Enhanced β-Carotene Production in Mycolicibacterium neoaurum Ac-501/22 by Combining Mutagenesis, Strain Selection, and Subsequent Fermentation Optimization
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Published:2023-12-06
Issue:12
Volume:9
Page:1007
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ISSN:2311-5637
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Container-title:Fermentation
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language:en
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Short-container-title:Fermentation
Author:
Yaderets Vera1, Karpova Nataliya1ORCID, Glagoleva Elena1, Shibaeva Alexandra1, Dzhavakhiya Vakhtang1
Affiliation:
1. Laboratory of Biotechnology of Industrial Microorganisms, Department of Biotechnology and Technology of Bioorganic Synthesis Products, Russian Biotechnological University (ROSBIOTECH), Moscow 125080, Russia
Abstract
A continuing interest of scientists regarding the development of new β-carotene production technologies is due to the high biological activity of this compound and its wide application range. Bacteria are considered among the possible β-carotene producers convenient for industrial use. The purpose of this study was to develop a Mycolicibacterium neoaurum strain with an enhanced ability for β-carotene production and to optimize the fermentation conditions to improve the final yield of the target compound. Using chemical mutagenesis with N-nitroso-N-methylurea along with further strain selection, a M. neoaurum strain Ac-501/22, whose productivity was 2.7-fold higher than that of the parental strain Ac-501, was developed. The effect of nitrogen and carbon sources as well as cultivation conditions on the growth of M. neoaurum Ac-501/22 and β-carotene production were studied to select the optimal fermentation regime. Due to an increase in the temperature of cultivation from 30 to 35 °C, replacement of glucose with glycerin (20.0 g/L) and degreased soybean flour with powdered milk (10.0 g/L), and increase in the urea content from 0.5 to 1.0 g/L, the level of β-carotene production was improved to 183.0 mg/kg that was 35% higher than in the control. Further strain fermentation in a 3 L bioreactor using an optimized medium with the pH level maintained at 7.0–7.2 and 50% pO2 provided the maximum output of the target compound (262.4 mg/kg of dry biomass) that confirmed the prospects of the developed strain as an industrial β-carotene producer.
Funder
Ministry of Science and Higher Education of the Russian Federation
Subject
Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Food Science
Reference59 articles.
1. Pagels, F., Vasconcelos, V., and Guedes, A.C. (2021). Carotenoids from cyanobacteria: Biotechnological potential and optimization strategies. Biomolecules, 11. 2. Carotenoids as natural functional pigments;Maoka;J. Nat. Med.,2020 3. Ashokkumar, V., Flora, G., Sevanan, M., Sripriya, R., Chen, W.H., Park, J.H., Rajesh Banu, J., and Kumar, G. (2023). Technological advances in the production of carotenoids and their applications—A critical review. Bioresour. Technol., 367. 4. Foong, L.C., Loh, C.W.L., Ng, H.S., and Lan, J.C. (2021). Recent development in the production strategies of microbial carotenoids. World J. Microbiol. Biotechnol., 37. 5. Novoveská, L., Ross, M.E., Stanley, M.S., Pradelles, R., Wasiolek, V., and Sassi, J.F. (2019). Microalgal carotenoids: A review of production, current markets, regulations, and future direction. Mar. Drugs, 17.
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