Preview

Proceedings of the Kabardino-Balkarian State University

Advanced search

THE DEVELOPMENT AND INVESTIGATION OF TAXIFOLIN-CONTAINING COLLAGEN-ACRYLIC HYDROGELS

Abstract

The variety of skin diseases determines the importance of numerous works on the creation of new materials, including wound coatings. Significant success has been achieved with hydrogel dressings containing biologically active molecules intended for wounds of varying severity. The aim of this work was to obtain free-radical polymerization of taxifolin-containing hydrogels based on acrylic and collagen as the basis for a wound dressing. The influence of synthesis parameters on the gelation time, sorption kinetics based on a pseudo-second order model and a mathematical model, as well as the drug release of the obtained samples based on the Korsmeyer – Peppas, Higuchi, Bake – Lonsdale and Hixon – Crowell models, respectively. The experimental data about taxifolin release in phosphate buffer solution were obtained.

About the Authors

Olga Vladimirovna Luneva
Chemistry Engineering Center, ITMO University
Russian Federation


К. Bykova
Chemistry Engineering Center, ITMO University
Russian Federation


Alexander Ilyich Kashurin
Chemistry Engineering Center, ITMO University
Russian Federation


Svetlana Nikolaevna Morozkina
Chemistry Engineering Center, ITMO University
Russian Federation


Maya Valeryevna Uspenskaya
Chemistry Engineering Center, ITMO University
Russian Federation


References

1. Grice E.A., Segre J.A. The Skin Microbiome // Nature Reviews Microbiology. 2011. V. 9. P. 244–253.

2. Rao M.T., Chvs, P., Yamini M.; Prasad C.H. Hydrogels the three dimensional networks: A review // International Journal of Current Pharmaceutical Research. 2021. P. 12–17.

3. Nagam S., Jyothi A., Poojitha J., Aruna S., Nadendla R.R. A Comprehensive Review on Hydrogels // International Journal of Current Pharmaceutical Research. 2016. V. 8. P. 19–23.

4. Koehler J., Brandl F.P., Goepferich A.M. Hydrogel Wound Dressings for Bioactive Treatment of Acute and Chronic Wounds // European polymer journal. 2018. V. 100. P. 1–11.

5. Tavakoli S., Klar A.S. Advanced Hydrogels as Wound Dressings // Biomolecules. 2020. V. 10. P. 1169.

6. Op’t Veld R.C., Walboomers X.F., Jansen J.A., Wagener F.A.D.T.G. Design Considerations for Hydrogel Wound Dressings: Strategic and Molecular Advances // Tissue engineering. Part B, Reviews. 2020. V. 26. P. 230–248.

7. Murphy P.S., Evans G.R.D. Advances in Wound Healing: A Review of Current Wound Healing Products // Plastic surgery international. 2012. V. 2012. P. 1–8.

8. Yang K., Han Q., Chen B., Zheng Y., Zhang K., Li Q., Wang J. Antimicrobial Hydrogels: Promising Materials for Medical Application // International journal of nanomedicine. 2018. V. 13. P. 2217–2263.

9. Wang C., Varshney R.R., Wang D.-A. Therapeutic Cell Delivery and Fate Control in Hydrogels and Hydrogel Hybrids // Advanced drug delivery reviews. 2010. V. 62. P. 699–710.

10. Kashyap N., Kumar N., Kumar M.N.V.R. Hydrogels for Pharmaceutical and Biomedical Applications // Critical Reviews in Therapeutic Drug Carrier Systems. 2005. P. 22.

11. Li J., Wang Y., Yang J., Liu W. Bacteria Activated-Macrophage Membrane-Coated Tough Nanocomposite Hydrogel with Targeted Photothermal Antibacterial Ability for Infected Wound Healing // Journal of chemical engineering. 2021. V. 420. P. 127638.

12. Singh A.V., Aditi A.S, Gade W.N., Vats, T., Lenardi, C., Milani P., Aditi A.S. Nanomaterials: New Generation Therapeutics in Wound Healing and Tissue Repair // Current Nanoscience. 2010. V. 6. P. 577–586.

13. Morris M.E., Zhang S. Flavonoid–Drug Interactions: Effects of Flavonoids on ABC Transporters // Life sciences. 2006. V. 78. P. 2116–2130.

14. Das A., Baidya R., Chakraborty T., Samanta A.K., Roy S. Pharmacological Basis and New Insights of Taxifolin: A Comprehensive Review // Biomedicine & Pharmacotherapy. 2021. V. 142. P. 112004.

15. Lee C.W., Park N.H., Kim J.W., Um B.H., Shpatov A.V., Shults E.E., Sorokina I.V., Popov S.A. Study of Skin Anti-Ageing and Anti-Inflammatory Effects of Dihydroquercetin, Natural Triterpenoinds, and Their Synthetic Derivatives // Russian Journal of Bioorganic Chemistry. 2012. V. 38. P. 328–334.

16. Zhou W., Liu Z., Wang M., Chen D., Zhou L., Guo L. Taxifolin Inhibits the Development of Scar Cell Carcinoma by Inducing Apoptosis, Cell Cycle Arrest, and Suppression of PI3K/ AKT/MTOR Pathway // Journal of the Balkan Union of Oncology. 2019. V. 24, N 2. P. 853–858.

17. Di T., Zhai C., Zhao J., Wang Y., Chen Z., Li P. Taxifolin Inhibits Keratinocyte Proliferation and Ameliorates Imiquimod-Induced Psoriasis-like Mouse Model via Regulating Cytoplasmic Phospholipase A2 and PPAR-γ Pathway // International immunopharmacology. 2021. V. 99. P. 107900.

