INVESTIGATION OF THE CONDITION OF THE ERYTHROCYTE MEMBRANES OF RATS USING A FLUORESCENT PROBE UNDER CONDITIONS OF EXPOSURE TO YTTRIUM GADOLINIUM ORTHOVANADATE NANOPARTICLES AND POLYETHYLENE GLYCOL-400

Nakonechna O. A., Posokhov Y. O., Bezrodnaya A. I., Yarmysh N. V., Bachynskyi R. O.

INVESTIGATION OF THE CONDITION OF THE ERYTHROCYTE MEMBRANES OF RATS USING A FLUORESCENT PROBE UNDER CONDITIONS OF EXPOSURE TO YTTRIUM GADOLINIUM ORTHOVANADATE NANOPARTICLES AND POLYETHYLENE GLYCOL-400


Show/Download

About the author:

Nakonechna O. A., Posokhov Y. O., Bezrodnaya A. I., Yarmysh N. V., Bachynskyi R. O.

Heading:

NANOMEDICINE AND NANOTECHNOLOGY

Type of article:

Scientific article

Annotation:

Nanomaterials based on rare earth metals have become widely used in medicine for radiotherapy for patients with cancer. However, irradiation of nanoparticles (NP) generates many short-range electrons, which can cause their modification. Polyethylene glycol-400 (PEG-400) is a cell-impermeable substance that can adsorb on the membrane surface, causing changes in its structure and charge value, being incorporated into its hydrophobic regions and interacting with the fatty acid tails of phospholipids or hydrophobic regions of integral proteins. The fluorescent probe O1O (2-(2-hydroxy-phenyl)-5-phenyl-1,3-oxazole) was used to study the state of rat erythrocyte membranes under the influence of NP (with and without irradiation) and PEG-400, whose fluorescence parameters depend on the polarity and proton donor capacity of its microenvironment. Since an increase in the hydration of the lipid bilayer of cell membranes leads to an increase in the proton donor capacity and polarity of the membrane environment, the O1O probe can be used to detect changes in the hydration of lipid membranes. An experimental study of the fluorescence spectrum of the O1O probe in a suspension of rat erythrocytes exposed to polyethylene glycol-400 indicates the formation of an additional shell of its molecules on the surface of the membranes. The study of the fluorescence spectrum of the O1O probe in the suspension of erythrocytes from rats exposed to NP of yttrium gadolinium orthovanadate activated with europium at doses of 100 μg/kg and 200 μg/kg, both under conditions of their preliminary UV irradiation and without it, did not reveal any changes in the erythrocyte membranes.

Tags:

fluorescence of probe O1O, nanoparticles, polyethylene glycol-400, rat erythrocyte membranes, yttrium gadolinium orthovanadate

Bibliography:

