Evaluation of the potentiating effect of polystyrene microparticles on the toxicity of acrylamide and ethanol under conditions of combined treatment of mouse hepatocyte cell culture MH-22a

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Тек жазылушылар үшін

Аннотация

Introduction. Microparticles of polymer compounds are common in the environment. polystyrene particles are the most common types of microplastics. The most interesting subject of the study is the assessment of the potentiating properties of microplastics on the manifestations of toxicity of common substances entering the body by alimentary means, primarily such as acrylamide and ethanol.

Materials and methods. The experimental work was performed on a cell culture of mouse MH-22a hepatocytes in compliance with the principles of working with mammalian cell cultures. An MTT test was used to study cell viability by respiratory activity. The statistical analysis was performed in the SPSS Statistics 21 software.

Results. The article presents the results of an experimental study of the respiratory activity of cells under combined treatment with 300 nm polystyrene microparticles at a concentration of 0.025% with acrylamide and ethanol. Preliminary experimental data is presented to substantiate the selected concentration of the microplastic under study, demonstrating its low acute cytotoxicity. The calculated IC50 values for cell survival for acrylamide and ethanol under single exposure and combined exposure with polystyrene microparticles for 24 hours had insignificant differences.

Limitations. The study was performed on a cell culture of mouse MH-22a hepatocytes (monolayer) cultured in accordance with the requirements of the culture passport and treated with 300 nm polystyrene microparticles and their mixtures with acrylamide and ethanol only for 24 hours in microplate format.

Conclusion. A comparative analysis of survival values when exposed to toxic substances without addition and in the presence of microplastics revealed no significant differences between cell groups, which at the moment did not allow detecting the potentiating effect of polystyrene microparticles with a size of 300 nm on the toxicity of acrylamide and ethanol under 24-hour combined treatment.

Compliance with ethical standards. The study was carried out in accordance with the European Convention for the Protection of Vertebrate Animals used for Experimental and Other Scientific Purposes (ETS No. 123), Directive 2010/63/EU of the European Parliament and of the Council of 22 September 2010 on the protection of animals used for scientific purposes and the requirements of the Bioethical Commission of the Ufa Research Institute of Occupational Health and Human Ecology” (protocol No. 01-02 of 08.02.2024).

Contribution:
Kudoyarov E.R. – writing text, collection and processing of material;
Karimov D.O. – concept and design of the study;
Gizatullina A.A. – collection and processing of material;
Karimov D.D. – editing;
Baygildin S.S. – collection and processing of material;
Yakupova T.G. – collection and processing of material.
All authors are responsible for the integrity of all parts of the manuscript and approval of the manuscript final version.

Conflict of interest. The authors declare no conflict of interest.

Acknowledgements. The study had no sponsorship.

Received: July 27, 2024 / Revised: May 25, 2024 / Accepted: June 19, 2024 / Published: July 31, 2024

Авторлар туралы

Eldar Kudoyarov

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Хат алмасуға жауапты Автор.
Email: e.kudoyarov@yandex.ru
ORCID iD: 0000-0002-2092-1021

Junior researcher, Dept. of toxicology and genetics with an experimental laboratory animal clinic of the Ufa Research Institute of Occupational Health and Human Ecology, Ufa, 450106, Russian Federation

e-mail: e.kudoyarov@yandex.ru

Ресей

Denis Karimov

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Email: noemail@neicon.ru
ORCID iD: 0000-0003-0039-6757

MD, PhD, head of the Dept. of toxicology and genetics with an experimental laboratory animal clinic Ufa Research Institute of Occupational Health and Human Ecology, Ufa, 450106, Russian Federation

Ресей

Alina Gizatullina

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Email: noemail@neicon.ru
ORCID iD: 0000-0002-7321-0864

Junior researcher, Dept. of toxicology and genetics with an experimental laboratory animal clinic of the Ufa Research Institute of Occupational Health and Human, Ufa, 450106, Russian Federation

Ресей

Denis Karimov

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Email: noemail@neicon.ru
ORCID iD: 0000-0002-1962-2323

MD, PhD, senior researcher, Dept. of toxicology and genetics with an experimental laboratory animal clinic of the Ufa Research Institute of Occupational Health and Human Ecology, Ufa, 450106, Russian Federation

Ресей

Samat Baygildin

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Email: noemail@neicon.ru
ORCID iD: 0000-0002-1856-3173

