Preview

Bulletin of NSAU (Novosibirsk State Agrarian University)

Advanced search

Effect of different carbon sources on biosurfactant production by natural strains of Bacillus spp.

https://doi.org/10.31677/2072-6724-2025-75-2-152-159

Abstract

Biosurfactants are biotechnologically valuable metabolites of microorganisms. These compounds have not only surface-active properties, but also the ability to suppress growth of pathogenic and opportunistic bacteria and fungi. The wide range of characteristics and safety of biosurfactants have allowed them to find application in various industries. However, their production is currently problematic. The main problems in biosurfactants obtaining are associated with the search for highly active strains-producers, optimization of media composition for their cultivation, and production costs reduction. The aim of the work was to study the influence of different carbon sources on the biosurfactants production by natural bacilli strains. A screening of Bacillus spр. strains that possess surfactant activity from the Engineering Center “Prombiotech” collection was conducted. For the selected strains, the influence of sucrose, glycerol, mannitol and beet molasses on the biosurfactants production was shown. It was established that the Bacillus atrophaeus 7 strain is capable of producing surfaceactive compounds only when cultivated on media with molasses as the sole carbon source. On the contrary, for the Bacillus subtilis 1/8 strain, production of biosurfactants was recorded when using media with sucrose, glycerol, mannitol and beet molasses. The influence of cultivation duration on the surfactants accumulation in the medium for both bacilli strains was also established. The growth duration increase resulted in biosurfactants concentration decrease in the culture liquid.

About the Authors

D. E. Dudnik
Altai State University
Russian Federation

Postgraduate Student

Barnaul



A. N. Irkitova
Altai State University
Russian Federation

Candidate of Biological Science

Barnaul



A. V. Malkova
Altai State University
Russian Federation

Candidate of Biological Science

Barnaul



E. N. Kozhevnikova
Altai State University
Russian Federation

Laboratory assistant

Barnaul



References

1. Shleeva M.O., Kondratieva D.A., Kaprelyants A.S., Bacillus licheniformis: A Producer of Antimicrobial Substances, including Antimycobacterials, Which Are Feasible for Medical Applications, Pharmaceutics, 2023, Vol. 7, рp. 1893, DOI: 10.3390/pharmaceutics15071893.

2. Tran C., Cock I. E., Chen X. et al., Antimicrobial Bacillus: Metabolites and Their Mode of Action, Antibiotics (Basel), 2022, Vol. 11, DOI: 10.3390/antibiotics11010088.

3. Cruz Mendoza I., Villavicencio-Vasquez M., Aguayo P. et al., Biosurfactant from Bacillus subtilis DS03: Properties and Application in Cleaning Out Place System in a Pilot Sausages Processing, Microorganisms, 2022, Vol. 10(8), DOI: 10.3390/microorganisms10081518.

4. Ali N., Pang Z., Wang F. et al., Lipopeptide Biosurfactants from Bacillus spp.: Types, Production, Biological Activities, and Applications in Food, Journal of Food Quality, 2022, DOI: 10.1155/2022/3930112.

5. Ceresa C., Fracchia L., Sansotera A.C. et al., Harnessing the Potential of Biosurfactants for Biomedical and Pharmaceutical Applications, Pharmaceutics, 2023, Vol. 15(8), DOI: 10.3390/pharmaceutics15082156.

6. Kumari R., Singha L.P., Shukla P., Biotechnological potential of microbial bio-surfactants, their significance, and diverse applications, FEMS Microbes, 2023, Vol. 4, DOI: 10.1093/femsmc/xtad015.

7. Sriram M.I., Kalishwaralal K., Deepak V. et al., Biofilm inhibition and antimicrobial action of lipopeptide biosurfactant produced by heavy metal tolerant strain Bacillus cereus NK1, Colloids Surf B Biointerfaces, 2011, Vol. 85(2), рр. 174–181, DOI: 10.1016/j.colsurfb.2011.02.026.

8. Felix A.K.N., Martins J.J., Almeida J.G.L. et al., Purification and characterization of a biosurfactant produced by Bacillus subtilis in cashew apple juice and its application in the remediation of oil-contaminated soil, Colloids Surf B Biointerfaces, 2019, Vol. 175, рр. 256–263, DOI: 10.1016/j.colsurfb.2018.11.062.

