Biphasic calcium phosphate scaffolds fabricated by direct write assembly: Mechanical, anti-microbial and osteoblastic properties
暂无分享,去创建一个
José M.F. Ferreira | Sandra I. Vieira | Pedro Miranda | Catarina F. Marques | J. Ferreira | P. Miranda | S. Vieira | A. Marote | C. F. Marques | S. Olhero | Fidel H. Perera | Ana Marote | Sónia Ferreira | Susana M. Olhero | F. H. Perera | S. Ferreira | S. C. Ferreira
[1] J. Ferreira,et al. Antibiotic-loaded Sr-doped porous calcium phosphate granules as multifunctional bone grafts , 2016 .
[2] Changsheng Liu,et al. Biomimetic porous scaffolds for bone tissue engineering , 2014 .
[3] D. Basu,et al. Systematic approach to treat chronic osteomyelitis through localized drug delivery system: bench to bed side. , 2013, Materials science & engineering. C, Materials for biological applications.
[4] José M.F. Ferreira,et al. A simple recipe for direct writing complex 45S5 Bioglass® 3D scaffolds , 2013 .
[5] H. Rehage,et al. Silver-doped calcium phosphate nanoparticles: synthesis, characterization, and toxic effects toward mammalian and prokaryotic cells. , 2013, Colloids and surfaces. B, Biointerfaces.
[6] R. G. Richards,et al. In search of an osteoblast cell model for in vitro research. , 2012, European cells & materials.
[7] Heungsoo Shin,et al. Biomimetic Scaffolds for Tissue Engineering , 2012 .
[8] Seog-Young Yoon,et al. In situ formation of biphasic calcium phosphates and their biological performance in vivo , 2012 .
[9] Eduardo Saiz,et al. Direct ink writing of highly porous and strong glass scaffolds for load-bearing bone defects repair and regeneration. , 2011, Acta biomaterialia.
[10] Stefania Galdiero,et al. Silver Nanoparticles as Potential Antiviral Agents , 2011, Molecules.
[11] J. Norato,et al. A computational and cellular solids approach to the stiffness-based design of bone scaffolds. , 2011, Journal of Biomechanical Engineering.
[12] Alexander M Seifalian,et al. Nanosilver as a new generation of nanoproduct in biomedical applications. , 2010, Trends in biotechnology.
[13] E. F. da Cruz e Silva,et al. Biological responses of brushite-forming Zn- and ZnSr- substituted beta-tricalcium phosphate bone cements. , 2010, European cells & materials.
[14] E. F. da Cruz e Silva,et al. In vitro performance assessment of new brushite-forming Zn- and ZnSr-substituted beta-TCP bone cements. , 2010, Journal of biomedical materials research. Part B, Applied biomaterials.
[15] A. W. Wagoner Johnson,et al. The influence of micropore size on the mechanical properties of bulk hydroxyapatite and hydroxyapatite scaffolds. , 2009, Journal of the mechanical behavior of biomedical materials.
[16] S. Hollister. Scaffold Design and Manufacturing: From Concept to Clinic , 2009, Advanced materials.
[17] M. Vallet‐Regí,et al. In vitro structural changes in porous HA/beta-TCP scaffolds in simulated body fluid. , 2009, Acta biomaterialia.
[18] C. Fan,et al. Anti-bacterial and cytotoxic properties of plasma sprayed silver-containing HA coatings , 2008, Journal of materials science. Materials in medicine.
[19] N. Jaffrezic‐Renault,et al. Biomaterial surface properties modulate in vitro rat calvaria osteoblasts response: Roughness and or chemistry? , 2008 .
[20] Debabrata Basu,et al. In vivo response of porous hydroxyapatite and beta-tricalcium phosphate prepared by aqueous solution combustion method and comparison with bioglass scaffolds. , 2008, Journal of biomedical materials research. Part B, Applied biomaterials.
[21] Y. Park,et al. Antibacterial Activity and Mechanism of Action of the Silver Ion in Staphylococcus aureus and Escherichia coli , 2008, Applied and Environmental Microbiology.
[22] Joseph Cesarano,et al. Robotic deposition of model hydroxyapatite scaffolds with multiple architectures and multiscale porosity for bone tissue engineering. , 2007, Journal of biomedical materials research. Part A.
[23] P. Brown,et al. Computer simulation of stoichiometric hydroxyapatite: Structure and substitutions , 2007 .
[24] Jin Man Kim,et al. In vitro and in vivo characteristics of PCL scaffolds with pore size gradient fabricated by a centrifugation method. , 2007, Biomaterials.
[25] Eduardo Saiz,et al. Sintering and robocasting of beta-tricalcium phosphate scaffolds for orthopaedic applications. , 2005, Acta biomaterialia.
[26] J. Lewis,et al. Concentrated hydroxyapatite inks for direct-write assembly of 3-D periodic scaffolds. , 2005, Biomaterials.
