Fe and C additions decrease the dissolution rate of silicon nitride coatings and are compatible with microglial viability in 3D collagen hydrogels.
暂无分享,去创建一个
C. Persson | J. Kreuger | A. Palmquist | P. O’Callaghan | G. Hulsart-Billström | Charlotte Skjöldebrand | Estefanía Echeverri
[1] C. Persson,et al. Bioactive Silicon Nitride Implant Surfaces with Maintained Antibacterial Properties , 2022, Journal of functional biomaterials.
[2] S. Ferguson,et al. Silicon Nitride as a Biomedical Material: An Overview , 2022, International journal of molecular sciences.
[3] C. Persson,et al. Tailoring the dissolution rate and in vitro cell response of silicon nitride coatings through combinatorial sputtering with chromium and niobium. , 2022, Biomaterials science.
[4] C. Persson,et al. Current status and future potential of wear-resistant coatings and articulating surfaces for hip and knee implants , 2022, Materials today. Bio.
[5] Marieke E. Ijsselsteijn,et al. Iron loading is a prominent feature of activated microglia in Alzheimer’s disease patients , 2021, Acta Neuropathologica Communications.
[6] L. Schaeffer,et al. Evaluation of in vitro and in vivo biocompatibility of iron produced by powder metallurgy. , 2020, Materials science & engineering. C, Materials for biological applications.
[7] C. Persson,et al. Si–Fe–C–N Coatings for Biomedical Applications: A Combinatorial Approach , 2020, Materials.
[8] V. Kindler,et al. In vitro evaluation of human myoblast function after exposure to cobalt and chromium ions , 2019, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[9] J. Tipper,et al. Neural cell responses to wear debris from metal-on-metal total disc replacements , 2019, European Spine Journal.
[10] D. Donley,et al. Iron activates microglia and directly stimulates indoleamine-2,3-dioxygenase activity in the N171-82Q mouse model of Huntington’s disease , 2019, bioRxiv.
[11] Sonny B. Bal,et al. In vitro antibacterial activity of oxide and non-oxide bioceramics for arthroplastic devices: I. In situ time-lapse Raman spectroscopy. , 2018, The Analyst.
[12] W. Maus-Friedrichs,et al. Characterization and Applications of Nanoparticles Modified in-Flight with Silica or Silica-Organic Coatings , 2018, Nanomaterials.
[13] R. Hall,et al. Biological Impact of Silicon Nitride for Orthopaedic Applications: Role of Particle Size, Surface Composition and Donor Variation , 2018, Scientific Reports.
[14] E. Marin,et al. In vitro antibacterial activity of oxide and non-oxide bioceramics for arthroplastic devices: II. Fourier transform infrared spectroscopy. , 2018, In Analysis.
[15] I. Ivanov,et al. Silicon carbonitride thin films deposited by reactive high power impulse magnetron sputtering , 2018 .
[16] E. Schwarz,et al. Surface topography of silicon nitride affects antimicrobial and osseointegrative properties of tibial implants in a murine model. , 2017, Journal of biomedical materials research. Part A.
[17] Bart Vinck,et al. Cobalt toxicity in humans-A review of the potential sources and systemic health effects. , 2017, Toxicology.
[18] John G. Jones,et al. Reactive co-sputtering of hematite doped silica (Fe2O3-SiO2) thin films , 2017 .
[19] L. Hultman,et al. SiNx coatings deposited by reactive high power impulse magnetron sputtering: Process parameters influencing the residual coating stress , 2017 .
[20] C. Persson,et al. Influence of Substrate Heating and Nitrogen Flow on the Composition, Morphological and Mechanical Properties of SiNx Coatings Aimed for Joint Replacements , 2017, Materials.
[21] V. Patel,et al. Three cases of metallosis associated with spine instrumentation , 2017, Journal of Materials Science: Materials in Medicine.
[22] C. Persson,et al. Morphology and Dissolution Rate of Wear Debris from Silicon Nitride Coatings. , 2016, ACS biomaterials science & engineering.
[23] A. Neville,et al. Dissolution behaviour of silicon nitride coatings for joint replacements. , 2016, Materials science & engineering. C, Materials for biological applications.
