958 resultados para Biomimetic coating


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Titanium (Ti) plates were firstly treated to form various types of oxide layers on the surface and then immersed into simulated body fluid (SBF) to evaluate the apatite forming ability. The surface morphology and roughness of the different oxide layers were measured by atomic force microscopy (AFM), and the surface energies were determined based on the Owens-Wendt (OW) methods. It was found that Ti samples after Alkali-Heat treatment (AH) achieved the best apatite formation after soaking in SBF for 3 weeks, compared to those without treatment, thermal or H2O2 oxidation. Furthermore, contact angle measurement revealed that the oxide layer on the alkali-heat treated Ti samples possessed the highest surface energy. The results indicate that the apatite inducing ability of a titanium oxide layer is linked to its surface energy. Apatite nucleation is easier on a surface with a higher surface energy.

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The osseointegration of porous titanium implants was evaluated in the present work. Implants were fabricated from ASTM grade 2 titanium by a powder metallurgy method. Part of these implants were submitted to chemical and thermal treatment in order to deposit a biomimetic coating, aiming to evaluate its influence on the osseointegration of the implants. The implants were characterized by Scanning Electron Microscopy (SEM), Electron Dispersive X-Ray Spectroscopy (EDS) and Raman Spectroscopy. Three coated and three control (uncoated) implants were surgically inserted into thirty albino rabbits' left and right tibiae, respectively. Tibiae samples were submitted to histological and histomorphometric analyses, utilizing SEM, optical microscopy and mechanical tests. EDS results indicated calcium (Ca) and phosphorous (P) at the surface and Raman spectra exhibited an intense peak, characteristic of hydroxyapatite (HA). Bone neoformation was detected at the bone-implant interface and inside the pores, including the central ones. The mean bone neoformation percentage in the coated implants was statistically higher at 15 days, compared to 30 and 45 days. The mechanical tests showed that coated implants presented higher resistance to displacement, especially after 30 and 45 days.

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Polymers that are used in clinical practice as bone-defect-filling materials possess many essential qualities, such as moldability, mechanical strength and biodegradability, but they are neither osteoconductive nor osteoinductive. Osteoconductivity can be conferred by coating the material with a layer of calcium phosphate, which can be rendered osteoinductive by functionalizing it with an osteogenic agent. We wished to ascertain whether the morphological and physicochemical characteristics of unfunctionalized and bovine-serum-albumin (BSA)-functionalized calcium-phosphate coatings were influenced by the surface properties of polymeric carriers. The release kinetics of the protein were also investigated. Two sponge-like materials (Helistat® and Polyactive®) and two fibrous ones (Ethisorb and poly[lactic-co-glycolic acid]) were tested. The coating characteristics were evaluated using state-of-the-art methodologies. The release kinetics of BSA were monitored spectrophotometrically. The characteristics of the amorphous and the crystalline phases of the coatings were not influenced by either the surface chemistry or the surface geometry of the underlying polymer. The mechanism whereby BSA was incorporated into the crystalline layer and the rate of release of the truly incorporated depot were likewise unaffected by the nature of the polymeric carrier. Our biomimetic coating technique could be applied to either spongy or fibrous bone-defect-filling organic polymers, with a view to rendering them osteoconductive and osteoinductive.

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Titanium surface texture and chemistry modification successfully improves the host response and consequently the bone-to-implant contact surrounding dental implants. The aim of the present study was to investigate, using histomorphometrical-analysis, the effects of titanium surface modification by laser-ablation (Nd:YAG) followed by thin chemical deposition of HA. Forty-eight rabbits received one implant by tibiae of AS-machined (MS), laser-modified (LMS), or biomimetic hydroxyapatite-coated (HA) surface. Bone-to-implant contact (BIC) and bone area (BBT) were evaluated after 4, 8, and 12 weeks, at cortical and cancellous regions. Average BIC in the cortical region was higher (P < 0.001) on the LMS and HA implants for all periods, with no differences between LMS and HA. For the cancellous area, the LMS and HA implants showed higher (P < 0.01) BIC than MS at the initial periods. The LMS and HA showed similar values in the cortical region, but a tendency of higher values for HA in the cancellous region was observed in all periods. For the BBT, the differences were found only between HA and MS after 4 weeks in the cortical region (P < 0.05), and after 12 weeks in the cancellous area (P < 0.05). Our results showed that HA biomimetic coating preceded by laser treatment induced the contact osteogenesis and allowed the formation of a more stable boneimplant interface, even in earlier periods. Microsc. Res. Tech., 2012. (C) 2012 Wiley Periodicals, Inc.

