• Journal of Inorganic Materials
  • Vol. 38, Issue 12, 1441 (2023)
Jiaheng DU1,2, Xinli FAN3,4, Dongqin XIAO2, Yiran YIN1..., Zhong LI1, Kui HE1 and Ke DUAN1,*|Show fewer author(s)
Author Affiliations
  • 11. Engineering Laboratory of Orthopaedic Implant Device R&D and Application Technology, Sichuan Province, Department of Bone and Joint Surgery, Affiliated Hospital of Southwest Medical University, Luzhou 646000, China
  • 22. Research Institute of Tissue Engineering and Stem Cells, Nanchong Central Hospital, the Second Clinical College of North Sichuan Medical College, Nanchong 637000, China
  • 33. Department of Oral and Maxillofacial Surgery, Qilu School of Stomatology, Stomatological Hospital of Shandong University, Jinan 250012, China
  • 44. Shandong Key Laboratory of Oral Tissue Regeneration, Shandong Engineering Laboratory of Oral Biomaterials and Tissue Regeneration, Shandong Clinical Medical Research Center for Oral Diseases, Jinan 250012, China
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    DOI: 10.15541/jim20230198 Cite this Article
    Jiaheng DU, Xinli FAN, Dongqin XIAO, Yiran YIN, Zhong LI, Kui HE, Ke DUAN. Electrophoretic Coating of Magnesium Oxide on Microarc-oxidized Titanium and Its Biological Properties[J]. Journal of Inorganic Materials, 2023, 38(12): 1441 Copy Citation Text show less
    References

    [1] I POTAPOVA. Functional imaging in diagnostic of orthopedic implant-associated infections. Diagnostics, 356(2013).

    [2] K MALIZOS, M BLAUTH, A DANITA et al. Fast-resorbable antibiotic- loaded hydrogel coating to reduce post-surgical infection after internal osteosynthesis: a multicenter randomized controlled trial. Journal of Orthopaedics and Traumatology, 159(2017).

    [3] H CAO, F MENG, X LIU et al. Antimicrobial activity of tantalum oxide coatings decorated with Ag nanoparticles. Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, 04C102(2016).

    [4] I OLSEN. Biofilm-specific antibiotic tolerance and resistance. European Journal of Clinical Microbiology & Infectious Diseases, 877(2015).

    [5] R P F SCHINS, A M KNAAPEN. Genotoxicity of poorly soluble particles. Inhalation Toxicology, 189(2007).

    [6] T PALACIOS-HERNANDEZ, DM DIAZ-DIESTRA, A K NGUYEN et al. Cytotoxicity, cellular uptake and apoptotic responses in human coronary artery endothelial cells exposed to ultrasmall superparamagnetic iron oxide nanoparticles. Journal of Applied Toxicology, 918(2020).

    [7] Y WANG, H YU, C CHEN et al. Review of the biocompatibility of micro-arc oxidation coated titanium alloys. Materials & Design, 640(2015).

    [8] T XUE, S ATTARILAR, S LIU et al. Surface modification techniques of titanium and its alloys to functionally optimize their biomedical properties: thematic review. Frontiers in Bioengineering and Biotechnology(2020).

    [9] A AL-AHMAD, M WIEDMANN-AL-AHMAD, A FACKLER. et al. In vivo study of the initial bacterial adhesion on different implant materials. Archives of Oral Biology, 1139(2013).

    [10] A AL-AHMAD, M WIEDMANN-AL-AHMAD, J FAUST et al. Biofilm formation and composition on different implant materials in vivo. Journal of Biomedical Materials Research Part B: Applied Biomaterials, 101(2010).

    [11] Y CHEN, W SHENG, J LIN et al. Magnesium oxide nanoparticle coordinated phosphate-functionalized chitosan injectable hydrogel for osteogenesis and angiogenesis in bone regeneration. ACS Applied Materials & Interfaces, 7592(2022).

    [12] R CHEN, H B CHEN, P P XUE et al. HA/MgO nanocrystal-based hybrid hydrogel with high mechanical strength and osteoinductive potential for bone reconstruction in diabetic rats. Journal of Materials Chemistry B, 1107(2021).

    [13] V LUQUE-AGUDO, M C FERNÁNDEZ-CALDERÓN, OLIVENZA M A PACHA- et al. The role of magnesium in biomaterials related infections. Colloids and Surfaces B: Biointerfaces(2020).

    [14] N Y T NGUYEN, N GRELLING, C L WETTELAND et al. Antimicrobial activities and mechanisms of magnesium oxide nanoparticles (nMgO) against pathogenic bacteria, yeasts, and biofilms. Scientific Reports(2018).

    [15] C C COELHO, T PADRÃO, L COSTA et al. The antibacterial and angiogenic effect of magnesium oxide in a hydroxyapatite bone substitute. Scientific Reports(2020).