MD, PhD, researcher, Dept. of toxicology and genetics with an experimental laboratory animal clinic of the Ufa Research Institute of Occupational Health and Human Ecology, Ufa, 450106, Russian Federation

Ресей

Tatyana Yakupova

Ufa Research Institute of Occupational Health and Human Ecology of the Federal Service for Supervision in Protection of the Rights of Consumer and Man Wellbeing

Email: noemail@neicon.ru
ORCID iD: 0000-0002-1236-8246

Junior researcher, Dept. of toxicology and genetics with an experimental laboratory animal clinic of the Ufa Research Institute of Occupational Health and Human Ecology, Ufa, 450106, Russian Federation

Ресей

Әдебиет тізімі

  1. Unice K.M., Weeber M.P., Abramson M.M., Reid R.C.D., van Gils J.A.G., Markus A.A., et al. Characterizing export of land-based microplastics to the estuary – Part I: Application of integrated geospatial microplastic transport models to assess tire and road wear particles in the Seine watershed. Sci. Total. Environ. 2019; 646: 1639–49. https://doi.org/10.1016/j.scitotenv.2018.07.368
  2. Efimova I.V., Chubarenko I.P. Fragmentation of plastic garbage in the surf zone of the sea: a laboratory experiment on the example of expanded polystyrene. Izvestiya Saratovskogo universiteta. Novaya seriya. Seriya: Nauki o Zemle. 2018; 18(1): 10–3. https://doi.org/10.18500/1819-7663-2018-18-1-10-13 https://elibrary.ru/ypcdti (in Russian)
  3. Gorbunova Yu.A., Esyukova E.E. Emissions of macroalgae and seagrass in the Russian part of the south-east Baltic Sea coast. Izvestiya KGTU. 2020; (59): 24–34. https://doi.org/10.46845/1997-3071-2020-59-24-34 https://elibrary.ru/dumkmh (in Russian)
  4. Wright S.L., Kelly F.J. Plastic and human health: a micro issue? Environ. Sci. Technol. 2017; 51(12): 6634–47. https://doi.org/10.1021/acs.est.7b00423
  5. Senathirajah K., Attwood S., Bhagwat G., Carbery M., Wilson S., Palanisami T. Estimation of the mass of microplastics ingested – A pivotal first step towards human health risk assessment. J. Hazard. Mater. 2021; 404(Pt. B): 124004. https://doi.org/10.1016/j.jhazmat.2020.124004
  6. Cho Y., Shim W.J., Jang M., Han G.M., Hong S.H. Abundance and characteristics of microplastics in market bivalves from South Korea. Environ. Pollut. 2019; 245: 1107–16. https://doi.org/10.1016/j.envpol.2018.11.091
  7. Van Cauwenberghe L., Janssen C.R. Microplastics in bivalves cultured for human consumption. Environ. Pollut. 2014; 193: 65–70. https://doi.org/10.1016/j.envpol.2014.06.010
  8. Karami A., Golieskardi A., Keong Choo C., Larat V., Galloway T.S., Salamatinia B. The presence of microplastics in commercial salts from different countries. Sci. Rep. 2017; 7: 46173. https://doi.org/10.1038/srep46173
  9. Kosuth M., Mason S.A., Wattenberg E.V. Anthropogenic contamination of tap water, beer, and sea salt. PLoS One. 2018; 13(4): e0194970. https://doi.org/10.1371/journal.pone.0194970
  10. Yang D., Shi H., Li L., Li J., Jabeen K., Kolandhasamy P. Microplastic pollution in table salts from China. Environ. Sci. Technol. 2015; 49(22): 13622–7. https://doi.org/10.1021/acs.est.5b03163
  11. Mason S.A., Welch V.G., Neratko J. Synthetic polymer contamination in bottled water. Front. Chem. 2018; 6: 407. https://doi.org/10.3389/fchem.2018.00407
  12. Schymanski D., Goldbeck C., Humpf H.U., Fürst P. Analysis of microplastics in water by micro-Raman spectroscopy: Release of plastic particles from different packaging into mineral water. Water Res. 2018; 129: 154–62. https://doi.org/10.1016/j.watres.2017.11.011