18. Meyer M. Processing of Collagen Based Biomaterials and the Resulting Materials Properties // Biomedical engineering online. 2019. V. 18. P. 24.

19. Pourjavadi A., Kurdtabar M. Collagen-Based Highly Porous Hydrogel without Any Porogen: Synthesis and Characteristics // European polymer journal. 2007. V. 43. P. 877–889.

20. Uspenskaya M.V., Ignatyeva Ju.A., Kasanov K.N., Olekhnovich R.O., Strelnikova I.E. Wound Dressing on the Base of Polymer Nanocomposites // In: Proceedings of the 2014 IEEE Conference on Biomedical Engineering and Sciences (IECBES). Kuala Lumpur: IEEE, 2014. Р. 369–372.

21. Gierszewska-Drużyńska M., Ostrowska-Czubenko J. Mechanism of Water Diffusion into Noncrosslinked and Ionically Crosslinked Chitosan Membranes // Progress on Chemistry and Application of Chitin and its Derivatives. 2012. P. 63–70.

22. Fariba, G.; Farahani V.S., Farahani V.E., Theoretical Description Of Hydrogel Swelling: A Review // Iranian polymer journal. 2010. V. 19. P. 375–398.

23. Oustadi F., Haghbin Nazarpak M., Mansouri M., Ketabat F. Preparation, Characterization, and Drug Release Study of Ibuprofen-Loaded Poly(Vinyl Alcohol)/Poly(Vinyl Pyrrolidone) Bilayer Antibacterial Membrane // International Journal of Polymeric Materials and Polymeric Biomaterials. 2022. V. 71. P. 14–23.

24. Kiti K., Suwantong O. Bilayer Wound Dressing Based on Sodium Alginate Incorporated with Curcumin-β-Cyclodextrin Inclusion Complex/Chitosan Hydrogel // International Journal of Biological Macromolecules. 2020. V. 164. P. 4113–4124.

25. Tamahkar E., Özkahraman B., Süloğlu A.K., İdil N., Perçin I. A Novel Multilayer Hydrogel Wound Dressing for Antibiotic Release // Journal of Drug Delivery Science and Technology. 2020. V. 58. P. 101536.

26. Siepmann J., Siepmann F. Mathematical Modeling of Drug Delivery // International journal of pharmaceutics. 2008. V. 364. P. 328–343.

27. Ilgin P., Ozay H., Ozay, O. A New Dual Stimuli Responsive Hydrogel: Modeling Approaches for the Prediction of Drug Loading and Release Profile // European polymer journal. 2019. V. 113. P. 244–253.

28. Peppas N.A., Narasimhan B. Mathematical Models in Drug Delivery: How Modeling Has Shaped the Way We Design New Drug Delivery Systems // Journal of Controlled Release. 2014. V. 190. P. 75–81.

29. Wu I.Y., Bala S., Škalko-Basnet N., di Cagno M.P. Interpreting Non-Linear Drug Diffusion Data: Utilizing Korsmeyer-Peppas Model to Study Drug Release from Liposomes // European Journal of Pharmaceutical Sciences. 2019. V. 138. P. 105026.

30. Ramteke K.H., Dighe P.A.; Kharat A.R., Patil S.V.. Mathematical Models of Drug Dissolution : A Review // Scholars Academic Journal of Pharmacy. 2014. V. 3, N 5. P. 388–396.

31. Dash S., Murthy P.N., Nath L., Chowdhury P. Kinetic modeling on drug release from controlled drug delivery systems // Acta poloniae pharmaceutica. 2010. V. 6, N 3. P. 217–223.

32. Sajadi-Javan Z.S., Varshosaz J., Mirian M., Manshaei M., Aminzadeh A. Thermo-Responsive Hydrogels Based on Methylcellulose/Persian Gum Loaded with Taxifolin Enhance Bone Regeneration: An in Vitro/in Vivo Study // Cellulose. 2022. V. 29. P. 2413–2433.

33. Hasibi F., Nasirpour A., Varshosaz J., García-Manrique P., Blanco-López M.C., Gutiérrez G., Matos M. Formulation and Characterization of Taxifolin-Loaded Lipid Nanovesicles (Liposomes, Niosomes, and Transfersomes) for Beverage Fortification // European Journal of Lipid Science and Technology. 2020. V. 122. P. 1900105.

34. Zu S., Yang L., Huang J., Ma C., Wang W., Zhao C.; Zu Y. Micronization of Taxifolin by Supercritical Antisolvent Process and Evaluation of Radical Scavenging Activity // International Journal of Molecular Sciences. 2012. V. 13. P. 8869–8881.

35. Riaz T., Zeeshan R., Zarif F., Ilyas K., Muhammad N., Safi S.Z., Rahim A., Rizvi S.A.A., Rehman I.U. FTIR Analysis of Natural and Synthetic Collagen // Applied spectroscopy reviews. 2018. V. 53. P. 703–746.

36. Marandi G.B., Hariri S., Mahdavinia G.R. Effect of Hydrophobic Monomer on the Synthesis and Swelling Behaviour of a Collagen-Graft-Poly[(Acrylic Acid)-Co-(Sodium Acrylate)] Hydrogel // Polymer international. 2009. V. 58. P. 227–235.


Review

For citations:


Luneva O.V., Bykova К., Kashurin A.I., Morozkina S.N., Uspenskaya M.V. THE DEVELOPMENT AND INVESTIGATION OF TAXIFOLIN-CONTAINING COLLAGEN-ACRYLIC HYDROGELS. Proceedings of the Kabardino-Balkarian State University. 2022;12(4):97-105. (In Russ.)

Views: 44

JATS XML


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2221-7789 (Print)