor technology with quantitative approaches can offer a wide variety of biotechnological applications to exploit the special biochemical features of halophiles. Enabling industrial use of Haloferax mediterranei, finding the optima of cultivation parameters is of high interest. In general, process parameter optimizations were mainly carried out with laborious and time-consuming chemostat cultures. This work offers a faster alternative for process parameter optimization by applying temperature ramps and pH shifts on a halophilic continuous bioreactor culture. Although the hydraulic equilibrium in continuous culture is not reached along the ramps, the main effects on the activity from the dynamic studies can still be concluded. The results revealed that the optimal temperature range may be limited at the lower end by the activity of the primary metabolism pathways. At the higher end, the mass transfer of oxygen between the gaseous and the liquid phase can be limiting for microbial growth. pH was also shown to be a key parameter for avoiding overflow metabolism. The obtained experimental data were evaluated by clustering with multivariate data analyses. Showing the feasibility on a halophilic example, the presented dynamic methodology offers a tool for accelerating bioprocess development.
机译:迄今为止,关于极端嗜盐菌的研究主要集中在摇瓶培养上。具有定量方法的生物反应器技术可以提供广泛的生物技术应用,以利用嗜盐菌的特殊生化特征。使工业上的Haloferax mediterranei成为可能,寻找最优化的栽培参数引起了人们的极大兴趣。通常,工艺参数的优化主要是使用费力且耗时的化学恒温器培养进行的。这项工作通过在嗜盐连续生物反应器培养物中施加温度上升和pH改变,为工艺参数优化提供了一个更快的替代方法。尽管沿坡道未达到连续培养中的水力平衡,但仍可以得出动力学研究对活性的主要影响。结果表明,最佳温度范围可能受到初级代谢途径活动的限制。在高端,氧气在气相和液相之间的传质可能会限制微生物的生长。 pH值也是避免溢出代谢的关键参数。通过与多元数据分析进行聚类来评估获得的实验数据。展示了一个嗜盐实例的可行性,所提出的动态方法为加速生物过程的发展提供了一种工具。

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