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SiCxNyOz Coatings Enhance Endothelialization and Bactericidal activity and Reduce Blood Cell Activation Full article

Journal ACS Biomaterials Science and Engineering
ISSN: 2373-9878
Output data Year: 2020, Volume: 6, Number: 10, Pages: 5571-5587 Pages count : 17 DOI: 10.1021/acsbiomaterials.0c00472
Tags antibacterial; cytocompatibility; SiCxNyOz, hemocompatibility; titanium coatings
Authors Bhaskar Nitu 1 , Sulyaeva Veronica 2 , Gatapova Elizaveta 3 , Kaichev Vasilii 4 , Rogilo Dmitry 5 , Khomyakov Maxim 6 , Kosinova Marina 2 , Basu Bikramjit 1
Affiliations
1 Materials Research Center, Indian Institute of Science, Bangalore, Karnataka, 560012, India
2 Nikolaev Institute of Inorganic Chemistry SB RAS, 3, Acad. Lavrentiev Ave., Novosibirsk, 630090, Russia
3 Kutateladze Institute of Thermophysics SB RAS, 1, Acad. Lavrentiev Ave., Novosibirsk, 630090, Russia
4 Boreskov Institute of Catalysis SB RAS, 5, Acad. Lavrentiev Ave., Novosibirsk, 630090, Russia
5 Rzhanov Institute of Semiconductor Physics SB RAS, 13, Acad. Lavrentiev Ave., Novosibirsk, 630090, Russia
6 Institute of Laser Physics SB RAS, 15B, Acad. Lavrentiev Ave., Novosibirsk, 630090, Russia

Funding (3)

1 Ministry of Science and Higher Education of the Russian Federation 0306-2019-0011
2 Department of Science and Technology SR/WOS-A/LS-513/2017
3 Russian Foundation for Basic Research
Department of Science and Technology
18-53-80016 (АААА-А18-118091290003-8) / DST/IMRCD/BRICS/PilotCall2/SCBCPCVD/2018

Abstract: For biomedical applications, a number of ceramic coatings have been investigated, but the interactions with the components of living system remain unexplored for oxycarbonitride coatings. While addressing this aspect, the present study aims to provide an understanding of the biocompatibility of novel SiCxNyOz coatings that could validate the hypothesis that such coatings may not only enhance the cell-material interaction by re-endothelialization but also can help to reduce bacterial adhesion and activation of blood cells. This work reports the physicochemical properties, hemocompatibility, endothelialization, and antibacterial properties of novel amorphous SiCxNyOz coatings deposited on commercial pure titanium (Ti) by radiofrequency (RF) magnetron sputtering at varied nitrogen (N2) flow rates. A comparison is made with diamond-like carbon (DLC) coatings, which are clinically used. The surface roughness, surface wettability, nanoscale hardness, and surface energy of SiCxNyOz coatings were found to be dependent on the nitrogen (N2) flow rate. Importantly, the as-deposited SiCxNyOz coatings exhibited much better nanoscale hardness and scratch resistance than DLC coatings. Furthermore, Raman spectroscopy analysis of the SiCxNyOz coating deposited on Ti showed a change in the graphitic/disordered carbon content. Cytocompatibility and hemocompatibility properties of the as-deposited SiCxNyOz coating were evaluated using the Mus musculus lymphoid endothelial cell line (SVEC4-10) and rabbit blood in vitro. WST-1 assay analysis showed that these coatings, when compared to DLC, exhibited a better proliferation of endothelial cells, which can potentially result in improved surface endothelialization. Furthermore, qualitative and quantitative analyses of immunofluorescence images revealed a dense cellular layer of SVEC4-10 on SiCxNyOz coatings, deposited at 15 and 30 sccm nitrogen flow rates. As far as compatibility with rabbit blood is concerned, the hemolysis of the SiCxNyOz coatings was less than 4%, with slightly lower values for coatings deposited without N2 flow. The SiCxNyOz coatings support less platelet adhesion and aggregation, with no signature of morphological deformation, as compared to the uncoated titanium substrate or DLC coatings. Furthermore, SiCxNyOz coatings were also found to be effectively extending the blood coagulation time for a period of 60 min. The antimicrobial study of as-deposited SiCxNyOz coatings on E. coli and S. aureus bacteria revealed the effective inhibition of bacterial proliferation after 24 h of culture. An attempt has been made to explain the cyto- A nd hemocompatibility properties with antimicrobial efficacy of coatings in terms of the variation in the coating composition and surface energy. Taken together, we conclude that SiC1.3N0.76O0.87 coating having a roughness of 17 nm and a surface free energy of 54.0 ± 0.7 mN/m can exhibit the best combination of hardness, elastic modulus, scratch resistance, cytocompatibility, hemocompatibility, and bactericidal properties. Copyright © 2020 American Chemical Society.
Cite: Bhaskar N. , Sulyaeva V. , Gatapova E. , Kaichev V. , Rogilo D. , Khomyakov M. , Kosinova M. , Basu B.
SiCxNyOz Coatings Enhance Endothelialization and Bactericidal activity and Reduce Blood Cell Activation
ACS Biomaterials Science and Engineering. 2020. V.6. N10. P.5571-5587. DOI: 10.1021/acsbiomaterials.0c00472 WOS Scopus РИНЦ AN PMID OpenAlex
Files: Full text from publisher
Dates:
Submitted: Apr 3, 2020
Accepted: Aug 19, 2020
Published online: Aug 19, 2020
Published print: Oct 12, 2020
Identifiers:
Web of science: WOS:000580903800016
Scopus: 2-s2.0-85095434157
Elibrary: 45208755
Chemical Abstracts: 2020:1647458
PMID: 33320557
OpenAlex: W3081006695
Citing:
DB Citing
Scopus 14
Web of science 12
Elibrary 12
OpenAlex 14
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