  13. Dessì C., Okoffo E.D., O’Brien J.W., Gallen M., Samanipour S., Kaserzon S., et al. Plastics contamination of store-bought rice. J. Hazard. Mater. 2021; 416: 125778. https://doi.org/10.1016/j.jhazmat.2021.125778
  14. Oliveri Conti G., Ferrante M., Banni M., Favara C., Nicolosi I., Cristaldi A., et al. Micro- and nano-plastics in edible fruit and vegetables. The first diet risks assessment for the general population. Environ. Res. 2020; 187: 109677. https://doi.org/10.1016/j.envres.2020.109677
  15. Wagner M., Oehlmann J. Endocrine disruptors in bottled mineral water: total estrogenic burden and migration from plastic bottles. Environ. Sci. Pollut. Res. Int. 2009; 16(3): 278–86. https://doi.org/10.1007/s11356-009-0107-7
  16. Alekseeva A.V., Savostikova O.N. Methodical approaches to raising the reliability of health risk assessment when using polymer materials in drinking water supply. Analiz riska zdorov’yu. 2022; (2): 38–47. https://doi.org/10.21668/health.risk/2022.2.04.eng https://elibrary.ru/gzpcbi
  17. Gmoshinskii I.V., Shipelin V.A., Khotimchenko S.A. Microplastics in food: origin, properties and possible risks. Meditsina truda i ekologiya cheloveka. 2022; (2): 224–42. https://doi.org/10.24412/2411-3794-2022-10216 (in Russian)
  18. Lackmann C., Velki M., Šimić A., Müller A., Braun U., Ečimović S., et al. Two types of microplastics (polystyrene-HBCD and car tire abrasion) affect oxidative stress-related biomarkers in earthworm Eisenia andrei in a time-dependent manner. Environ. Int. 2022; 163: 107190. https://doi.org/10.1016/j.envint.2022.107190
  19. Hwang J., Choi D., Han S., Jung S.Y., Choi J., Hong J. Potential toxicity of polystyrene microplastic particles. Sci. Rep. 2020; 10(1): 7391. https://doi.org/10.1038/s41598-020-64464-9
  20. Fleury J.B., Baulin V.A. Microplastics destabilize lipid membranes by mechanical stretching. Proc. Natl. Acad. Sci. USA. 2021; 118(31): e2104610118. https://doi.org/10.1073/pnas.2104610118
  21. Shin H., Kwak M., Lee TG., Lee J.Y. Quantifying the level of nanoparticle uptake in mammalian cells using flow cytometry. Nanoscale. 2020; 12(29): 15743–51. https://doi.org/10.1039/d0nr01627f
  22. Aderem A., Underhill D.M. Mechanisms of phagocytosis in macrophages. Annu. Rev. Immunol. 1999; 17: 593–623. https://doi.org/10.1146/annurev.immunol.17.1.593
  23. Tabata Y., Ikada Y. Phagocytosis of polymer microspheres by macrophages. In: New Polymer Materials. Advances in Polymer Science – Issue 94. Berlin, Heidelberg; 1990: 107–41. https://doi.org/10.1007/BFb0043062
  24. Gel’shtein V.I. Progression of transplanted mouse hepatitis. Tsitologiya. 1971; (23): 3–14. (in Russian)
  25. Aleksanyan Yu.T., Basmadzhyan M.E., Movsenyan K.S., Manukhyan L.A., Gevorkyan S.K. A line of transferable cells obtained from a transferable mouse hepatoma. Byulleten’ eksperimental’noi biologii i meditsiny. 1972; (5): 94–5. (in Russian)
  26. Mamaeva S.E. Atlas of Chromosomes of Permanent Human Cell Lines [Atlas khromosom postoyannykh kletochnykh linii cheloveka]. Moscow: Nauchnyi mir; 2002. (in Russian)
  27. Azawi S., Piaszinski K., Balachandran M., Liehr T., Rincic M. Molecular cytogenomic characterization of two murine liver cancer cell lines: MH-22A and Hepa 1-6. J. Genet. Genomes. 2021; 5(1): 1–6. https://doi.org/10.37421/2684-4567.2021.5.121

Қосымша файлдар

Қосымша файлдар
Әрекет
1. JATS XML

© Kudoyarov E.R., Karimov D.O., Gizatullina A.A., Karimov D.D., Baygildin S.S., Yakupova T.G., 2024



СМИ зарегистрировано Федеральной службой по надзору в сфере связи, информационных технологий и массовых коммуникаций (Роскомнадзор).
Регистрационный номер и дата принятия решения о регистрации СМИ: серия ПИ № ФС 77 - 37884 от 02.10.2009.