[24] Wenliang Zhu,et al. Silicon Nitride Bioceramics Induce Chemically Driven Lysis in Porphyromonas gingivalis. , 2016, Langmuir : the ACS journal of surfaces and colloids.
[25] U. Arnalds,et al. Tailoring anisotropy and domain structure in amorphous TbCo thin films through combinatorial methods , 2016 .
[26] D. Dennis,et al. Biomaterial Hypersensitivity: Is It Real? Supportive Evidence and Approach Considerations for Metal Allergic Patients following Total Knee Arthroplasty , 2015, BioMed research international.
[27] Michael D. Mason,et al. The cytotoxicity and genotoxicity of soluble and particulate cobalt in human lung fibroblast cells. , 2014, Toxicology and applied pharmacology.
[28] J. Fisher,et al. Biological Effects of Clinically Relevant CoCr Nanoparticles in the Dura Mater: An Organ Culture Study , 2014, Nanomaterials.
[29] J. Fisher,et al. Interaction of micron and nano-sized particles with cells of the dura mater , 2014, Journal of biomedical materials research. Part B, Applied biomaterials.
[30] Yufeng Zheng,et al. In vitro degradation and biocompatibility of Fe-Pd and Fe-Pt composites fabricated by spark plasma sintering. , 2014, Materials science & engineering. C, Materials for biological applications.
[31] J. K. Hofer,et al. A minimum 5-year follow-up of an oxidized zirconium femoral prosthesis used for total knee arthroplasty. , 2014, The Knee.
[32] J. Phillips,et al. A three-dimensional collagen construct to model lipopolysaccharide-induced activation of BV2 microglia , 2014, Journal of Neuroinflammation.
[33] C. Persson,et al. Structure and composition of silicon nitride and silicon carbon nitride coatings for joint replacements , 2013 .
[34] C. Persson,et al. Mechanical and tribological behavior of silicon nitride and silicon carbon nitride coatings for total joint replacements. , 2013, Journal of the mechanical behavior of biomedical materials.
[35] J. Fisher,et al. Biological effects of cobalt-chromium nanoparticles and ions on dural fibroblasts and dural epithelial cells. , 2013, Biomaterials.
[36] Mathew P. Estey,et al. Metal release from hip prostheses: cobalt and chromium toxicity and the role of the clinical laboratory , 2012, Clinical chemistry and laboratory medicine.
[37] Kevin W Eliceiri,et al. NIH Image to ImageJ: 25 years of image analysis , 2012, Nature Methods.
[38] C. Persson,et al. Fabrication and evaluation of SixNy coatings for total joint replacements , 2012, Journal of Materials Science: Materials in Medicine.
[39] D. Langton,et al. Adverse reactions to metal debris: histopathological features of periprosthetic soft tissue reactions seen in association with failed metal on metal hip arthroplasties , 2012, Journal of Clinical Pathology.
[40] M. Shie,et al. The role of silicon in osteoblast-like cell proliferation and apoptosis. , 2011, Acta biomaterialia.
[41] M. Innocenti,et al. The 5-year Results of an Oxidized Zirconium Femoral Component for TKA , 2010, Clinical orthopaedics and related research.
[42] P. Hodgson,et al. Cytotoxicity of Titanium and Titanium Alloying Elements , 2010, Journal of dental research.
[43] L. Hovy,et al. Präklinische Ergebnisse beschichteter Knieimplantate für Allergiker , 2010, Der Orthopäde.
[44] N. Hallab. A review of the biologic effects of spine implant debris: Fact from fiction , 2009, SAS Journal.
[45] Ron Waksman,et al. Short-term effects of biocorrodible iron stents in porcine coronary arteries. , 2008, Journal of interventional cardiology.
[46] Philipp Beerbaum,et al. Long-term biocompatibility of a corrodible peripheral iron stent in the porcine descending aorta. , 2006, Biomaterials.
[47] C. W. Chen,et al. The affinity of Si-N and Si-C bonding in amorphous silicon carbon nitride (a-SiCN) thin film , 2005 .
[48] M. Peuster,et al. A novel approach to temporary stenting: degradable cardiovascular stents produced from corrodible metal—results 6–18 months after implantation into New Zealand white rabbits , 2001, Heart.