Preview

Proceedings of the National Academy of Sciences of Belarus, Biological Series

Advanced search

Tissue dermal equivalent – а cellular product based on human dermal keratinocytes and fibroblasts: the properties of equivalent components and perspectives of practical application

https://doi.org/10.29235/1029-8940-2021-66-4-391-401

Abstract

The nature and ways of isolation and cultivation in vitro of keratinocytes and fibroblasts, the main cellular components of skin to prepare a new biomedical product, tissue dermal equivalent were considered. The main attention was payed to optimization of upbuilding dermal cell biomass including selection of medium compositions and conditions of cultivation. The information was given on main parameters of cell cultures as proliferation activity, viability and phenotype of the cells. Genotoxicity of fibroblasts and biocompatibility of the cells with organic matrixes to find the optimal carrier for cellular elements of tissue dermal equivalent were studied. The composition, the process of preparation of tissue dermal equivalent and perspectives of its practical application were discussed.

About the Authors

A. V. Butenka
Institute of Biophysics and Cell Engineering of the National Academy of Sciences of Belarus
Belarus

Anna V. Butenka – Junior Researcher

27, Akademicheskaya Str., 220072, Minsk



Z. B. Kvacheva
Institute of Biophysics and Cell Engineering of the National Academy of Sciences of Belarus
Belarus

Zinaida B. Kvacheva – Ph. D. (Biol.), Leading Researcher

27, Akademicheskaya Str., 220072, Minsk



I. B. Vasilevich
Institute of Biophysics and Cell Engineering of the National Academy of Sciences of Belarus
Belarus

Irina B. Vasilevich – Researcher

27, Akademicheskaya Str., 220072, Minsk



A. Ch. Chasnoit
Belarusian Medical Academy of Postgraduate Education
Belarus

Alexej Ch. Chasnoit – Ph. D. (Med.), Associate Professor

3/3, P. Browka Str., 220013, Minsk



I. D. Volotovski
Institute of Biophysics and Cell Engineering of the National Academy of Sciences of Belarus
Belarus

Igor D. Volotovski – Academician, D. S c. ( Biol.), Professor, Chief Researcher

27, Akademicheskaya Str., 220072, Minsk



References

1. Aleinik D. Ya., Zorin V. L., Eremin I. I., Korsakov I. N., Charykova I. N. The use of cellular technologies for the restoration of skin cells in burn injury. Sovremennye problemy nauki i obrazovaniya [Modern problems of science and education], 2015, no. 4, art. 331 (in Russian).

2. Volkov А. V. A brief overview of commercially available cellular products for skin restoration. Kletochnaya transplantologiya i tkanevaya inzheneriya [Cell transplantology and tissue engineering], 2006, vol. 1, no. 4, pp. 62–65 (in Russian).

3. Pinaev G. P., Bogdanova M. S., Kol’tsova А. М. (eds.). Cellular technologies for regenerative medicine. St. Petersburg, Publishing house of the Polytechnic University, 2011. 332 p. (in Russian).

4. Malakhov S., Paramonov B., Emel’yanov A., Vasil’ev A., Terskikh V. New approaches to the treatment of severe burns: transplantation of cultured keratinocytes. Voenno-meditsinskii zhurnal [Military medical journal], 1997, vol. 318, no. 9, pp. 16–19 (in Russian).

5. Tumanov V. P., Zhakota D. A., Korchagina N. S. 30 years of experience in the development and application of cell technologies in clinical practice. Plasticheskaya khirurgiya i kosmetologiya [Plastic surgery and cosmetology], 2012, no. 3, pp. 433–449 (in Russian).

6. Terskikh V. V., Vasil’ev А. V. Epidermal keratinocytes of humans and animals. Problems of cultivation and transplantation. Moscow, Nauka Publ., 1995. 102 p. (in Russian).

7. Rheinwatd J. G., Green H. Serial cultivation of stains of human epidermal keratinocytes: the formation of keratinizing colonies from single cells. Cells, 1975, vol. 6, no. 3, pp. 331–343. https://doi.org/10.1016/s0092-8674(75)80001-8

8. Volotovskii I. D., Kvacheva Z. B. Morphofunctional bases for creating artificial skin (dermal equivalents). Vestsi Natsyyanal’nai akademii navuk Belarusi. Seryya biyalagichnykh navuk = Proceedings of the National Academy of Sciences of Belarus. Biological series, 2017, no. 3, pp. 96–103 (in Russian).

