« Previous
Next »
Dental Materials
Volume 26, Issue 10
, Pages 974-992
, October 2010
Apatite formation on bioactive calcium-silicate cements for dentistry affects surface topography and human marrow stromal cells proliferation
References
- . Hydration, setting and hardening of portland cement. In: Hewlett PC editors. Lea's chem cem concr.. 4th ed.. Oxford: Butterworth–Heinemann; 2007;p. 241–297
- . Hydration mechanisms of mineral trioxide aggregate. Int Endod J. 2007;40:462–470
- . Characterization of hydration products of mineral trioxide aggregate. Int Endod J. 2008;41:408–417
- . A prospective clinical study of periradicular surgery using mineral trioxide aggregate as a root-end filling. J Endod. 2008;34:660–665
- . Mineral trioxide aggregate as repair material for furcal perforation: case series. J Endod. 2008;34:1130–1133
- . Clinical outcomes of artificial root-end barriers with mineral trioxide aggregate in teeth with immature apices. J Endod. 2008;34:812–817
- . Calcium silicate coating derived from portland cement as treatment for hypersensitive dentine. J Dent. 2008;36:565–578
- . Physicochemical basis of the biologic properties of mineral trioxide aggregate. J Endod. 2005;31:97–100
- . Elemental analysis of crystal precipitates from gray and white MTA. J Endod. 2006;32:425–428
- . A preliminary investigation of the in vitro bioactivity of white portland cement. Cem Concr Res. 2007;37:1518–1523
- . Vibrational study on the bioactivity of portland cement-based materials for endodontic use. J Mol Struct. 2009;924–926:548–554
- . Hydroxyapatite/SiO2–CaO–P2O5 glass materials: in vitro bioactivity and biocompatibility. Acta Biomater. 2006;2:331–342
- . The influence of the phosphorus content on the bioactivity of sol–gel glass ceramics. Biomaterials. 2005;26:475–483
- . New hydraulic cements based on α-tricalcium phosphate-calcium sulphate dehydrate mixtures. Biomaterials. 2004;25:741–749
- . Effect of the particle size on the micro and nanostructural features of a calcium phosphate cement: a kinetic analysis. Biomaterials. 2004;25:3453–3462
- . In: Ghosh SN editors. Cement and concrete science and technology. ABI Books; 1992;
- . New portland cement-based materials for endodontics mixed with articaine solution: a study of cellular response. J Endod. 2008;34:39–44
- Innovative silicate-based cements for endodontics: a study of osteoblast-like cell response. J Biomed Mater Res. 2008;87A:477–486
- ASTM International C266-07. Standard test method for time of setting of hydraulic cement paste by Gillmore needles; 2007.
- ADA specifications. Endodontic filling and sealing materials: laboratory testing materials; 2008.
- . The effect of adsorbed serum proteins, RGD and proteoglycan-binding peptides on the adhesion of mesenchymal stem cells to hydroxyapatite. Biomaterials. 2007;28:383–392
- . A Fourier transform infrared spectroscopic investigation of the early hydration of portland cement and the influence of sodium lignosulfonate. Cem Concr Res. 2000;30:267–273
- . The application of Raman spectrometry to investigate and characterize cement, Part I: a review. Cem Concr Res. 2006;36:656–662
- . Micro-Raman spectroscopy in white portland cement hydration: long-term study at room temperature. J Raman Spectrosc. 2006;37:555–561
- . Physical and chemical properties of a new root-end filling material. J Endod. 1995;21:349–353
- . The use of a setting accelerator and its effect on pH and calcium ion release of mineral trioxide aggregate and white portland cement. J Endod. 2006;32:1194–1197
- . The influence of calcium chloride on the setting time, solubility disintegration, and pH of mineral trioxide aggregate and white portland cement with a radiopacifier. J Endod. 2009;35:550–554
- . An evaluation of accelerated portland cement as a restorative material. Biomaterials. 2002;23:4001–4010
