Kurilova U. E.1,2, Novikov D. V.3, Chumachenko Yu. V. 3, Tarasov A. M.3, Dubkov S. V.3, Gromov D. G.3, Suetina I. A.4, Russu L. I. 4, Mezentseva M. V.4, Gerasimenko A. Yu.1,2
1Institute for Bionic Technologies and Engineering, Sechenov First Moscow State Medical University, Moscow, Russia
2Institute of Biomedical Systems, National Research University of Electronic Technology, MIET, Moscow, Zelenograd, Russian Federation
3Research laboratory ”Active photonic materials and devices“, National Research University of Electronic Technology (MIET), Moscow, Zelenograd, Russia
4National Research Center for Epidemiology and Microbiology named after Honorary Academician N.F. Gamaleya, Ministry of Health of the Russian Federation, Moscow, Russia
Email: kurilova_10@mail.ru
This paper presents the results of studying gold and silver nanoparticle arrays immobilized on a silicon substrate to explore the potential of using them to create optically activated biointerfaces. The nanoparticles were formed using vacuum thermal evaporation and rapid thermal annealing. Varying the initial film thickness from 5 to 100 nm and the annealing temperature allowed us to obtain nanoparticle arrays with different morphologies. Quantitative parameters of the cellular response were studied, including the number of cells, the total area occupied by cells, and the average size of an individual cell, as well as the cell distribution and morphology on the surface of the nanoparticle substrate after incubation for 48 hours. The highest cellular activity was observed on gold nanoparticles obtained from 5 and 10 nm films, as well as on silver nanoparticles with a film of 5 nm. Thus, the studied nanoparticle arrays have potential for use in creating interfaces for stimulating cells and tissues. Keywords: plasmon resonance, vacuum thermal evaporation, rapid thermal annealing, biocompatibility, stimulation.
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