Inorganic materials for bone repair or replacement applications.
暂无分享,去创建一个
[1] M. Vallet‐Regí,et al. Calcium phosphates as substitution of bone tissues , 2004 .
[2] Matthew J Dalby,et al. Increasing fibroblast response to materials using nanotopography: morphological and genetic measurements of cell response to 13-nm-high polymer demixed islands. , 2002, Experimental cell research.
[3] A. Cooper,et al. Synthesis of hierarchically porous silica and metal oxide beads using emulsion-templated polymer scaffolds , 2004 .
[4] M. Vallet‐Regí,et al. Sol−Gel Glasses as Precursors of Bioactive Glass Ceramics , 2003 .
[5] V. Sikavitsas,et al. Biomaterials and bone mechanotransduction. , 2001, Biomaterials.
[6] Aldo R Boccaccini,et al. PDLLA/Bioglass composites for soft-tissue and hard-tissue engineering: an in vitro cell biology assessment. , 2004, Biomaterials.
[7] Takashi Nakamura,et al. XPS study of the process of apatite formation on bioactive Ti—6Al—4V alloy in simulated body fluid , 2001 .
[8] Julian R Jones,et al. Optimising bioactive glass scaffolds for bone tissue engineering. , 2006, Biomaterials.
[9] P Ducheyne,et al. Bioactive ceramics: the effect of surface reactivity on bone formation and bone cell function. , 1999, Biomaterials.
[10] Evert Schepers,et al. In vivo tissue response to resorbable silica xerogels as controlled-release materials. , 2005, Biomaterials.
[11] Wolfram Höland,et al. Biocompatible and bioactive glass-ceramics — state of the art and new directions , 1997 .
[12] Larry L. Hench,et al. Bonding mechanisms at the interface of ceramic prosthetic materials , 1971 .
[13] C. Knabe,et al. Morphological evaluation of osteoblasts cultured on different calcium phosphate ceramics. , 1997, Biomaterials.
[14] Yuanming Zhang,et al. Synthesis of nano titania particles embedded in mesoporous SBA-15: characterization and photocatalytic activity. , 2006, Journal of hazardous materials.
[15] Mone Zaidi,et al. Mechanisms balancing skeletal matrix synthesis and degradation. , 2002, The Biochemical journal.
[16] A. Boccaccini,et al. Development and characterisation of silver-doped bioactive glass-coated sutures for tissue engineering and wound healing applications. , 2004, Biomaterials.
[17] David Hui,et al. A critical review on polymer-based bio-engineered materials for scaffold development , 2007 .
[18] Sylvia Turrell,et al. Microstructures and structural properties of sol-gel silica foams. , 2005, The journal of physical chemistry. B.
[19] Masakazu Kawashita,et al. Novel bioactive materials with different mechanical properties. , 2003, Biomaterials.
[20] E. Wintermantel,et al. Ceramic TiO2-foams: characterisation of a potential scaffold , 2004 .
[21] Swee Hin Teoh,et al. Fatigue of biomaterials: a review , 2000 .
[22] M. Vallet‐Regí,et al. Tissue regeneration: A new property of mesoporous materials , 2005 .
[23] L. Hench,et al. Properties of bioactive glasses and glass-ceramics , 1998 .
[24] K. Morsi,et al. Hot pressing of graded ultrafine-grained alumina bioceramics , 2004 .
[25] Pradip,et al. Effect of alcohol and polyglycol ether frothers on foam stability, bubble size and coal flotation , 2007 .
[26] María Vallet-Regí,et al. Ordered mesoporous materials in the context of drug delivery systems and bone tissue engineering. , 2006, Chemistry.
[27] Julian R. Jones,et al. Extracellular matrix formation and mineralization on a phosphate-free porous bioactive glass scaffold using primary human osteoblast (HOB) cells. , 2007, Biomaterials.
[28] Nicholas A. Kotov,et al. A floating self-assembly route to colloidal crystal templates for 3D cell scaffolds , 2005 .
[29] S. Teoh,et al. Development of nitrogen-containing nickel-free austenitic stainless steels for metallic biomaterials—review , 2004 .
[30] M. Ritala,et al. Influence of sol and surface properties on in vitro bioactivity of sol-gel-derived TiO2 and TiO2-SiO2 films deposited by dip-coating method. , 1998, Journal of biomedical materials research.
[31] B D Boyan,et al. Role of material surfaces in regulating bone and cartilage cell response. , 1996, Biomaterials.
[32] María Vallet-Regí,et al. Ordered Mesoporous Bioactive Glasses for Bone Tissue Regeneration , 2006 .
[33] M. Vallet‐Regí,et al. Drug confinement and delivery in ceramic implants. , 2007, Drug metabolism letters.
[34] I. Reaney,et al. Crystallization of Canasite/Frankamenite-Based Glass-Ceramics , 2004 .
