Bioglass and Vitamin D3 Coatings for Titanium Implants: Osseointegration and Corrosion Protection

Author:

Negut Irina1ORCID,Gradisteanu-Pircalabioru Gratiela234,Dinu Mihaela5ORCID,Bita Bogdan16ORCID,Parau Anca Constantina5,Grumezescu Valentina1,Ristoscu Carmen1ORCID,Chifiriuc Mariana Carmen3478ORCID

Affiliation:

1. National Institute for Laser, Plasma and Radiation Physics, 409 Atomistilor Street, P.O. Box MG 36, 077125 Magurele, Romania

2. eBio-Hub Research Center, University Politehnica of Bucharest—CAMPUS, 6 Iuliu Maniu Boulevard, 061344 Bucharest, Romania

3. Research Institute of the University of Bucharest (ICUB), University of Bucharest, 050657 Bucharest, Romania

4. Academy of Romanian Scientists, 3 Ilfov Str., District 5, 050044 Bucharest, Romania

5. National Institute of Research and Development for Optoelectronics-INOE2000, 409 Atomistilor St., 077125 Magurele, Romania

6. Faculty of Physics, University of Bucharest, 077125 Magurele, Romania

7. The Romanian Academy, Calea Victoriei 25, District 1, 010071 Bucharest, Romania

8. Department of Microbiology, Faculty of Biology, University of Bucharest, 050095 Bucharest, Romania

Abstract

The use of MAPLE synthesized thin films based on BG and VD3 for improving the osseointegration and corrosion protection of Ti-like implant surfaces is reported. The distribution of chemical elements and functional groups was shown by FTIR spectrometry; the stoichiometry and chemical functional integrity of thin films after MAPLE deposition was preserved, optimal results being revealed especially for the BG+VD3_025 samples. The morphology and topography were examined by SEM and AFM, and revealed surfaces with many irregularities, favoring a good adhesion of cells. The thin films’ cytotoxicity and biocompatibility were evaluated in vitro at the morphological, biochemical, and molecular level. Following incubation with HDF cells, BG57+VD3_ 025 thin films showed the best degree of biocompatibility, as illustrated by the viability assay values. According to the LDH investigation, all tested samples had higher values compared to the unstimulated cells. The evaluation of cell morphology was performed by fluorescence microscopy following cultivation of HDF cells on the obtained thin films. The cultivation of HDF’s on the thin films did not induce major cellular changes. Cells cultured on the BG57+VD3_025 sample had similar morphology to that of unstimulated control cells. The inflammatory profile of human cells cultured on thin films obtained by MAPLE was analyzed by the ELISA technique. It was observed that the thin films did not change the pro- and anti-inflammatory profile of the HDF cells, the IL-6 and IL-10 levels being similar to those of the control sample. The wettability of the MAPLE thin films was investigated by the sessile drop method. A contact angle of 54.65° was measured for the sample coated with BG57+VD3_025. Electrochemical impedance spectroscopy gave a valuable insight into the electrochemical reactions occurring on the surface.

Funder

Ministry of Research, Innovation and Digitization, CNCS—UEFISCDI

Publisher

MDPI AG

Subject

General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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