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Development of a simple intensified fermentation strategy for growth of Magnetospirillum gryphiswaldense MSR-1: Physiological responses to changing environmental conditions

机译:一种简单的强化发酵策略的生长用于Magryospirillum gryphiswaldense MSR-1的生长:对变化的环境条件的生理响应

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摘要

The development of a simple pH-stat fed-batch fermentation strategy for the production of Magnetospirillum gryphiswaldense MSR-1 and magnetosomes (nanoscale magnetic organelles with biotechnological applications) is described. Flow cytometry was exploited as a powerful analytical tool for process development, enabling rapid monitoring of cell morphology, physiology and polyhydroxyalkanoate production. The pH-stat fed-batch growth strategy was developed by varying the concentrations of the carbon source (lactic acid) and the alternative electron acceptor (sodium nitrate) in the feed. Growth conditions were optimized on the basis of biomass concentration, cellular magnetism (indicative of magnetosome production), and intracellular iron concentration. The highest biomass concentration and cellular iron content achieved were an optical density at 565 nm of 15.5 (equivalent to 4.2 g DCW·L−1) and 33.1 mg iron·g−1 DCW, respectively. This study demonstrates the importance of analyzing bacterial physiology during fermentation development and will potentially aid the industrial production of magnetosomes, which can be used in a wide range of biotechnology and healthcare applications.
机译:描述了一种简单的pH-stat补料分批发酵策略的发展,该策略用于生产格氏螺螺旋藻MSR-1和磁小体(具有生物技术应用的纳米级磁性细胞器)。流式细胞术被用作过程开发的强大分析工具,可以快速监测细胞形态,生理学和聚羟基链烷酸酯的产生。通过改变饲料中碳源(乳酸)和替代电子受体(硝酸钠)的浓度,开发了pH恒定的补料分批生长策略。根据生物质浓度,细胞磁性(指示磁小体产生)和细胞内铁浓度优化生长条件。最高的生物量浓度和胞内铁含量为565 nm处的光密度为15.5(相当于4.2 g DCW·L -1 )和33.1 mg·铁·g -1 DCW。这项研究证明了在发酵过程中分析细菌生理学的重要性,并有可能有助于磁小体的工业化生产,这种磁小体可用于广泛的生物技术和医疗保健应用。

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