- . The effects of various additives on setting properties of MTA. J Endod. 2006;32:569–572
- . Calcium phosphate phase transformation produced by the interaction of the portland cement component of white mineral trioxide aggregate with a phosphate-containing solution. J Endod. 2007;33:1347
- . ESEM–EDX and Raman techniques to study ProRoot MTA and calcium-silicate cements in wet conditions and in real-time. J Endod. 2010;36:851–857
- . Ageing of calcium silicate cements for endodontic use in simulated body fluids: a micro-Raman study. J Raman Spectrosc. 2009;40:1858–1866
- . Novel fast-setting calcium silicate bone cements with high bioactivity and enhanced osteogenesis in vitro. J Mater Chem. 2009;19:1183–1190
- . Coating bone-like apatite onto organic substrates using solutions mimicking body fluids. J Tissue Eng Regen Med. 2007;1:33–38
- . How useful is SBF in predicting in vivo bone bioactivity?. Biomaterials. 2006;27:2907–2915
- A template route to the preparation of mesoporous amorphous calcium silicate with high in vitro bone-forming bioactivity. J Biomed Mater Res B: Appl Biomater. 2007;83B:431–439
- . Sodium silicate gel as a precursor for the in vitro nucleation and growth of a bone-like apatite coating in compact and porous polymeric structures. Biomaterials. 2003;24:2575–2584
- . Ultrastructural comparison of dissolution and apatite precipitation on hydroxyapatite and silicon-substituted hydroxyapatite in vitro and in vivo. J Biomed Mater Res. 2004;A 15/16(4):670–679
- . Nanoscale characterization of the interface between bone and hydroxyapatite implants and the effect of silicon on bone apposition. Micron. 2006;37:681–688
- . In vitro dissolution of melt-derived 45S5 and sol–gel derived 58S bioactive glasses. J Biomed Mater Res. 2002;61:301–311
- . Effect of hydroxylapatite coating crystallinity on biosolubility, cell attachment efficiency and proliferation in vitro. Biomaterials. 1999;20:977–985
- . Effect of sintered silicate-substituted hydroxyapatite on remodeling process at the bone–implant interface. Biomaterials. 2004;25:3303–3314
- . Proliferation and gene expression of osteoblasts cultured in DMEM containing the ionic products of dicalcium silicate coating. Biomed Pharmacother. 2009;63:650–657
- the effect of calcium ion concentration on osteoblast viability, proliferation and differentiation in monolayer and 3D culture. Biomaterials. 2005;26:4847–4855
- Influence of ionic dissolution products of dicalcium silicate coating on osteoblastic proliferation, differentiation and gene expression. Acta Biomater. 2009;5:1284–1293
- . A comparative study on the in vivo behaviour of hydroxyapatite granules. J Mater Sci: Mater Med. 2002;13:1199–1206
- . Extracellular matrix formation and mineralization on a phosphate-free porous bioactive glass scaffold using primary human osteoblast (HOB) cells. Biomaterials. 2007;28:1653–1663
- . Reactivity of alfa-tricalcium phosphate. J Mater Sci. 2002;37:963–969
- . The induction of heme oxygenase-1 modulates bismuth-oxide-induced cytotoxicity in human dental pulp cells. J Endod. 2007;33:1342–1346
- . Evaluation of the radiopacity and cytotoxicity of portland cements containing bismuth oxide. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2008;105:54–57
- . Cytotoxicity of MTA and portland cement on human ECV 304 endotelial cells. Int Endod J. 2005;38:604–609
- . Effects of mineral trioxide aggregate (MTA) extracts on mitogen-activated protein kinase activity in human osteosarcoma cell line (U2OS). Biomaterials. 2003;24:3909–3913
- . Biocompatibility of human osteosarcoma cells to root end filling materials. J Biomed Mater Res Part B. 2005;72B:140–145
PII: S0109-5641(10)00161-2
doi: 10.1016/j.dental.2010.06.002
© 2010 Academy of Dental Materials. Published by Elsevier Inc. All rights reserved.
« Previous
Next »
Dental Materials
Volume 26, Issue 10
, Pages 974-992
, October 2010