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Purpose: Considering the potential of the association between laser ablation and smaller scale hydroxyapatite (HA) coatings to create a stable and bioactive surface on titanium dental implants, the aim of the present study was to determine, by the removal torque test, the effects of a surface treatment created by laser-ablation (Nd:YAG) and, later, thin deposition of HA particles by a chemical process, compared to implants with only laser-ablation and implants with machined surfaces.Materials and Methods: Forty-eight rabbits received I implant by tibia of the following surfaces: machined surface (MS), laser-modified surface (LMS), and biomimetic hydroxiapatite coated surface (HA). After 4, 8, and 12 weeks of healing, the removal torque was measured by a torque gauge. The surfaces studied were analyzed according to their topography, chemical composition, and roughness.Results: Average removal torque in each period was 23.28, 24.0, and 33.85 Ncm to MS, 33.0, 39.87, and 54.57 Ncm to LMS, and 55.42, 63.71 and 64.0 Ncm to HA. The difference was statistically significant (P < .05) between the LMS-MS and HA-MS surfaces in all periods of evaluation, and between LMS-HA to 4 and 8 weeks of healing. The surface characterization showed a deep, rough, and regular topography provided by the laser conditioning, that was followed by the HA coating.Conclusions: Based on these results, it was possible to conclude that the implants with laser surface modification associated with HA biomimetic coating can shorten the implant healing period by the increase of bone implant interaction during the first 2 months after implant placement. (C) 2009 American Association of Oral and Maxillofacial Surgeons J Oral Maxillofac Surg 67:1706-1715, 2009

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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The biomimetic coating technique can be used to deposit layers of calcium phosphate (CaP) on medical devices to improve their osteoconductivity and osseointegration.The inorganic layer generated is akin to mineralized bone matrix and can be degraded as such. The biomimetic coating technique involves the nucleation and growth of bone-like crystals on a pretreated substrate by immersing it in a supersaturated solution of CaP under physiological conditions of temperature (37°C) and pH (7.4). The method, originally developed by Kokubo and his co-workers in 1990, has since undergone improvement and refinement by several groups of investigators. Biomimetic coatings are valuable in that they can serve as a vehicle for the slow, sustained release of osteogenic agents at the site of implantation. This attribute is rendered possible by the near-physiological conditions under which these coatings are prepared, which permits the incorporation of bioactive agents into the inorganic crystal latticework rather than their superficial adsorption on preformed layers. In addition, the biomimetic coating technique can be applied to implants of an organic as well as of a metallic nature and to those with irregular surface geometries, which is not possible using conventional methodologies.

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AIM: This study investigated the ability of an osteoconductive biphasic scaffold to simultaneously regenerate alveolar bone, periodontal ligament and cementum. MATERIALS AND METHODS: A biphasic scaffold was built by attaching a fused deposition modelled bone compartment to a melt electrospun periodontal compartment. The bone compartment was coated with a calcium phosphate (CaP) layer for increasing osteoconductivity, seeded with osteoblasts and cultured in vitro for 6 weeks. The resulting constructs were then complemented with the placement of PDL cell sheets on the periodontal compartment, attached to a dentin block and subcutaneously implanted into athymic rats for 8 weeks. Scanning electron microscopy, X-ray diffraction, alkaline phosphatase and DNA content quantification, confocal laser microscopy, micro computerized tomography and histological analysis were employed to evaluate the scaffold's performance. RESULTS: The in vitro study showed that alkaline phosphatase activity was significantly increased in the CaP-coated samples and they also displayed enhanced mineralization. In the in vivo study, significantly more bone formation was observed in the coated scaffolds. Histological analysis revealed that the large pore size of the periodontal compartment permitted vascularization of the cell sheets, and periodontal attachment was achieved at the dentin interface. CONCLUSIONS: This work demonstrates that the combination of cell sheet technology together with an osteoconductive biphasic scaffold could be utilized to address the limitations of current periodontal regeneration techniques.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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The crystallization of hydroxyapatite (HA) in aqueous solution can be described by the mechanism ACP → OCP → HA. In this work, it was studied the influence of K+, Mg2+, SO4 2- AND CO3 2- ions in the formation of ACP and in its conversion to OCP, using biomimetic coatings on metallic substrates of commercially pure titanium (Ti c.p.). The results showed that Mg2+ and CO3 2- ions favored both the formation of ACP and its conversion to OCP. Differently, K+ and SO4 2- ions did not influence the formation of ACP and, consequently, interfered in the conversion to OCP.

