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Elucidation of auxotrophic deficiencies of Bacillus pumilus DSM 18097 to develop a defined minimal medium

机译:阐明短小芽孢杆菌DSM 18097的营养缺陷型缺陷,以开发明确的基本培养基

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Culture media containing complex compounds like yeast extract or peptone show numerous disadvantages. The chemical composition of the complex compounds is prone to significant variations from batch to batch and quality control is difficult. Therefore, the use of chemically defined media receives more and more attention in commercial fermentations. This concept results in better reproducibility, it simplifies downstream processing of secreted products and enable rapid scale-up. Culturing bacteria with unknown auxotrophies in chemically defined media is challenging and often not possible without an extensive trial-and-error approach. In this study, a respiration activity monitoring system for shake flasks and its recent version for microtiter plates were used to clarify unknown auxotrophic deficiencies in the model organism Bacillus pumilus DSM 18097. Bacillus pumilus DSM 18097 was unable to grow in a mineral medium without the addition of complex compounds. Therefore, a rich chemically defined minimal medium was tested containing basically all vitamins, amino acids and nucleobases, which are essential ingredients of complex components. The strain was successfully cultivated in this medium. By monitoring of the respiration activity, nutrients were supplemented to and omitted from the rich chemically defined medium in a rational way, thus enabling a systematic and fast determination of the auxotrophic deficiencies. Experiments have shown that the investigated strain requires amino acids, especially cysteine or histidine and the vitamin biotin for growth. The introduced method allows an efficient and rapid identification of unknown auxotrophic deficiencies and can be used to develop a simple chemically defined tailor-made medium. B. pumilus DSM 18097 was chosen as a model organism to demonstrate the method. However, the method is generally suitable for a wide range of microorganisms. By combining a systematic combinatorial approach based on monitoring the respiration activity with cultivation in microtiter plates, high throughput experiments with high information content can be conducted. This approach facilitates media development, strain characterization and cultivation of fastidious microorganisms in chemically defined minimal media while simultaneously reducing the experimental effort.
机译:含有复杂化合物(例如酵母提取物或蛋白ept)的培养基显示出许多缺点。复杂化合物的化学组成易于在批次之间显着变化,并且质量控制困难。因此,在商业发酵中,化学定义培养基的使用越来越受到关注。此概念可实现更好的可重复性,简化了分泌产物的下游加工并实现了快速放大。在化学成分确定的培养基中培养未知营养缺陷的细菌具有挑战性,如果没有广泛的反复试验方法,通常是不可能的。在这项研究中,用于摇瓶的呼吸活动监测系统及其最新的微量滴定板系统被用于澄清模型生物芽孢杆菌DSM 18097中未知的营养缺陷型缺陷。复杂的化合物。因此,测试了一种化学成分丰富的基本培养基,该培养基基本包含所有维生素,氨基酸和核碱基,这是复杂成分的基本成分。该菌株成功地在该培养基中培养。通过监测呼吸活动,可以以合理的方式向营养丰富的化学定义培养基中补充营养素并从中删除营养素,从而能够系统快速地确定营养缺陷症。实验表明,所研究的菌株需要氨基酸(尤其是半胱氨酸或组氨酸)和维生素生物素才能生长。引入的方法可以高效,快速地识别未知的营养缺陷,并可用于开发简单的化学定义的定制培养基。选择短小芽孢杆菌DSM 18097作为模型生物来证明该方法。但是,该方法通常适用于多种微生物。通过将基于监测呼吸活动的系统组合方法与微量滴定板中的培养相结合,可以进行具有高信息含量的高通量实验。这种方法有助于培养基的开发,菌株表征以及在化学成分限定的基本培养基中培养难养微生物,同时减少了实验工作量。

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