  1. Palacios-Alonso P, Sanz-de-Diego E, Peláez RP, Cortajarena AL, Teran FJ, Delgado-Buscalioni R. Predicting the size and morphology of nanoparticle clusters driven by biomolecular recognition. Soft Matter. 2023;19:8929-8944. DOI: http://dx.doi.org/10.1039/D3SM00536D.
  2. Sim S, Wong NK. Nanotechnology and its use in imaging and drug delivery (Review). Biomedical Reports. 2021;14:1-9. DOI: https://doi. org/10.3892/ br.2021.1418.
  3. Nadeem J, Dirk L. Nanoparticle classification, physicochemical properties, characterization, and applications: a comprehensive review for biologists. Journal of Nano biotechnology. 2022;20:1-29. DOI: https://doi.org/10.1186/ s12951-022-01477-8.
  4. Nowak N, Czekanowska D, Reeks JM, Wiglusz RJ. Structural, Spectroscopic, and Biological Characterization of Novel Rubidium(I) and Europium(III) Co-Doped Nano-Hydroxyapatite Materials and Their Potential Use in Regenerative Medicine. Nanomaterials. 2022;12:4475. DOI: https://doi.org/10.3390/nano12244475.
  5. Hooda A, Singh D, Dalal A, Malik S, Redhu S, Jakhar K, et al. Preparation and spectral features of Dy(III) β-Diketonates with m,m′-Disubstituted N-donor aromatic auxiliary moieties for displays. Inorganic Chemistry Communications. 2023;155:111018. DOI: https://doi. org/10.1016/j.inoche. 2023.111018.
  6. Featherston ER, Cotruvo JA. The biochemistry of lanthanide acquisition, trafficking, and utilization. BBA – Molecular Cell Research. 2021;1868:118864. DOI: https://doi.org/10.1016/j.bbamcr.2020.118864.
  7. Abbasi R, Shineh G, Mobaraki M, Doughty S, Tayebi L. Structural parameters of nanoparticles affecting their toxicity for biomedical applications: a review. J Nanopart Res. 2023;25:43. DOI: https://doi.org/10. 1007/s11051-023-05690-w.
  8. Cheignon C, Kassir AA, Soro LK, Loïc J. Charbonnière. Dye-sensitized lanthanide containing nanoparticles for luminescence based applications. Nanoscale. 2022;14:13915-13949. DOI: https://doi.org/10.1039/D1NR06 464A.
  9. Gu N, editor. Nanomedicine. Micro/NanoTechnologies. Singapore: Springer; 2023. Chapter, Nano-bio Interactions in the Lung; p. 469-499. DOI: https://doi.org/10.1007/978-981-16-8984-0_14.
  10. Sikorska K, Sawicki K, Czajka M, Kapka-Skrzypczak L, Kruszewski M, Brzóska К. Adverse Effects of Non-Metallic Nanoparticles in the Central Nervous System. Materials (Basel). 2023;16:1-39. DOI: https://doi.org/ 10.3390/ma16237264.
  11. Prokopyuk V, Onishchenko A, Yefimova S, Chumachenko T. Cytotoxicity Tests on Cultured Rat Skin Fibroblasts Revealed no Toxicity for Low Concentrations of GdYVO4:Eu3+ Nanoparticles. Proceedings of 2021 IEEE 11th International Conference Nanomaterials: Applications & Properties (NAP); 2021 Sept 5-11; Odessa. Odessa: IEEE; 2021. p. 1-4. DOI: https://doi.org/10.1109/NAP51885.2021.9568547.
  12. Yefimova S, Onishchenko A, Klochkov V, Myasoedov V, Kot Y, Tryfonyuket L, et al. Rare-earth orthovanadate nanoparticles trigger Ca2+- dependent eryptosis. Nanotechnology. 2023;34:20. DOI: https://doi.org/10. 1088/1361-6528/acbb7f.
  13. Tkachenko A, Onishchenko A, Myasoedov V, Yefimova S, Havranek O. Assessing regulated cell death modalities as an efficient tool for in vitro nanotoxicity screening: a review. Nanotoxicology. 2023;17(3):218-248. DOI: https://doi.org/10.1080/17435390.2023.2203239.
  14. Onishchenko A, Myasoedov V, Yefimova S, Nakonechna О, Prokopyuk V, Butov D, et al. UV Light-Activated GdYVO4:Eu3+ Nanoparticles Induce Reactive Oxygen Species Generation in Leukocytes Without Affecting Erythrocytes In Vitro. Biological Trace Element Research. 2021;200:2777-2792. DOI: 10.1007/s12011-021-02867-z.
  15. Klochkov VK, Kavok NS, Malyukin YuV, Masalov AA, Vyagin OG. Colloidal synthesis and properties of lanthanide orthophosphate nanophosphors. Functional Materials. 2009;4:466-469.
  16. Zhulikova MV, Myroshnychenko MS, Nakonechna OA, Zhulikov OO, Pustova NO, Bibichenko VO, et al. Reactive oxygen species generation by blood leucocytes of rats with polycystic ovary syndrome under the conditions of intermittent cold exposure. Wiadomości Lekarskie Medical Advances. 2023;76:1670-1676. DOI: https://doi.org/10.36740/WLek2023 07123.
  17. Maksimchuk PO, Hubenko KO, Seminko VV, Karbivskii VL, Tkachenko AS, Onishchenko AI, et al. High antioxidant activity of gadolinium–yttrium orthovanadate nanoparticles in cell-free and biological milieu. Nanotechnology. 2021;33(5). DOI: 10.1088/1361-6528/ac31e5.
  18. Ścibior A, Kurus J. Vanadium and Oxidative Stress Markers – In Vivo Model: A Review. Current Medicinal Chemistry. 2019;26:5456-5500. DOI: https://doi.org/10.2174/0929867326666190108112255.
  19. Nikitchenko YuV, Klochkov VK, Kavok NS, Karpenko NA. Gadolinium orthovanadate nanoparticles increase survival of old rats. Reports of the National Academy of Sciences of Ukraine. 2020;2:29-36. DOI: https://doi.org/ 10.15407/dopovidi2020.02.029.
  20. Koshevoy VI, Naumenko SV, Klochkov VK, Yefimova SL. The use of gadolinium orthovanadate nanoparticles for the correction of reproductive ability in boars under oxidative stress. Ukrainian Journal of Veterinary Sciences. 2021;12:74. DOI: https://doi.org/10.31548/ ujvs2021.02.008.
  21. Han B, Han X, Ren M, You Y, Zhan J, Huang W. Antimicrobial Effects of Novel H2O2-Ag+ Complex on Membrane Damage to Staphylococcus aureus, Escherichia coli O157:H7, and Salmonella Typhimurium. Journal of Food Protection. 2022;85:104-111. DOI: https://doi.org/10.4315/JFP-21-087.
  22. Maksimchuk P, Yefmova S, Hubenko KO, Omielaieva VV. Dark reactive oxygen species generation in ReVO4:Eu3+ (Re=Gd,Y) nanoparticles in aqueous solutions. J. Phys. Chem. C. 2020;124:3843-3850. DOI: https://doi. org/10.1021/acs.jpcc.9b10143.
  23. Baek H, Kang S, Heo J, Choi S, Kim R, Kim K, et al. Insights into structural defect formation in individual InP/ZnSe/ZnS quantum dots under UV oxidation. Nat Commun. 2024;15:1671. DOI: https://doi.org/10.1038/s414 67-024-45944-2.
  24. Jubeer EM, Manthrammel MA, Subha PA, Subha PA, Shkir M, Biju KP, et al. Defect engineering for enhanced optical and photocatalytic properties of ZnS nanoparticles synthesized by hydrothermal method. Sci Rep. 2023;13:16820. DOI: https://doi.org/10.1038/s41598-023- 43735-1.
  25. Maksimchuk PO, Hubenko KO, Grygorova G, Klochkov VK. Impact of Eu3+ ions on pro-oxidant activity of ReVO4:Eu3+ nanocrystals. J Phys Chems C. 2021;125:1564-1569. DOI: https://doi.org/10.1021/acs.jpcc.0c 10028.

Publication of the article:

«Bulletin of problems biology and medicine», 2024 Issue 3, 174, 341-350 pages, index UDC 577.336:57.084:546.662-022.532

DOI:

10.29254/2077-4214-2024-3-174-341-350

Was this article helpful?

Leave a Reply

Your email address will not be published. Required fields are marked *


The reCAPTCHA verification period has expired. Please reload the page.