Synthesis and antibacterial activity of silver nanoparticles stabilized by lipopeptides and glycolipids produced by Bacillus amyloliquefaciens and Pseudomonas fluorescens
- Authors: Khina A.G.1,2, Gordeev A.S.3, Biktasheva L.R.3, Gorbunov D.M.1, Kuryntseva P.A.3, Lisichkin G.V.1, Krutyakov Y.A.1,4
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Affiliations:
- Lomonosov Moscow State University
- Bauman Moscow State Technical University
- Kazan Federal University
- National Research Center “Kurchatov Institute”
- Issue: Vol 61, No 3 (2025)
- Pages: 269-282
- Section: Articles
- URL: https://rjraap.com/0555-1099/article/view/689330
- DOI: https://doi.org/10.31857/S0555109925030058
- EDN: https://elibrary.ru/FNUWYD
- ID: 689330
Cite item
Abstract
The colloidal chemical and antibacterial properties of aqueous dispersions of silver nanoparticles stabilized by surfactin and rhamnolipids isolated from B. amyloliquefaciens and P. fluorescens were studied. The isolated biosurfactants were identified by thin layer chromatography and Fourier transform infrared spectrometry. Using the methods of UV-visible spectrophotometry, transmission electron microscopy and dynamic light scattering, the colloidal chemical characteristics of the resulting dispersions were studied. Optimal ratios of the precursor substances were found in which the used biosurfactants perform as effective stabilizers of dispersions of silver nanoparticles and ensure their aggregative stability for at least two months. It was shown that the studied dispersions have antibacterial activity against gram-positive B. subtilis and gram-negative P. aeruginosa and E. coli. A comparative assessment of the antibacterial activity of silver nanoparticles stabilized by biosurfactants and traditional silver-containing preparations, such as a silver nitrate solution and a dispersion of silver nanoparticles stabilized by citrate, was carried out. Furthermore, dispersions stabilized with surfactin showed the highest antibacterial activity, comparable to the effect of a silver nitrate solution, which is associated with their good colloidal stability. In addition, high antibacterial activity of dispersions of silver nanoparticles stabilized with biosurfactants isolated from Bacillus and Pseudomonas bacteria against strains of the other genus was discovered. An explanation of the observed phenomenon is given and the prospects for its application in medicine are proposed.
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About the authors
A. G. Khina
Lomonosov Moscow State University; Bauman Moscow State Technical University
Author for correspondence.
Email: alex_khina@inbox.ru
Lomonosov Moscow State University, Department of Chemistry
Russian Federation, Moscow, 119991; Mosccow, 105005A. S. Gordeev
Kazan Federal University
Email: alex_khina@inbox.ru
Institute of Ecology, Biotechnology and Nature Management
Russian Federation, Kazan, 420008L. R. Biktasheva
Kazan Federal University
Email: alex_khina@inbox.ru
Institute of Ecology, Biotechnology and Nature Management
Russian Federation, Kazan, 420008D. M. Gorbunov
Lomonosov Moscow State University
Email: alex_khina@inbox.ru
Department of Chemistry
Russian Federation, Moscow, 119991P. A. Kuryntseva
Kazan Federal University
Email: alex_khina@inbox.ru
Institute of Ecology, Biotechnology and Nature Management
Russian Federation, Kazan, 420008G. V. Lisichkin
Lomonosov Moscow State University
Email: alex_khina@inbox.ru
Department of Chemistry
Russian Federation, Moscow, 119991Yu. A. Krutyakov
Lomonosov Moscow State University; National Research Center “Kurchatov Institute”
Email: nrcki@nrcki.ru
Lomonosov Moscow State University, Department of Chemistry
Russian Federation, Moscow, 119991; Moscow, 123182References
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