[27] D. Kaplan,et al. Porosity of 3D biomaterial scaffolds and osteogenesis. , 2005, Biomaterials.
[28] G. Daculsi,et al. A comparative study of biphasic calcium phosphate ceramics for human mesenchymal stem-cell-induced bone formation. , 2005, Biomaterials.
[29] S. Bose,et al. Nanocrystalline hydroxyapatite: micelle templated synthesis and characterization. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[30] S. Milz,et al. Characterization of osteosarcoma cell lines MG-63, Saos-2 and U-2 OS in comparison to human osteoblasts. , 2004, Anticancer research.
[31] J. Ferreira,et al. Influence of Characteristics of the Starting Hydroxyapatite Powders and of Deagglomeration Procedure, on Rheological Behaviour of HA Suspensions , 2004 .
[32] J. Leong,et al. In vivo cancellous bone remodeling on a strontium-containing hydroxyapatite (sr-HA) bioactive cement. , 2004, Journal of biomedical materials research. Part A.
[33] J. Chevalier,et al. Effect of micro- and macroporosity of bone substitutes on their mechanical properties and cellular response , 2003, Journal of materials science. Materials in medicine.
[34] M. Yashima,et al. Crystal structure analysis of β-tricalcium phosphate Ca3(PO4)2 by neutron powder diffraction , 2003 .
[35] J. P. LeGeros,et al. Biphasic calcium phosphate bioceramics: preparation, properties and applications , 2003, Journal of materials science. Materials in medicine.
[36] Joseph Cesarano,et al. Colloidal inks for directed assembly of 3-D periodic structures , 2002 .
[37] C. Rey,et al. Mechanisms of Action and Therapeutic Potential of Strontium in Bone , 2001, Calcified Tissue International.
[38] F. Cui,et al. A mechanistic study of the antibacterial effect of silver ions on Escherichia coli and Staphylococcus aureus. , 2000, Journal of biomedical materials research.
[39] A. Meunier,et al. Tissue-engineered bone regeneration , 2000, Nature Biotechnology.
[40] H. Klasen,et al. A historical review of the use of silver in the treatment of burns. II. Renewed interest for silver. , 2000, Burns : journal of the International Society for Burn Injuries.
[41] L Jiang,et al. Osteogenesis of Electrically Stimulated Bone Cells Mediated in Part by Calcium Ions , 1998, Clinical orthopaedics and related research.
[42] G. Daculsi,et al. Macroporous biphasic calcium phosphate ceramics: influence of five synthesis parameters on compressive strength. , 1996, Journal of biomedical materials research.
[43] S. Gogolewski,et al. Bone regeneration with resorbable polymeric membranes. III. Effect of poly(L-lactide) membrane pore size on the bone healing process in large defects. , 1996, Journal of biomedical materials research.
[44] D. Carter,et al. Tensile fracture of cancellous bone. , 1980, Acta orthopaedica Scandinavica.
[45] Pedro Miranda,et al. Effect of milling media on processing and performance of 13-93 bioactive glass scaffolds fabricated by robocasting , 2015 .
[46] José M.F. Ferreira,et al. Robocasting of 45S5 bioactive glass scaffolds for bone tissue engineering , 2014 .
[47] Nazma N. Inamdar,et al. Preparation, Properties, and Applications , 2013 .
[48] Amy J Wagoner Johnson,et al. A review of the mechanical behavior of CaP and CaP/polymer composites for applications in bone replacement and repair. , 2011, Acta biomaterialia.
[49] Fergal J O'Brien,et al. The effect of mean pore size on cell attachment, proliferation and migration in collagen-glycosaminoglycan scaffolds for bone tissue engineering. , 2010, Biomaterials.
[50] E. Saiz,et al. Direct write assembly of calcium phosphate scaffolds using a water-based hydrogel. , 2010, Acta biomaterialia.
[51] R. Torrecillas,et al. Synthesis and antimicrobial activity of a silver-hydroxyapatite nanocomposite , 2009 .
[52] S. Vieira,et al. Synthesis and Biological Evaluation of Novel Chalcone-Porphyrin Conjugates , 2009 .
[53] R. Barbosa,et al. Polyamide 66/Brazilian clay nanocomposites , 2009 .
[54] F. Korkusuz,et al. In vivo application of biodegradable controlled antibiotic release systems for the treatment of implant-related osteomyelitis. , 2001, Biomaterials.
[55] E. Salvati,et al. Palacos gentamicin for the treatment of deep periprosthetic hip infections. , 1994, Clinical orthopaedics and related research.
[56] A D Russell,et al. Antimicrobial activity and action of silver. , 1994, Progress in medicinal chemistry.
[57] J. Vacanti,et al. Tissue engineering : Frontiers in biotechnology , 1993 .
[58] M. Ashby,et al. Cellular solids: Structure & properties , 1988 .
[59] W. Weibull. A Statistical Distribution Function of Wide Applicability , 1951 .