[35] Besim Ben-Nissan,et al. Natural bioceramics: from coral to bone and beyond , 2003 .
[36] G. Stucky,et al. Biosilicates and biomimetic silicate synthesis , 1996 .
[37] Anna Tampieri,et al. Carbonated hydroxyapatite as bone substitute , 2003 .
[38] Si-yu Ni,et al. A novel bioactive porous CaSiO3 scaffold for bone tissue engineering. , 2006, Journal of biomedical materials research. Part A.
[39] Christian Rey,et al. Preparation, physical-chemical characterisation and cytocompatibility of calcium carbonate cements. , 2006, Biomaterials.
[40] L. Shrestha,et al. Aqueous foam stabilized by dispersed surfactant solid and lamellar liquid crystalline phase. , 2006, Journal of colloid and interface science.
[41] Jiaheng Lei,et al. NMR study of crystallization in MgO–CaO–SiO2–P2O5 glass-ceramics , 1998 .
[42] K. Anselme,et al. Tissue engineering and skeletal diseases. , 2000, Joint, bone, spine : revue du rhumatisme.
[43] R. Telle,et al. Bioactivation of inert alumina ceramics by hydroxylation. , 2005, Biomaterials.
[44] I. Reaney,et al. Effect of CaF2 and CaO Substituted for MgO on the Phase Evolution and Mechanical Properties of K‐Fluorrichterite Glass Ceramics , 2006 .
[45] Antonia Martínez,et al. Apatite nucleation on silica surface: A ζ potential approach , 2001 .
[46] H. Gies,et al. Synthesis and characterization of mesoporous MCM-48 containing TiO₂ nanoparticles , 2005 .
[47] K. Hing. Bone repair in the twenty–first century: biology, chemistry or engineering? , 2004, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[48] Hyunmin Kim,et al. Mechanism of biomineralization of apatite on a sodium silicate glass: TEM-EDX study in vitro , 2001 .
[49] S. Bagshaw. Morphosynthesis of macrocellular mesoporous silicate foams , 1999 .
[50] Alexander G Robling,et al. Biomechanical and molecular regulation of bone remodeling. , 2006, Annual review of biomedical engineering.
[51] A. Colin,et al. Inorganic monoliths hierarchically textured via concentrated direct emulsion and micellar templatesElectronic supplementary information (ESI) available: XRD profiles, nitrogen physisorption data and pore size distribution calculated from density functional theory, for the xSi-HIPE0.035 series. See h , 2004 .
[52] H. Imai,et al. Synthesis of mesoporous silica foams with hierarchical trimodal pore structures , 2003 .
[53] P. Hatton,et al. Influence of sodium oxide content on bioactive glass properties , 1999, Journal of materials science. Materials in medicine.
[54] I. Hasegawa,et al. SiO2–TiO2 porous materials prepared using (2-hydroxyethyl)trimethylammonium silicate as a silica source , 1999 .
[55] T. Troczynski,et al. Apatite formation on TiO2 anatase microspheres , 2003 .
[56] Hyunmin Kim,et al. Bioactivity of M2O–TiO2–SiO2 (M = Na, K) Glasses: An In vitro Evaluation , 1996 .
[57] Sumin Zhu,et al. Preparation and characterization of macroporous sol–gel bioglass , 2005 .
[58] Toshiaki Takezawa,et al. A strategy for the development of tissue engineering scaffolds that regulate cell behavior. , 2003, Biomaterials.
[59] S. Kalita,et al. Nanocrystalline calcium phosphate ceramics in biomedical engineering , 2007 .
[60] Abhay Pandit,et al. Fabrication methods of porous metals for use in orthopaedic applications. , 2006, Biomaterials.
[61] M. Vallet‐Regí,et al. Surface and Chemical Study of SiO2·P2O5·CaO·(MgO) Bioactive Glasses , 2000 .
[62] A. Sargeant,et al. Hip implants: Paper V. Physiological effects , 2006 .
[63] K. Shakesheff,et al. The influence of dispersant concentration on the pore morphology of hydroxyapatite ceramics for bone tissue engineering. , 2005, Biomaterials.
[64] M. Sayer,et al. Silicon substitution in the calcium phosphate bioceramics. , 2007, Biomaterials.
[65] G. Muzio,et al. Development of glass-ceramic scaffolds for bone tissue engineering: characterisation, proliferation of human osteoblasts and nodule formation. , 2007, Acta biomaterialia.
[66] B. Boyan,et al. Osteoblast response to bioactive glasses in vitro correlates with inorganic phosphate content. , 2004, Biomaterials.
[67] Ying Yang,et al. Controlling cell biomechanics in orthopaedic tissue engineering and repair. , 2005, Pathologie-biologie.
[68] J. I. Qazi,et al. Titanium alloys for biomedical applications , 2006 .
[69] L. Brinson,et al. A bioactive titanium foam scaffold for bone repair. , 2005, Acta biomaterialia.