    [16] A R BOCCACCINI, S KEIM, R MA et al. Electrophoretic deposition of biomaterials. Journal of the Royal Society Interface, S581(2010).

    [17] N BRUCHIEL-SPANIER, S BETSIS, G NAIM et al. Electrochemical and electrophoretic coatings of medical implants by nanomaterials. Journal of Solid State Electrochemistry, 1871(2022).

    [18] D J HICKEY, D MUTHUSAMY, T J WEBSTER. Electrophoretic deposition of MgO nanoparticles imparts antibacterial properties to poly-L-lactic acid for orthopedic applications. Journal of Biomedical Materials Research Part A, 3136(2017).

    [19] Y J LIN, D Q LI, G WANG et al. Preparation and bactericidal property of MgO nanoparticles on gamma-Al2O3. Journal Materials Science: Materials in Medcine, 53(2005).

    [20] A AL-SHARABI, KSS SADA'A, A AL-OSTA et al. Structure, optical properties and antimicrobial activities of MgO-BiCrO nanocomposites prepared via solvent-deficient method. Scientific Reports(2022).

    [21] X LI, X HONG, Y YANG et al. Enhanced antibacterial activity of acid treated MgO nanoparticles on Escherichia coli. RSC Advances, 38202(2021).

    [22] Q CHEN, RP GARCIA, J MUNOZ et al. Cellulose nanocrystals-- bioactive glass hybrid coating as bone substitutes by electrophoretic co-deposition: in situ control of mineralization of bioactive glass and enhancement of osteoblastic performance. ACS Applied Materials & Interfaces, 24715(2015).

    [23] X LIU, Z XIE, C ZHANG et al. Bioactive borate glass scaffolds: in vitro and in vivo evaluation for use as a drug delivery system in the treatment of bone infection. Journal Materials Science: Materials in Medcine, 575(2010).

    [24] F HOSSEINBABAEI, B RAISSIDEHKORDI. Electrophoretic deposition of MgO thick films from an acetone suspension. Journal of the European Ceramic Society, 2165(2000).

    [26] D Y KIM, M KIM, H E KIM et al. Formation of hydroxyapatite within porous TiO2 layer by micro-arc oxidation coupled with electrophoretic deposition. Acta Biomaterialia, 2196(2009).

    [27] X FAN, B FENG, Y DI et al. Preparation of bioactive TiO film on porous titanium by micro-arc oxidation. Applied Surface Science, 7584(2012).

    [28] S DAGHIGHI, J SJOLLEMA, DER MEI H C VAN et al. Infection resistance of degradable versus non-degradable biomaterials: an assessment of the potential mechanisms. Biomaterials, 8013(2013).

    [29] DIAZ R MUÑIZ, P E CARDOSO-AVILA, TAVARES J A PÉREZ et al. Two-step triethylamine-based synthesis of MgO nanoparticles and their antibacterial effect against pathogenic bacteria. Nanomaterials, 410(2021).

    [30] J TAN, Z LIU, D WANG et al. A facile and universal strategy to endow implant materials with antibacterial ability via alkalinity disturbing bacterial respiration. Biomaterials Science, 1815(2020).

    [31] Y H LEUNG, A M C NG, X XU et al. Mechanisms of antibacterial activity of MgO: non-ROS mediated toxicity of MgO nanoparticles towards Escherichia coli. Small, 1171(2014).

    [32] A RICKER, P LIU-SNYDER, T J WEBSTER. The influence of nano MgO and BaSO4 particle size additives on properties of PMMA bone cement. International Journal of Nanomedicine, 125(2008).

    [33] M DEMIREL. Mechanical properties and cell viability of MgO- reinforced biografts fabricated for biomedical applications. Acta of Bioengineering and Biomechanics, 83(2018).

    [34] C JANNING, E WILLBOLD, C VOGT et al. Magnesium hydroxide temporarily enhancing osteoblast activity and decreasing the osteoclast number in peri-implant bone remodelling. Acta Biomaterialia, 1861(2010).

    [35] S AGARWAL, J CURTIN, B DUFFY et al. Biodegradable magnesium alloys for orthopaedic applications: a review on corrosion, biocompatibility and surface modifications. Materials Science and Engineering: C(2016).

    [36] B ZHU, L WANG, Y WU et al. Improving corrosion resistance and biocompatibility of AZ31 magnesium alloy by ultrasonic cold forging and micro-arc oxidation. Journal of Biomaterials Applications, 1664(2022).

    [37] J ZHUANG, Y JING, Y WANG et al. Degraded and osteogenic properties of coated magnesium alloy AZ31: an experimental study. Journal of Orthopaedic Surgery and Research, 1(2016).

    Jiaheng DU, Xinli FAN, Dongqin XIAO, Yiran YIN, Zhong LI, Kui HE, Ke DUAN. Electrophoretic Coating of Magnesium Oxide on Microarc-oxidized Titanium and Its Biological Properties[J]. Journal of Inorganic Materials, 2023, 38(12): 1441
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