The impact of heat treatment on interactions of contact-poled biphasic calcium phosphates with proteins and cells.
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S. Tofail | O. Korostynska | S. Oswald | D. Scharnweber | U. Hempel | H. Wiesmann | N. Theilgaard | C. Wolf-Brandstetter | A. Gandhi | S. Clyens
[1] A. Bandyopadhyay,et al. Effect of electrical polarization and composition of biphasic calcium phosphates on early stage osteoblast interactions. , 2011, Journal of biomedical materials research. Part B, Applied biomaterials.
[2] A. Bandyopadhyay,et al. Electrically polarized biphasic calcium phosphates: adsorption and release of bovine serum albumin. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[3] K. Yamashita,et al. Enhancement of nerve regeneration along a chitosan nanofiber mesh tube on which electrically polarized beta-tricalcium phosphate particles are immobilized. , 2010, Acta biomaterialia.
[4] K. Yamashita,et al. Electrical Polarization of β‐Tricalcium Phosphate Ceramics , 2010 .
[5] L. A. Hidalgo-Bastida,et al. Polarization of hydroxyapatite: influence on osteoblast cell proliferation. , 2010, Acta biomaterialia.
[6] Sergey V. Dorozhkin,et al. Bioceramics of calcium orthophosphates. , 2010, Biomaterials.
[7] S. Oswald,et al. How is wettability of titanium surfaces influenced by their preparation and storage conditions? , 2010, Journal of materials science. Materials in medicine.
[8] A. Bandyopadhyay,et al. Electrically polarized HAp-coated Ti: in vitro bone cell-material interactions. , 2010, Acta biomaterialia.
[9] K. Yamashita,et al. Polarization and microstructural effects of ceramic hydroxyapatite electrets , 2010 .
[10] Wei Wang,et al. Comparison of enhancement of bone ingrowth into hydroxyapatite ceramics with highly and poorly interconnected pores by electrical polarization. , 2009, Acta biomaterialia.
[11] K. Yamashita,et al. Surface electric fields increase osteoblast adhesion through improved wettability on hydroxyapatite electret. , 2009, ACS applied materials & interfaces.
[12] A. Lode,et al. In vitro osteogenic potential of human bone marrow stromal cells cultivated in porous scaffolds from mineralized collagen. , 2009, Journal of biomedical materials research. Part A.
[13] A. Bandyopadhyay,et al. Role of surface charge and wettability on early stage mineralization and bone cell-materials interactions of polarized hydroxyapatite. , 2009, Acta biomaterialia.
[14] K. Yamashita,et al. Polarized hydroxyapatite promotes spread and motility of osteoblastic cells. , 2009, Journal of biomedical materials research. Part A.
[15] Samuel I Stupp,et al. Biomimetic systems for hydroxyapatite mineralization inspired by bone and enamel. , 2008, Chemical reviews.
[16] M. Wieland,et al. The initial attachment and subsequent behavior regulation of osteoblasts by dental implant surface modification. , 2007, Journal of biomedical materials research. Part A.
[17] K. Yamashita,et al. Role of blood coagulation components as intermediators of high osteoconductivity of electrically polarized hydroxyapatite. , 2006, Journal of biomedical materials research. Part A.
[18] Miho Nakamura,et al. Enhanced bone ingrowth into hydroxyapatite with interconnected pores by Electrical Polarization. , 2006, Biomaterials.
[19] Newell R Washburn,et al. Combinatorial screen of the effect of surface energy on fibronectin-mediated osteoblast adhesion, spreading and proliferation. , 2006, Biomaterials.
[20] K-Y Lee,et al. Ceramic bioactivity: progresses, challenges and perspectives , 2006, Biomedical materials.
[21] S. Itoh,et al. Effect of Electrical Polarization of Hydroxyapatite Ceramics on New Bone Formation , 2006, Calcified Tissue International.
[22] F Rupp,et al. High surface energy enhances cell response to titanium substrate microstructure. , 2005, Journal of biomedical materials research. Part A.
[23] G. Daculsi,et al. A comparative study of biphasic calcium phosphate ceramics for human mesenchymal stem-cell-induced bone formation. , 2005, Biomaterials.
[24] Gerhard Ehninger,et al. Mesenchymal Stem Cells Can Be Differentiated Into Endothelial Cells In Vitro , 2004, Stem cells.
[25] K. Yamashita,et al. Effect of bone-like layer growth from culture medium on adherence of osteoblast-like cells. , 2003, Biomaterials.
[26] K. Yamashita,et al. Manipulation of selective cell adhesion and growth by surface charges of electrically polarized hydroxyapatite. , 2001, Journal of biomedical materials research.
[27] H. Takeda,et al. Proton transport polarization and depolarization of hydroxyapatite ceramics , 2001 .
[28] P. Tresco,et al. Relative importance of surface wettability and charged functional groups on NIH 3T3 fibroblast attachment, spreading, and cytoskeletal organization. , 1998, Journal of biomedical materials research.
[29] G. Whitesides,et al. Effect of Surface Wettability on the Adsorption of Proteins and Detergents , 1998 .
[30] E. Vogler,et al. Structure and reactivity of water at biomaterial surfaces. , 1998, Advances in colloid and interface science.
[31] Yoon,et al. Hydrophobic Interactions between Dissimilar Surfaces , 1997, Journal of colloid and interface science.
[32] K. Yamashita,et al. Acceleration and Deceleration of Bone-Like Crystal Growth on Ceramic Hydroxyapatite by Electric Poling , 1996 .
[33] H. Elwing,et al. Protein and detergent interaction phenomena on solid surfaces with gradients in chemical composition , 1990 .
[34] K. Yamashita,et al. Electrostatic surface charge acceleration of bone ingrowth of porous hydroxyapatite/beta-tricalcium phosphate ceramics. , 2010, Journal of biomedical materials research. Part A.
[35] U. Hempel,et al. Prostaglandin E2 affects differently the release of inflammatory mediators from resident macrophages by LPS and muramyl tripeptides. , 1999, Mediators of Inflammation.
[36] E. Vogler,et al. Water and the acute biological response to surfaces. , 1999, Journal of biomaterials science. Polymer edition.