Hierarchically porous surface of HA-sandblasted Ti implant screw using the plasma electrolytic oxidation: Physical characterization and biological responses

Author:

Choe YoungEun12ORCID,Li Cheng Ji12,Yeo Dong-Hyeon12,Kim Yu-Jin13,Lee Jung-Hwan12345,Lee Hae-Hyoung123

Affiliation:

1. Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan, Republic of Korea

2. Department of Nanobiomedical Science & BK21 PLUS NBM Global Research Center for Regenerative Medicine, Dankook University, Cheonan, Republic of Korea

3. Department of Biomaterials Science, College of Dentistry, Dankook University, Cheonan, Republic of Korea

4. Mechanobiology Dental Medicine Research Center, Dankook University, Cheonan, Republic of Korea

5. Cell & Matter Institute, Dankook University, Cheonan, Republic of Korea

Abstract

The surface topological features of bioimplants are among the key indicators for bone tissue replacement because they directly affect cell morphology, adhesion, proliferation, and differentiation. In this study, we investigated the physical, electrochemical, and biological responses of sandblasted titanium (SB-Ti) surfaces with pore geometries fabricated using a plasma electrolytic oxidation (PEO) process. The PEO treatment was conducted at an applied voltage of 280 V in a solution bath consisting of 0.15 mol L−1 calcium acetate monohydrate and 0.02 mol L−1 calcium glycerophosphate for 3 min. The surface chemistry, wettability, mechanical properties and corrosion behavior of PEO-treated sandblasted Ti implants using hydroxyapatite particles (PEO-SB-Ti) were improved with the distribution of calcium phosphorous porous oxide layers, and showed a homogeneous and hierarchically porous surface with clusters of nanopores in a bath containing calcium acetate monohydrate and calcium glycerophosphate. To demonstrate the efficacy of PEO-SB-Ti, we investigated whether the implant affects biological responses. The proposed PEO-SB-Ti were evaluated with the aim of obtaining a multifunctional bone replacement model that could efficiently induce osteogenic differentiation as well as antibacterial activities. These physical and biological responses suggest that the PEO-SB-Ti may have a great potential for use an artificial bone replacement compared to that of the controls.

Funder

National Research Foundation of Korea

Publisher

SAGE Publications

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