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Materials Technology
Advanced Performance Materials
Volume 35, 2020 - Issue 7
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Research Article

Favourable modulation of osteoblast cellular activity on Cu-containing austenitic stainless steel and comparison with the Cu-free counterpart

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Pages 411-420 | Received 16 Oct 2019, Accepted 04 Nov 2019, Published online: 22 Nov 2019

References

  • DeVasConCellos P, Bose S, Beyenal H, et al. Antimicrobial particulate silver coatings on stainless steel implants for fracture management. Mater Sci Eng C. 2012;32:1112–1120.
  • Kenar H, Akman E, Kacar E, et al. Femtosecond laser treatment of 316L improves its surface nanoroughness and carbon content and promotes osseointegration: an in vitro evaluation. Colloids Surf B Biointerfaces. 2013;108:305–312.
  • Kenar H, Kocabas A, Aydinli A, et al. Chemical and topographical modification of PHBV surface to promote osteoblast alignment and confinement. J Biomed Mater Res A. 2008;85:1001–1010.
  • Kenar H, Köse GT, Hasirci V. Tissue engineering of bone on micropatterned biodegradable polyester films. Biomaterials. 2006;27:885–895.
  • Mirhosseini N, Crouse PL, Schmidth M. JJ, et al. Laser surface micro-texturing of Ti–6Al–4V substrates for improved cell integration. Appl Surf Sci. 2007;253:7738– 7743.
  • Likibi F, Jiang B, Li B. Biomimetic nanocoating promotes osteoblast cell adhesion on biomedical implants. J Mater Res. 2008;23:3222–3228.
  • Schlie S, Fadeeva E, Koch J, et al. Femtosecond laser fabricated spike structures for selective control of cellular behavior. J Biomater Appl. 2010;25:217–233.
  • Wennerberg A, Albrektsson T, Johansson C, et al. Experimental study of turned and grit-blasted screw-shaped implants with special emphasis on effects of blasting material and surface topography. Biomaterials. 1996;17:15–22.
  • Vanzillotta PS, Sader MS, Bastos IN, et al. Improvement of in vitro titanium bioactivity by three different surface treatments. Dent Mater. 2006;22:275–282.
  • Gaggl A, Schultes G, Müller WD, et al. Scanning electron microscopical analysis of laser-treated titanium implant surfaces – a comparative study. Biomaterials. 2000;21:1067–1073.
  • Pető G, Karacs A, Pászti Z, et al. Surface treatment of screw shaped titanium dental implants by high intensity laser pulses. Appl Surf Sci. 2002;186:7–13.
  • Madore C, Piotrowski O, Landolt D. Through-mask electrochemical micromachining of titanium. J Electrochem Soc. 1999;146:2526–2532.
  • Alvarez K, Sato K, Hyun SK, et al. Fabrication and properties of Lotus-type porous nickel-free stainless steel for biomedical applications. Mater Sci Eng C. 2008;28:44–50.
  • Calogiuri GF, Bonamonte D, Foti C, et al. Nickel hypersensitivity: a general review on clinical aspects and potential co-morbidities. J Allergy Ther. 2016;7:1000243.
  • Boulmedais F, Frisch B, Etienne O, et al. Polyelectrolyte multilayer films with pegylated polypeptides as a new type of anti-microbial protection for biomaterials. Biomaterials. 2004;25:2003–2011.
  • Giavaresi G, Borsari V, Fini M, et al. Preliminary investigations on a new gentamicin and vancomycin-coated PMMA nail for the treatment of bone and intramedullary infections an experimental study in the rabbit. J Orthop Res. 2008;26:785–792.
  • Yu Q, Fein JB. The effect of metal loading on Cd adsorption onto Shewanella oneidensis bacterial cell envelopes: the role of sulfhydryl sites. Geochim Cosmochim Acta. 2015;167:1–10.
  • Neoh KG, Hu X, Zheng D, et al. Balancing osteoblast functions and bacterial adhesion on functionalized titanium surfaces. Biomaterials. 2012;33:2813–2822.
  • Jin G, Qin H, Cao H, et al. Synergistic effects of dual Zn/Ag ion implantation in osteogenic activity and antibacterial ability of titanium. Biomaterials. 2014;35:7699–7713.
  • Zhao J, Zhai Z, Sun D, et al. Antibacterial durability and biocompatibility of antibacterial-passivated316L stainless steel in simulated physiological environment. Mater Sci Eng C. 2019;100:396–410.
  • Li M, Ma Z, Zhu Y, et al. Toward a molecular understanding of the antibacterial mechanism of copper‐bearing titanium alloys against staphylococcus aureus. Adv Healthc Mater. 2016;5:557–566.
  • Nan L, Liu Y, Lü M, et al. Study on antibacterial mechanism of copper-bearing austenitic antibacterial stainless steel by atomic force microscopy. J Mater Sci. 2008;19:3057–3062.
  • Nan L, Yang W, Liu Y, et al. Antibacterial mechanism of copper-bearing antibacterial stainless steel against E. Coli. J Mater Sci Technol. 2009;24:197–201.
  • Santo CE, Lam EW, Elowsky CG, et al. Bacterial killing by dry metallic copper surfaces. Appl Environ Microbiol. 2011;77:794–802.
  • Misra RDK, Thein-Han WW, Pesacreta TC, et al. Cellular response of preosteoblasts to nanograined/ultrafine-grained structures. Acta Biomater. 2009;5:1455–1467.
  • Eshaghi A, Eshaghi A. Optical and hydrophilic properties of nanostructure Cu loaded brookite TiO2 thin film. Thin Solid Films. 2011;520:1053–1056.
  • Luo F, Tang Z, Xiao S, et al. Study on properties of copper-containing austenitic antibacterial stainless steel. Mater Technol - Adv Perform Mater. 2019;34:525–533.
  • Nune KC, Somani MC, Spencer CT, et al. Cellular response of Staphylococcus aureus to nanostructured metallic biomedical devices: surface binding and mechanism of disruption of colonization. Mater Technol - Adv Perform Mater. 2017;32:22–31.
  • Ma Z, Ren L, Liu R, et al. Effect of heat treatment on Cu distribution, antibacterial performance and cytotoxicity of Ti–6Al–4V–5Cu alloy. J Mater Sci Technol. 2015;31:723–732.
  • Razatos A, Ong YL, Sharma MM, et al. Molecular determinants of bacterial adhesion monitored by atomic force microscopy. Proc Nat Acad Sci. 1998;95:11059–11064.
  • Busscher HJ, Weerkamp AH, van der Mei HC, et al. Measurement of the surface free energy of bacterial cell surfaces and its relevance for adhesion. Appl Environ Microbiol. 1984;48:980–983.
  • Gannon JT, Manilal VB, Alexander M. Relationship between cell surface properties and transport of bacteria through soil. Appl Environ Microbiol. 1991;57:190–193.

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