Single article

DOI: 10.47026/2413-4864-2023-1-93-100

Ryabkin D.I., Sokolov A.I., Dydykin S.S., Blinov D.S., Kurilova U.E., Blinova E.V., Timoshkin S.P., Gerasimenko A.Yu.

Biological Compatibility and Proliferative Potential of Fibroblasts Seeded on Biocomposite Formed Using Laser Radiation and Solders

Keywords: fibroblasts, proliferation, adhesion, rats, tissue engineering construct

The aim of the work was to determine the viability, proliferative potential and adhesive properties of fibroblasts seeded on the surface and in the volume of a biocomposite formed using laser radiation and solders in in vitro experiments. Materials and methods. For the study, Wistar rat fibroblasts obtained at the National Research Center of Epidemiology and Microbiology named after Honorary Academician N.F. Gamalei were used. The biocomposite was formed using laser radiation and solders. The viability of cells on the surface of the biocomposite was assessed using the multiparametric RTCA iCELLigence cell culture analysis system (USA). The cytotoxicity of the biocomposite was determined in combination with triphenyltetrazolium bromide (MTT test, Merck Sigma-Aldrich, Switzerland). The proliferative potential and adhesive properties of fibroblasts were studied using a FEI Helios NanoLab 650 scanning electron microscope. Results and conclusions. The viability of cells on the surface and in the volume of a biocomposite formed using laser radiation and solder was proved using an electrophysical system for analyzing cell cultures. The absence of cytotoxicity of the biocomposite under the action of triphenyltetrazolium bromide in the spectrophotometric MTT test was demonstrated. It was found that during incubation of rat fibroblasts in the volume of the biocomposite, cell death is not observed, but, on the contrary, their proliferative potential is stimulated by increasing adhesion, which contributes to the formation of a dense cell layer. Conclusions. Biocomposite as a whole, as well as its individual elements, creates a favorable environment for the growth of fibroblast culture and can be used to restore the integrity of blood vessels using laser radiation and solder.

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About authors

Ryabkin Dmitrii I.
Candidate of Physical and Mathematical Sciences, Assistant Professor, Institute of Bionic Technologies and Engineering, I.M. Sechenov First Moscow State Medical University (Sechenovskiy University), Russia, Moscow (ryabkin@bms.zone; ORCID: https://orcid.org/0000-0002-1327-5690)
Sokolov Aleksey I.
Post-Graduate Student of Faculty Surgery Department, National Research Ogarev Mordovia State University, Russia, Saransk (dr.alex.sokolov@gmail.com; ORCID: https://orcid.org/0000-0001-7515-2314)
Dydykin Sergey S.
Doctor of Medical Sciences, Professor, Head of the Operative Surgery and Topographic Anatomy Department, I.M. Sechenov First Moscow State Medical University (Sechenovskiy University), Russia, Moscow (dydykin_ss@mail.ru; ORCID: https://orcid.org/0000-0002-1273-0356)
Blinov Dmitry S.
Doctor of Medical Sciences, Associate Professor, Head of Molecular and Clinical Pharmacology Department, Dmitry Rogachev National Research Medical Center of Pediatric Hematology, Oncology and Immunology, Russia, Moscow (dmitriy.blinov@fccho-moscow.ru; ORCID: https://orcid.org/0000-0002-8385-4356)
Kurilova Ulyana E.
Junior Researcher, Center for Digital Bioxy and Personalized Health, I.M. Sechenov First Moscow State Medical University (Sechenovskiy University), Russia, Moscow (kurilova_10@mail.ru; )
Blinova Ekaterina V.
Doctor of Medical Sciences, Professor, Department of Clinical Pharmacology and Internal Diseases Propaedeutic, I.M. Sechenov First Moscow State Medical University (Sechenovskiy University), Russia, Moscow (bev-sechenov@mail.ru; ORCID: https://orcid.org/0000-0003-0050-0251)
Timoshkin Sergey P.
Candidate of Medical Sciences, Operative Surgery and Topographic Anatomy Department, I.M. Sechenov First Moscow State Medical University (Sechenovskiy University), Russia, Moscow (timoshkin-sergej@list.ru; ORCID: https://orcid.org/0000-0001-5518-6859)
Gerasimenko Aleksandr Yu.
Candidate of Physical and Mathematical Sciences, Associate Professor, Institute of Biomedical Systems, National Research University of Electronic Technology, Russia, Zelenograd (gerasimenko@bms.zone; ORCID: https://orcid.org/0000-0001-6514-2411)

Article link

Ryabkin D.I., Sokolov A.I., Dydykin S.S., Blinov D.S., Kurilova U.E., Blinova E.V., Timoshkin S.P., Gerasimenko A.Yu. Biological Compatibility and Proliferative Potential of Fibroblasts Seeded on Biocomposite Formed Using Laser Radiation and Solders [Electronic resource] // Acta medica Eurasica. – 2023. – №1. P. 93-100. – URL: https://acta-medica-eurasica.ru/en/single/2023/1/11/. DOI: 10.47026/2413-4864-2023-1-93-100.