Modeling a composite system for remediation of water on the basis of nanosilica and yeast cells

Authors

  • T. V. Krupskaya
  • I. V. Siora
  • N. Y. Klymenko
  • E. А. Novikova
  • А. P. Golovan
  • L. А. Suvorova
  • V. V. Turov

DOI:

https://doi.org/10.15407/dopovidi2015.10.055

Keywords:

destruction of hydrocarbons, interfacial phenomena, nanosilica, water purification, yeast cells

Abstract

A model system of a composite based on mixes of hydrophobic (AM1-300) and hydrophilic (A-300) silicas, yeast cells, water, and n-decane was created. The influence of nanosilicas on the intensity of growth of yeast genus Saccharomyces cerevisiae was investigated. It was shown that the presence of the composite provides the vital activity of yeast cells even in the absence of a nutrient medium. It was found that small concentrations of the mixture of nanosilicas can stimulate the growth of cells biomass. Our results indicate that the created nanobiocomposite is an effective biodestructor of hydrocarbons in aqueous medium.

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References

Lodolo A., Grechishcheva N. Y., Meshcheryakov S. V., Rybalskyi N. G., Snakin V. V., Barsov A. R., Kulyndyshev V. A. Technology of recovery of soils, polluted of petroleum and oil products. Directory, Moscow: REFIA, NIA-Nature, 2003 (in Russian).

Velkov V. V. Biotechnology, 1995, No 3–4: 20–27 (in Russian).

Loginova O. O., Dang T. T., Belousova E. V., Shalimova S. S., Shevchenko M. Y., Grabovich M. Y. Organization and regulation of physiological biochemical processes: Interreg. collect. sci. pap., Iss. 12, Voronezh: Centr. Black Earth Publ., 2010 (in Russian).

Mironov O. G, Doroshenko Y. V. Mar. ecol. J., 2007, 6, No 2: 58–62 (in Russian).

Toren A., Navon-Venezia S., Ron E. Z., Rosenberg E. Appl. Environ. Microbiol, 2001, 67, No 3: 1102–1106. https://doi.org/10.1128/AEM.67.3.1102-1106.2001

Chugunov V. A., Ermolenko Z. M., Zhygletsova S. K., Martovetskaya I. I., Mironova R. I., Zhirkova N. A., Kholodenko V. P. Appl. biochem. and microbial., 2000, 36, No 6: 661–665 (in Russian).

Ellis S., Balba M. T., Theile P. Environ. Sci. Technol, 1990, 11, No 5: R. 443–454.

Tsymberg E. A., Titova L. V., Kurdish I. K. Microbiol. J., 1991, 53, No 4: 55–58 (in Russian).

Kurdish I. K., Bihunov V. L., Tsymberg E. A., Elchits S. V., Vygovskaya E. L., Chuiko A. A. Microbiol. J., 1991, 53, No 2: 41–44 (in Russian).

Krupskaya T. V., Turova A. A., Gun'ko V. M., Turov V. V. Biopolymers and cells, 2009, 25, No 4: 290–297 (in Russian).

Gun'ko V. M., Turov V. V., Bogatyrev V. M., Zarko V. I., Leboda R., Goncharuk E. V., Novza A. A., Turov A. V., Chuiko A. A. Adv. Colloid Interface Sci., 2005, 118: 125–172. https://doi.org/10.1016/j.cis.2005.07.003

Gun'ko V. M., Turov V. V., Gorbik P. P. Water at the interface, Kyiv: Nauk. Dumka, 2009 (in Russian).

Gun'ko V. M., Turov V. V. Nuclear Magnetic Resonance Studies of Interfacial Phenomena, New York: Taylor & Francis, 2013. https://doi.org/10.1201/b14202

Pochinok Ch. N. Methods biochemically of analysis plants, Kyiv: Nauk. Dumka, 1976 (in Russian).

Kvasnikov E. I., Schelkova I. F. Yeasts. Biology. Ways use, Kyiv: Nauk. Dumka, 1991 (in Russian).

Published

08.02.2025

How to Cite

Krupskaya, T. V., Siora, I. V., Klymenko, N. Y., Novikova E. А., Golovan А. P., Suvorova L. А., & Turov, V. V. (2025). Modeling a composite system for remediation of water on the basis of nanosilica and yeast cells . Reports of the National Academy of Sciences of Ukraine, (10), 55–63. https://doi.org/10.15407/dopovidi2015.10.055