[70] H.-M. Kim,et al. Ceramic bioactivity and related biomimetic strategy , 2003 .
[71] M. Vallet‐Regí,et al. Revisiting silica based ordered mesoporous materials: medical applications , 2006 .
[72] Bruno Carré,et al. Role of surfactant structure on surface and foaming properties , 2001 .
[73] Aldo R Boccaccini,et al. 45S5 Bioglass-derived glass-ceramic scaffolds for bone tissue engineering. , 2006, Biomaterials.
[74] J. Shea,et al. Skeletal function and structure: implications for tissue-targeted therapeutics. , 2005, Advanced drug delivery reviews.
[75] N. Miyata,et al. Apatite-forming ability and mechanical properties of PTMO-modified CaO-SiO2-TiO2 hybrids derived from sol-gel processing. , 2004, Biomaterials.
[76] Jonathan N Grauer,et al. Material considerations for intervertebral disc replacement implants. , 2004, The spine journal : official journal of the North American Spine Society.
[77] L. Hubert-Pfalzgraf,et al. Nanometric monodispersed titanium oxide particles on mesoporous silica: synthesis, characterization, and catalytic activity in oxidation reactions in the liquid phase , 2003 .
[78] J. Polak,et al. Ionic products of bioactive glass dissolution increase proliferation of human osteoblasts and induce insulin-like growth factor II mRNA expression and protein synthesis. , 2000, Biochemical and biophysical research communications.
[79] T. Goswami,et al. Review of wear mechanisms in hip implants: Paper II: ceramics IG004712 , 2004 .
[80] L. Hench. Sol-gel materials for bioceramic applications , 1997 .
[81] Tarun Goswami,et al. Hip implants – Paper VI – Ion concentrations , 2007 .
[82] Melba Navarro,et al. New macroporous calcium phosphate glass ceramic for guided bone regeneration. , 2004, Biomaterials.
[83] J A Planell,et al. Fabrication of low temperature macroporous hydroxyapatite scaffolds by foaming and hydrolysis of an alpha-TCP paste. , 2004, Biomaterials.
[84] T. Hanawa. In vivo metallic biomaterials and surface modification , 1999 .
[85] Panjian Li,et al. The electrochemistry of a glass surface and its application to bioactive glass in solution , 1990 .
[86] R. Backov,et al. Rational Design of Macrocellular Silica Scaffolds Obtained by a Tunable Sol–Gel Foaming Process , 2004 .
[87] Carlos M Mery,et al. Biomaterials: a primer for surgeons. , 2006, Seminars in pediatric surgery.
[88] A. Díaz,et al. Growth of hydroxyapatite in a biocompatible mesoporous ordered silica. , 2006, Acta biomaterialia.
[89] Tadashi Kokubo,et al. Structural dependence of apatite formation on titania gels in a simulated body fluid. , 2003, Journal of biomedical materials research. Part A.
[90] Matthew J Dalby,et al. Use of nanotopography to study mechanotransduction in fibroblasts--methods and perspectives. , 2004, European journal of cell biology.
[91] J. Ferreira,et al. Development of porous ceramic bodies for applications in tissue engineering and drug delivery systems , 2004 .
[92] J. Tossell,et al. Molecular Orbital Study of Apatite (Ca5(PO4)3OH) Nucleation at Silica Bioceramic Surfaces , 2000 .
[93] P. Chu,et al. In vitro bioactivity of plasma-sprayed TiO2 coating after sodium hydroxide treatment , 2006 .
[94] K. Katti,et al. Biomaterials in total joint replacement. , 2004, Colloids and surfaces. B, Biointerfaces.
[95] M Tanahashi,et al. Surface functional group dependence on apatite formation on self-assembled monolayers in a simulated body fluid. , 1997, Journal of biomedical materials research.
[96] Elliot P. Douglas,et al. Bone structure and formation: A new perspective , 2007 .
[97] J. Casci,et al. Meso-cellular silica foams, macro-cellular silica foams and mesoporous solids: a study of emulsion-mediated synthesis , 2005 .
[98] G. G. Niederauer,et al. Porous, resorbable, fiber-reinforced scaffolds tailored for articular cartilage repair. , 2001, Tissue engineering.
[99] J. Fages,et al. Biotechnology, material sciences and bone repair , 1998, European Journal of Orthopaedic Surgery & Traumatology.
[100] Takashi Nakamura,et al. Surface potential change in bioactive titanium metal during the process of apatite formation in simulated body fluid. , 2003, Journal of biomedical materials research. Part A.
[101] K. Inumaru,et al. Direct nanocomposite of crystalline TiO2 particles and mesoporous silica as a molecular selective and highly active photocatalyst. , 2005, Chemical communications.
[102] Stephen J. Haines,et al. Repairing Holes in the Head: A History of Cranioplasty , 1997 .