9. Cen L., Liu W., Cui L., Zhang W., Cao Y. Collagen tissue engineering: development of novel biomaterials and applications. Pediatric Research, 2008, vol. 63, no. 5, pp. 492–496. https://doi.org/10.1203/pdr.0b013e31816c5bc3

10. Gallo R. L. Human skin is the largest epithelial surface for interaction with microbes. Journal of Investigative Dermatology, 2017, vol. 137, no. 6, pp. 1213–1214. https://doi.org/10.1016/j.jid.2016.11.045

11. Dai T., Tanaka M., Huang Y. Y., Hamblin M. R. Chitosan preparations for wounds and burns: antimicrobial and wound-healing effects. Expert Review of Anti-infective Therapy, 2011, vol. 9, no. 7, pp. 857–879. https://doi.org/10.1586/eri.11.59

12. Croisier F., Jérôme C. Chitosan-based biomaterials for tissue engineering. European Polymer Journal, 2013, vol. 49, no. 4, pp. 780–792. https://doi.org/10.1016/j.eurpolymj.2012.12.009

13. Dong C., Lv Y. Application of collagen scaffold in tissue engineering: recent advances and new perspectives. Polymers, 2016, vol. 8, no. 2, art. 42. https://doi.org/10.3390/polym8020042

14. Dumville J. C., O’Meara S., Deshpande S., Speak K. Alginate dressings for healing diabetic foot ulcers. Cochrane Database of Systematic Reviews, 2012. https://doi.org/10.1002/14651858.cd009110.pub2

15. He X., Zhai Z., Wang Y., Wu G., Zheng Z., Wang Q., Liu Y. New method for coupling collagen on biodegradable polyurethane for biomedical application. Journal of Applied Polymer Science, 2012, vol. 126, no. S1, pp. E354–E361. https://doi.org/10.1002/app.36742

16. Mel’tsova A. Zh., Gritsenko V. V., Orlovskii P. I., Tomson V. V., Sabel’nikov V. V., Shulepova E. K., Prokopets A. I., Pinaev G. P., Blinova M. I., Yudintseva N. M. The use of dermal fibroblasts in the complex treatment of patients with trophic ulcers of venous etiology. Vestnik khirurgii imeni I. I. Grekova [Bulletin of surgery named after I. I. Grekov], 2007, vol. 166, no. 1, pp. 72–77 (in Russian).

17. Butenkа A. V., Kvacheva Z. B., Gurmanchuk E. I., Petrakova O. V., Mezen N. I., Goncharov A. E., Kabanova Yu. A., Romanyuk E. N. Proliferative potential, morphological and phenotypic characteristics of epidermal keratinocytes cultured in subpassages. Novosti mediko-biologicheskikh nauk [News of biomedical sciences], 2010, vol. 2, no. 3, pp. 91–96 (in Russian).

18. Bozo I. Ya., Deev R. V., Pinaev G. P. Is “fibroblast” a specialized cell or a functional condition of mesenchymal cells derivatives? Tsitologiya [Cytology], 2010, vol. 2, no. 52, pp. 99–109 (in Russian).

19. Zorin V. L., Zorina A. I., Petrakova O. S., Cherkasov V. R. Dermal fibroblasts for the treatment of skin defects. Kletochnaya transplantologiya i tkanevaya inzheneriya [Cell transplantology and tissue engineering], 2009, vol. 4, no. 4, pp. 26–40 (in Russian).

20. Russo B., Brembilla N. C., Chizzolini C. Interplay between keratinocytes and fibroblasts: a systematic review providing a new angle for understanding skin fibrotic disorders. Frontiers in Immunology, 2020, vol. 11, art. 648. https://doi.org/10.3389/fimmu.2020.00648

21. Papini S., Cecchetti D., Campani D., Fitzgerald W., Grivel J. Ch., Chen S., Margolis L., Revoltella R. P. Isolation and clonal analysis of epidermal keratinocyte stem cells in long-term culture. Stem Cells, 2003, vol. 21, no. 4, pp. 481–494. https://doi.org/10.1634/stemcells.21-4-481

22. Methodical recommendations МР 4.2.0014‒10.4.2. Control methods. Biological factors. Evaluation of genotoxic properties by the in vitro DNA comet method. 2010. 15 p. (in Russian).


Review

Views: 819


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


ISSN 1029-8940 (Print)
ISSN 2524-230X (Online)