[Strong Antibacterial Efficacy of Titanium Surfaces Modified by Nanotubes and Silver Nanoparticles]. 2019

J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
Ortopedická klinika Lékařské fakulty Univerzity Palackého v Olomouci a Fakultní nemocnice Olomouc.

PURPOSE OF THE STUDY Nano-structuring and nano-silver have been extensively studied for improving the antibacterial ability of implants due to their powerful antibacterial activity; however, there is no clinical application as yet. The aim of the study was to determine the antibacterial, antiadhesive and cytotoxic features of Ti6Al4V modified with nano-texturing and silver nano-particles. MATERIAL AND METHODS The nanoparticles were applied on polished and nano-textured Ti6Al4V using sonoreduction. The surface topography, roughness, friction coefficients, hardness and elastic modulus values for prepared top layers were established. The materials were tested for antibacterial and antiadhesion activity using reference bacterial strains (Staphylococcus epidermidis CCM 7221, Staphylococcus aureus MRSA 4591, Enterococcus faecalis CCM 4224, Escherichia coli CCM 3954) and their cytocompatibility. RESULTS A strong antibacterial activity of samples treated with nano-texture and/or silver nanoparticles compared to all the tested bacterial strains at 24 hours was proven. This antibacterial activity was diminishing in relation to Staphylococcus aureusand Enterococcus faecalisat 48 and 72 hours but remained very effective against Staphylococcus epidermidisand Escherichia coli. We also demonstrated antibiofilm activity for samples treated with silver nanoparticles and nano-tubes in experiments lasting 24 and 72 hours. DISCUSSION Our main findings are in agreement with those reported in recent literature. The implant surfaces treated with nano-texture in combination with silver nanoparticles exhibit strong antibacterial and antibiofilm characteristics. Despite there is conclusive evidence of strong antibacterial functioning, why these implant modifications have not been widely applied in clinical practice remains a question. While many obstacles including legislative procedures required for clinical implementation are more or less known, it should be clearly demonstrated that this surface modification does neither harm the patient nor interfere with the long-term survivorship of the implants before their wide-range clinical application. CONCLUSIONS Surface modification of Ti6Al4V with nano-texturing and silver nanoparticles resulted in strong antibacterial and modest antibiofilm effects. Thus, our results confirmed the technological potential of nano-texturing and silver nanoparticles for the improvement of antibacterial properties of implants. Key words:prosthetic joint infection, anti-infective biomaterials, titanium alloy, silver nanoparticles, nanotubes, prevention of infection.

UI MeSH Term Description Entries
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000900 Anti-Bacterial Agents Substances that inhibit the growth or reproduction of BACTERIA. Anti-Bacterial Agent,Anti-Bacterial Compound,Anti-Mycobacterial Agent,Antibacterial Agent,Antibiotics,Antimycobacterial Agent,Bacteriocidal Agent,Bacteriocide,Anti-Bacterial Compounds,Anti-Mycobacterial Agents,Antibacterial Agents,Antibiotic,Antimycobacterial Agents,Bacteriocidal Agents,Bacteriocides,Agent, Anti-Bacterial,Agent, Anti-Mycobacterial,Agent, Antibacterial,Agent, Antimycobacterial,Agent, Bacteriocidal,Agents, Anti-Bacterial,Agents, Anti-Mycobacterial,Agents, Antibacterial,Agents, Antimycobacterial,Agents, Bacteriocidal,Anti Bacterial Agent,Anti Bacterial Agents,Anti Bacterial Compound,Anti Bacterial Compounds,Anti Mycobacterial Agent,Anti Mycobacterial Agents,Compound, Anti-Bacterial,Compounds, Anti-Bacterial
D012834 Silver An element with the atomic symbol Ag, atomic number 47, and atomic weight 107.87. It is a soft metal that is used medically in surgical instruments, dental prostheses, and alloys. Long-continued use of silver salts can lead to a form of poisoning known as ARGYRIA.
D014025 Titanium A dark-gray, metallic element of widespread distribution but occurring in small amounts with atomic number, 22, atomic weight, 47.867 and symbol, Ti; specific gravity, 4.5; used for fixation of fractures.
D043942 Nanotubes Nanometer-sized tubes composed of various substances including carbon (CARBON NANOTUBES), boron nitride, or nickel vanadate. Nanorods,Nanorod,Nanotube
D053768 Metal Nanoparticles Nanoparticles produced from metals whose uses include biosensors, optics, and catalysts. In biomedical applications the particles frequently involve the noble metals, especially gold and silver. Metal Nanocrystals,Metallic Nanocrystals,Metallic Nanoparticles,Metal Nanocrystal,Metal Nanoparticle,Metallic Nanocrystal,Metallic Nanoparticle,Nanocrystal, Metal,Nanocrystal, Metallic,Nanocrystals, Metal,Nanocrystals, Metallic,Nanoparticle, Metal,Nanoparticle, Metallic,Nanoparticles, Metal,Nanoparticles, Metallic
D020099 Coated Materials, Biocompatible Biocompatible materials usually used in dental and bone implants that enhance biologic fixation, thereby increasing the bond strength between the coated material and bone, and minimize possible biological effects that may result from the implant itself. Surface-Coated Materials,Biocompatible Coated Materials,Materials, Biocompatible Coated,Materials, Surface-Coated,Surface Coated Materials

Related Publications

J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
May 2014, Biomaterials,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
October 2020, RSC advances,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
July 2010, ACS applied materials & interfaces,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
May 2019, Materials science & engineering. C, Materials for biological applications,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
May 2010, International journal of nanomedicine,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
April 2024, RSC advances,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
June 2022, Journal of materials science. Materials in medicine,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
February 2020, Nanotoxicology,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
May 2010, Nanotechnology,
J Gallo, and Š Hradilová, and L Joska, and R Večeřová, and A Galandáková, and L Cvrček, and E Kriegová
December 2015, AMB Express,
Copied contents to your clipboard!