ANTIBIOFILM EFFECT OF COLLAGEN-BASED MATERIAL DEVELOPED FOR WOUND DRESSING

Maslak V. I., Kalinichenko O. O., Okhmat O. A., Kotlyar М. М., Iungin O. S.

ANTIBIOFILM EFFECT OF COLLAGEN-BASED MATERIAL DEVELOPED FOR WOUND DRESSING


Show/Download

About the author:

Maslak V. I., Kalinichenko O. O., Okhmat O. A., Kotlyar М. М., Iungin O. S.

Heading:

CLINICAL AND EXPERIMENTAL MEDICINE

Type of article:

Scientific article

Annotation:

The ongoing war in Ukraine and the urgent need to equip military personnel with advanced medical supplies has spurred the exploration of innovative next-generation materials for treating wounds. These materials must possess potent antibacterial properties and are likely to be built upon a biopolymeric base. The surplus collagen-rich waste generated by the leather industry offers an opportunity for collagen extraction and repurposing. Collagen, a biopolymer with widespread applications in cosmetics and medicine, plays a crucial role in wound healing products. It acts not only as a protective barrier against external contaminants but also stimulates fibroblast production and acts as a carrier for antimicrobial agents. The aim of our study was to test antimicrobial effectiveness against opportunistic bacteria of collagen-based material obtained from leather industry waste developed for wound dressing. We adapted a sterilization procedure based on a chloroform protocol. Utilizing chloroform sterilization for collagen preparation demonstrated successful reduction in cell attachment for the studied bacterial strains, suggesting a potential anti-fouling approach for preparing wound dressing materials. This innovative collagen-based wound dressing, boasting antimicrobial and antibiofilm properties, holds promise for future clinical studies and potential utilization in wound treatment.

Tags:

antimicrobials, biofilms, collagen dressing, wounds

Bibliography:

  1. Elango J, Hou C, Bao B, Wang S, Maté Sánchez de Val JE, Wenhui W. The Molecular Interaction of Collagen with Cell Receptors for Biological Function. Polymers. 2022;14(5):876.
  2. Zhang J, Elango J, Wang S, Hou C, Miao M, Li J, et al. Characterization of Immunogenicity Associated with the Biocompatibility of Type I Collagen from Tilapia Fish Skin. Polymers. 2022;14(11):2300.
  3.  de Melo Oliveira V, Assis CRD, Costa BDAM, de Araújo Neri RC, Monte FTD, da Costa Vasconcelos HMS, et al. Physical, biochemical, densitometric and spectroscopic techniques for characterization collagen from alternative sources: A review based on the sustainable valorization of aquatic by-products. Journal of Molecular Structure. 2021;1224:129023.
  4. Harsha L, Brundha MP. Role of collagen in wound healing. Drug Invention Today. 2020;13(1):55-57.
  5. Bustamante-Torres M, Arcentales-Vera B, Estrella-Nuñez J, Yánez-Vega H, Bucio E. Antimicrobial activity of composites-based on biopolymers. Macromol. 2022;2(3):258-283.
  6. Wu H, Moser C, Wang HZ, Høiby N, Song ZJ. Strategies for combating bacterial biofilm infections. International journal of oral science. 2015;7(1):1-7.
  7. Römling U, Balsalobre C. Biofilm infections, their resilience to therapy and innovative treatment strategies. Journal of internal medicine. 2012;272(6):541-561.
  8. Schwarzer S, James GA, Goeres D, Bjarnsholt T, Vickery K, Percival SL, et al. The efficacy of topical agents used in wounds for managing chronic biofilm infections: A systematic review. Journal of Infection. 2020;80(3):261-270.
  9. Maistrenko L, Iungin O, Pikus P, Pokholenko I, Gorbatiuk O, Moshynets O, et al. Collagen Obtained from Leather Production Waste Provides Suitable Gels for Biomedical Applications. Polymers. 2022;14(21):4749.
  10. Kemp PD. Tissue engineering and cell-populated collagen matrices. Extracellular Matrix Protocols. 2000;287-293.
  11. Moshynets OV, Baranovskyi TP, Iungin OS, Kysil NP, Metelytsia LO, Pokholenko I, et al. eDNA inactivation and biofilm inhibition by the PolymericBiocide polyhexamethylene guanidine hydrochloride (PHMG-Cl). International journal of molecular sciences. 2022;23(2):731.
  12. Lastovetska L, Maslak V, Iungin O. Combined antibiotic therapy carried in collagen matrix for opportunistic pathogens treatment. Abstracts of 65th International Conference for students of Physics and Natural Sciences open Readings; 2022 March 15-18; Vilnius, Lithuania; 2022. p. 345.
  13. Xu C, Akakuru OU, Ma X, Zheng J, Wu A. Nanoparticle-based wound dressing: recent progress in the detection and therapy of bacterial infections. Bioconjugate Chemistry. 2020;31(7):1708-1723.
  14. Simpson FC, Islam MM, Buznyk O, Edin E, Groleau M, Kozak-Ljunggren M, et al. Electron-Beam Irradiated Recombinant Human CollagenPhosphorylcholine Corneal Implants Retain Pro-Regeneration Capacity. Frontiers in Bioengineering and Biotechnology. 2022;10:883977.
  15. Grandis RAD, Miotto LN, Genaro LE, Migliatti Polli L, Plepis AMDG, Rodrigues FT, et al. In Vitro evaluation of acellular collagen matrices derived from porcine pericardium: Influence of the sterilization method on its biological properties. Materials. 2021;14(21):6255.
  16. Ionescu OLF, Mocanu AG, Neacşu IA, Ciocîlteu MV, Rău G, Neamţu J. Biocompatibility Studies on a Collagen-Hydroxyapatite Biomaterial. Current Health Sciences Journal. 2022;48(2):217.
  17. Ryan EJ, Ryan AJ, González-Vázquez A, Philippart A, Ciraldo FE, Hobbs C, et al. Collagen scaffolds functionalised with copper-eluting bioactive glass reduce infection and enhance osteogenesis and angiogenesis both in vitro and in vivo. Biomaterials. 2019;197:405-416.

Publication of the article:

«Bulletin of problems biology and medicine», 2023 Issue 3, 170, 226-229 pages, index UDC 571.69+675, 616-001.4/.6

DOI:

10.29254/2077-4214-2023-3-170-226-229

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.