Abstract
AbstractBackgroundIn research and production, reproducibility is a key factor, to meet high quality and safety standards and maintain productivity. For microbial fermentations, complex substrates and media components are often used. The complex media components can vary in composition, depending on the lot and manufacturing process. These variations can have an immense impact on the results of biological cultivations. The aim of this work was to investigate and characterize the influence of the complex media component yeast extract on cultivations ofAzotobacter vinelandiiunder microaerobic conditions. Under these conditions, the organism produces the biopolymer alginate. The focus of the investigation was on the respiration activity, cell growth and alginate production.ResultsYeast extracts from 6 different manufacturers and 2 different lots from one manufacturer were evaluated.Significant differences on respiratory activity, growth and production were observed. Concentration variations of three different yeast extracts showed that the performance of poorly performing yeast extracts can be improved by simply increasing their concentration. On the other hand, the results with well-performing yeast extracts seem to reach a saturation, when their concentration is increased. Cultivations with poorly performing yeast extract were supplemented with grouped amino acids, single amino acids and micro elements. Beneficial results were obtained with the supplementation of copper sulphate, cysteine or a combination of both. Furthermore, a correlation between the accumulated oxygen transfer and the final viscosity (as a key performance indicator), was established.ConclusionThe choice of yeast extract is crucial forA. vinelandiicultivations, to maintain reproducibility and comparability between cultivations. The proper use of specific yeast extracts allows the cultivation results to be specifically optimised. In addition, supplements can be applied to modify and improve the properties of the alginate. The results only scratch the surface of the underlying mechanisms, as they are not providing explanations on a molecular level. However, the findings show the potential of optimising media containing yeast extract for alginate production withA. vinelandii,as well as the potential of targeted supplementation of the media.
Funder
Deutsche Forschungsgemeinschaft,Germany
FONCICYT-CONACyT
RWTH Aachen University
Publisher
Springer Science and Business Media LLC
Subject
Applied Microbiology and Biotechnology,Bioengineering,Biotechnology
Reference113 articles.
1. Draget KI, Taylor C. Chemical, physical and biological properties of alginates and their biomedical implications. Food Hydrocolloid. 2011;25(2):251–6.
2. Liu J, Yang SQ, Li XT, Yan QJ, Reaney MJT, Jiang ZQ. Alginate oligosaccharides: production, biological activities, and potential applications. Compr Rev Food Sci F. 2019;18(6):1859–81.
3. Chowdhury S, Chowdhury IR, Kabir F, Mazumder MA, Zahir MH, Alhooshani K. Alginate-based biotechnology: a review on the arsenic removal technologies and future possibilities. J Water Supply Res T. 2019;68(6):369–89.
4. Wawrzynska E, Kubies D. Alginate matrices for protein delivery—a short review. Physiol Res. 2018;67(Suppl 2):S319–34.
5. Qin Y, Jiang J, Zhang J, Wang F. Applications of alginate as a functional food ingredient BioPolymers for food design. Cambridge: Academic Press; 2018.
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