9. Abdel-Mawgoud A.M., Aboulwafa M.M., Hassouna N.A., Optimization of surfactin production by Bacillus subtilis isolate BS5, Appl Biochem Biotechnol, 2008, Vol. 150(3), рр. 305–325, DOI: 10.1007/s12010-008-8155-x.

10. Adiandri R.S., Purwadi R., Hoerudin H. et al., Evaluation of Biosurfactant Production by Bacillus Species Using Glucose and Xylose as Carbon Sources, Curr Microbiol, 2023, Vol. 80, DOI: 10.1007/s00284-023-03345-6.

11. Wu B., Xiu J., Yu L. et al., Biosurfactant production by Bacillus subtilis SL and its potential for enhanced oil recovery in low permeability, Sci Rep, 2022, Vol. 12, DOI: 10.1038/s41598-022-12025-7.

12. Zhang J., Xue Q., Gao H. et al., Production of lipopeptide biosurfactants by Bacillus atrophaeus 5-2a and their potential use in microbial enhanced oil recovery, Microb Cell Fact, 2016, Vol. 15, DOI: 10.1186/s12934-016-0574-8.

13. Cortés-Camargoa S., Pérez N., Oliveira R. et al., Production of biosurfactants from vine-trimming shoots using the halotolerant strain Bacillus tequilensis ZSB10, Industrial Crops and Products, 2016, Vol. 79, рр. 258–266, DOI: 10.1016/j.indcrop.2015.11.003.

14. Mouafo T.H., Mbawala A., Ndjouenkeu R., Effect of Different Carbon Sources on Biosurfactants’ Production by Three Strains of Lactobacillus spp., Biomed Res Int, 2018, Vol. 2018, DOI: 10.1155/2018/5034783.

15. Janek T., Gudiña E.J., Połomska X. et al., Sustainable Surfactin Production by Bacillus subtilis Using Crude Glycerol from Different Wastes, Molecules, 2021, Vol. 26(12), DOI: 10.3390/molecules26123488.

16. Sohail R., Nazia J., Microbial Biosurfactant Screening: Diversity in Assessment Methods, Advancements of Microbiology, 2023, Vol. 62, рр. 145–155, DOI: 10.2478/am-2023-0013.

17. Sharma J., Sundar D., Srivastava P., Biosurfactants: Potential Agents for Controlling Cellular Communication, Motility, and Antagonism, Front Mol Biosci, 2021, Vol. 8, DOI: 10.3389/fmolb.2021.727070.

18. Shaimerdenova U., Kaiyrmanova G., Lewandowska W. et al., Biosurfactant and biopolymer producing microorganisms from West Kazakhstan oilfield, Sci Rep, 2024, Vol. 14, DOI: 10.1038/s41598-024-52906-7.

19. Rocha P.M., Dos Santos Mendes A.C., de Oliveira Júnior S.D. et al., Kinetic study and characterization of surfactin production by Bacillus subtilis UFPEDA 438 using sugarcane molasses as carbon source, Prep Biochem Biotechnol, 2021, Vol. 51(3), рр. 300–308, DOI: 10.1080/10826068.2020.1815055.

20. Zhang S., Wang J., Jiang H., Microbial production of value-added bioproducts and enzymes from molasses, a byproduct of sugar industry, Food Chem, 2021, Vol. 346, DOI: 10.1016/j.foodchem.2020.128860.

21. Zhou D., Hu F., Lin J. et al., Genome and transcriptome analysis of Bacillus velezensis BS-37, an efficient surfactin producer from glycerol, in response to d-/l-leucine, Microbiologyopen, 2019, Vol. 8, DOI: 10.1002/mbo3.794.


Review

For citations:


Dudnik D.E., Irkitova A.N., Malkova A.V., Kozhevnikova E.N. Effect of different carbon sources on biosurfactant production by natural strains of Bacillus spp. Bulletin of NSAU (Novosibirsk State Agrarian University). 2025;(2):152-159. (In Russ.) https://doi.org/10.31677/2072-6724-2025-75-2-152-159

Views: 25


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2072-6724 (Print)