RAS Chemistry & Material ScienceЖурнал физической химии Russian Journal of Physical Chemistry

  • ISSN (Print) 0044-4537
  • ISSN (Online) 3034-5537

Alginate–Chitosan Polyelectrolyte Complexes As Carriers for Fluorinated Tetraphenylporphyrin in Photosensitizing Systems of Singlet Oxygen Generation

PII
10.31857/S0044453723120178-1
DOI
10.31857/S0044453723120178
Publication type
Status
Published
Authors
Volume/ Edition
Volume 97 / Issue number 12
Pages
1748-1756
Abstract
Water-insoluble photosensitizing (PS) systems active in the generation of singlet 1O2 oxygen are obtained by immobilizing fluorinated tetraphenylporphyrin (FTPP) from a solution in acetone on films of polyelectrolyte complexes based on sodium alginate (SA) and chitosan (CT), and on solid water-insoluble gels of alginate and chitosan. The obtained polymer PS systems are used to establish the intensity of the photoluminescence of singlet oxygen in D2O and the activity of the photocatalytic oxidation of tryptophan in water. It is shown that the photocatalytic activity in the tryptophan oxidation of fluorinated tetraphenylporphyrin immobilized on a SA–CT polyelectrolyte complex and alginate solid gel is higher than that of FTPP immobilized on chitosan solid gel. Spectral-luminescent properties of polysaccharide–FTPP systems and the surface structure of carriers are studied via atomic force microscopy to determine the mechanism of the increase in porphyrin activity when it is fixed on alginate-containing carriers. It is suggested that aspects of the supramolecular structure of solid gels are responsible for the increase in the photocatalytic activity of FTPP upon immobilization on alginate-containing polysaccharide systems.
Keywords
хитозан альгинат натрия полиэлектролитный комплекс фторированные порфириновые фотосенсибилизаторы иммобилизация
Date of publication
12.09.2025
Year of publication
2025
Number of purchasers
0
Views
9

References

  1. 1. Deda D.K., Iglesias B.A., Alves E. et al. // Molecules 2020. V. 25. 2080. https://doi.org/10.3390/molecules25092080
  2. 2. Solov’eva A.B., Aksenova N.A., Glagolev N.N. et al. // Russ. J. Phys. Chem. B. 2012. V. 6. P. 433. https://doi.org/10.1134/S1990793112060061
  3. 3. Hampton S. // The Diabetic Foot. 2004. V. 7. P. 162.
  4. 4. Salehi M., Ehterami A., Farzamfar S. et al. // Drug Deliv. and Transl. Res. 2021. V. 11. P. 142. https://doi.org/10.1007/s13346-020-00731-6
  5. 5. Белозерская Г.Г, Кабак В.А., Макаров В.А. Патент РФ № 2660582, 2018.
  6. 6. Castro K.A.D.F., Moura N.M.M., Figueira F. et al. // Int. J. Mol. Sci. 2019. V. 20. P. 2522. https://doi.org/10.3390/ijms20102522
  7. 7. Solovieva A.B., Rudenko T.G., Glagolev N.N. et al. // J. Photochem. Photobiol. B. 2020. V. 210. P. 111954. https://doi.org/10.1016/j.jphotobiol.2020.111954
  8. 8. Sharma M., Dube A., Majumder S.K. // Lasers Med. Sci. 2021. V. 36. P. 763. https://doi.org/10.1007/s10103-020-03083-2
  9. 9. Brovko O., Palamarchuk I., Gorshkova N. et al. // Izvestia Ufimskogo Nauchnogo Tsentra RAN. 2018. V. 2. P. 45. https://doi.org/10.31040/2222-8349-2018-2-3-45-49
  10. 10. Kulig D., Zimoch-Korzycka A., Król Z. et al. // Molecules. 2017. V. 22. P. 98. https://doi.org/10.3390/molecules22010098
  11. 11. Zare-Gachi M., Daemi H., Mohammadi J. et al. // Mater. Sci. Eng. C. 2020. V. 107. P. 110321. https://doi.org/10.1016/j.msec.2019.110321
  12. 12. Shershnev I.V., Glagolev N.N., Bragina N.A. et al. // Russ. J. Phys. Chem. B. 2014. V. 8. P. 1095. https://doi.org/10.1134/S1990793114080119
  13. 13. Kopylov A.S., Aksenova N.A., Savko M.A. et al. // Russ. J. Phys. Chem. A. 2022. V. 96. P. 444. https://doi.org/10.1134/S0036024422020133
  14. 14. Demina T.S., Kuryanova A.S., Aksenova N.A. et al. // RSC Adv. 2019. V. 64. P. 37652. https://doi.org/10.1039/C9RA07667K
  15. 15. Cherkasova A.V., Aksenova N.A., Zarkhina T.S. // Russ. J. Phys. Chem. A. 2022. V. 96. P. 2563. https://doi.org/10.1134/S003602442211005X
  16. 16. Zarkhina T.S., Aksenova N.A. and Solov’eva A.B. // Ibid. 2017. V. 91. P. 998. https://doi.org/10.1134/S0036024417060322
  17. 17. Sadykova O.V., Krivandin A.V., Aksenova N.A. et al. // Polym. Sci. Ser. A. 2021. V. 63. P. 154. https://doi.org/10.1134/S0965545X21020103
  18. 18. Singlet Oxygen Applications in Biosciences and Nanosciences. V. 1 / Ed. by Nonell S. and Flors C. Cambridge, 2016. P. 23.
  19. 19. Brovko O.S., Palamarchuk I.A., Boitsova T.A. et al. // Macromol. Res. 2015. V. 23. P. 1059. https://doi.org/10.1007/s13233-015-3140-z
  20. 20. Hermanto D., Mudasir M., Siswanta D. et al. // J. Math. Fundam. Sci. 2019. V. 51. P. 309. https://doi.org/10.5614/j.math.fund.sci.2019.51.3.8
  21. 21. Ayarza J., Coello Y., Nakamatsu J. // Int. J. Polym. Anal. Charact. 2016. V. 22. P. 1. https://doi.org/10.1080/1023666X.2016.1219834
  22. 22. Montembault A., Viton C., Domard A. // Biomacromolecules. 2005. V. 6. P. 653. https://doi.org/10.1021/bm049593m
  23. 23. Klimenko I.V., Gradova M.A., Gradov O.V. et al. // Khimicheskaya Fizika. 2020. V. 39. P. 43. https://doi.org/10.31857/S0207401X20050076
  24. 24. Solovieva A.B., Belyaev V.E., Glagolev N.N. et al. // Russ. J. Phys. Chem. A. 2005. V. 79. P. 635.
  25. 25. Зенькевич Э.И. // Рос. хим. журн. (Журн. Рос. хим. об-ва им. Д.И. Менделеева). 2017. Т. 61. С. 110.
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