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Antibacterial Coatings for Titanium Implants: Recent Trends and Future Perspectives

期刊

ANTIBIOTICS-BASEL
卷 11, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/antibiotics11121719

关键词

titanium implants; implant-associated infections; antibacterial coatings; 3D printing

资金

  1. Department of Biotechnology, Government of India [BT/HRD/35/02/2006]
  2. VIT SEED [2021-2022 (SG20210234)]

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Titanium and its alloys are widely used for biomedical devices as implant materials due to their high mechanical strength, biocompatibility, and corrosion resistance. Various antibacterial agents have been incorporated on the surface of titanium implants to reduce the risk of infections. Different coating methods and surface modification techniques are exploited to create a biocompatible and antibacterial titanium implant surface.
Titanium and its alloys are widely used as implant materials for biomedical devices owing to their high mechanical strength, biocompatibility, and corrosion resistance. However, there is a significant rise in implant-associated infections (IAIs) leading to revision surgeries, which are more complicated than the original replacement surgery. To reduce the risk of infections, numerous antibacterial agents, e.g., bioactive compounds, metal ions, nanoparticles, antimicrobial peptides, polymers, etc., have been incorporated on the surface of the titanium implant. Various coating methods and surface modification techniques, e.g., micro-arc oxidation (MAO), layer-by-layer (LbL) assembly, plasma electrolytic oxidation (PEO), anodization, magnetron sputtering, and spin coating, are exploited in the race to create a biocompatible, antibacterial titanium implant surface that can simultaneously promote tissue integration around the implant. The nature and surface morphology of implant coatings play an important role in bacterial inhibition and drug delivery. Surface modification of titanium implants with nanostructured materials, such as titanium nanotubes, enhances bone regeneration. Antimicrobial peptides loaded with antibiotics help to achieve sustained drug release and reduce the risk of antibiotic resistance. Additive manufacturing of patient-specific porous titanium implants will have a clear future direction in the development of antimicrobial titanium implants. In this review, a brief overview of the different types of coatings that are used to prevent implant-associated infections and the applications of 3D printing in the development of antibacterial titanium implants is presented.

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