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Optics and Spectroscopy, 2021 Volume 129, Issue 6, Pages 717–726 (Mi os115)

Proceedings of the international conference ''The XXIV Annual Conference Saratov Fall Meeting 2020''
Biophotonics

Spectral manifestations of bacterially synthesized silver sulfide nanoparticles formation molecular mechanisms

I. L. Plastun, A. A. Zakharov, A. A. Naumov, P. A. Zhulidin, P. D. Filin

Yuri Gagarin State Technical University of Saratov

Abstract: One of the promising materials for biophotonics and medicine, used for the diagnosis and targeted therapy of cancer, is silver sulfide nanoparticles. Spectral manifestations of protein structures interaction with metal salts during the nanoparticles bacterial synthesis molecular mechanisms are studied using molecular modeling methods based on the Density Functional Theory (DFT). A special feature of silver sulfide nanoparticles preparation by biosynthesis using Bacillus subtilis 168 bacteria is that the only flagellin protein involved in the synthesis process and adsorbed on particles surface. The studied objects were the salts-silver nitrate and sodium thiosulfate, which are involved in the synthesis process, as well as the non-standard amino acid methyllysine, which is part of flagellin. The simulation was based on the calculation of resulting molecular structures and their IR spectra using the Gaussian 09 software package. During the analysis of formed hydrogen bonds parameters, it was found that methyllysine forms sufficiently stable molecular complexes with silver nitrate and sodium thiosulfate. This indicates the significant role of methyllysine in biogenic silver sulfide nanoparticles formation and clarifies the mechanism of its functioning.

Keywords: IR spectra, nanoparticles, biosynthesis, silver sulfide, flagellin, methyllysine, molecular modeling, hydrogen bonds, density functional theory.

Received: 05.01.2021
Revised: 12.02.2021
Accepted: 26.02.2021

DOI: 10.21883/OS.2021.06.50982.1k-21


 English version:
Optics and Spectroscopy, 2021, 129:7, 794–803

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© Steklov Math. Inst. of RAS, 2024