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In der hier vorliegenden Dissertation wird die Entwicklung und Charakterisierung einer biomimetischen Beschichtung für Titanimplantatoberflächen, insbesondere Dentalimplantate, beschrieben. Ziel war es, die Adhäsion und Aktivität von Osteoblasten auf Titanoberflächen zu steigern und so eine Beschleunigung der Implantatintegration in das Knochengewebe zu erreichen. Hierfür wurde eine spezielle Art der biomimetischen Beschichtung entwickelt, bei der biotinyliertes Fibronektin (bFn) über Streptavidin auf eine biotinylierte TiOX-Modelloberfläche immobilisiert wurde. Die Biotinmodifizierung der TiOX-Oberfläche erfolgte hierbei über einen „Self-Assembly-Prozess“ durch sequenzielle Chemiesorption von N-(6-aminohexyl)aminopropyltrimethoxysilan sowie verschiedenen Sulfo-NHS-Biotin-Derivaten, welche den Aufbau einer Streptavidin-Monolage ermöglichten. Als ein wichtiges Resultat zeigte sich, dass die Streptavidin-Monolage effektiv die unspezifische Adsorption von Proteinen an die TiOX-Oberfläche unterbindet und hierdurch die Adhäsion von Osteoblasten auf dieser unterdrückt. Dies hat den Vorteil, dass auf eine antiadhäsive Basisbeschichtung, welche für eine spezifische Zellreaktion wichtig ist, verzichtet werden kann. Dieses osteoblastere Adhäsionsverhalten änderte sich signifikant nach Anbindung von bFn an die Streptavidin-Monolage, mit dem Ergebnis, einer drastischen Steigerung der Osteoblastenadhäsion. Weiterhin besaßen Osteoblasten auf diesen Oberflächen ein Proteinexpressionsmuster, das auf eine erhöhte Osteoinduktion schließen lässt. Es zeigte sich darüber hinaus eine verstärkte Zelladhäsion sowie eine Steigerung des osteoinduktiven Effekts auf Substraten, bei denen bFn über eine Streptavidin-Monolage immobilisiert wurde, gegenüber mit nativem Fibronektin (Fn) modifizierten TiOX-Oberflächen. Ein wesentlicher Schwerpunkt bestand daher in der Analyse der Zusammensetzung und Struktur der biomimetischen Beschichtung über „Surface Plasmon Spectroscopy“ und „Atomic Force Microscopy“. Diese ergab, dass bFn und natives Fn auf den jeweiligen Oberflächen eine unterschiedliche Konformation einnimmt. Im Gegensatz zu nativem Fn, das bei der Adsorption unter physiologischen Bedingungen auf TiOX-Oberflächen eine kompakte Konformation besitzt, nimmt bFn auf einer Streptavidin-Monolage eine entfaltete Konformation ein. Bei letzterer handelt es sich um dieselbe, welche Fn in vivo innerhalb der extrazellulären Matrix besitzt. Sie unterscheidet sich von der kompakten Fn-Konformation dahingehend, dass entlang der Fn-Achse weitere Proteinbindestellen zugänglich werden und hierdurch die Zellaffinität von Fn gesteigert wird. Die nachgewiesene Konformationsänderung kann somit als Grund für die gesteigerte Osteoblasten-Adhäsion und Aktivität auf Oberflächen mit bFn angenommen werden. Diese Kenntnisse konnten weiterhin für die Optimierung des biomimetischen Schichtsystems genutzt werden. So war es möglich, durch alternierendes Inkubieren der Biotin-aktivierten Oberfläche mit Streptavidin und bFn, ein Multilayersystem gezielt aufzubauen. Der Vorteil dieses Multilayersystems gegenüber einer einfachen Monolage aus bFn besteht in einer erhöhten Stabilität der biomimetischen Beschichtung, wodurch eine Anwendung in der Praxis erleichtert würde.

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In this paper nanocrystallite apatite coating on TiZr substrate was prepared by a biomimetic process. Surface morphology, thickness, crystalline phases a~nd bond strength of the coating were investigated by SEM, XRD and tensIle test, respectively. Results show that the apatite coating exhibIts a nanocrystalIite structure with similar stoichiometry to that of natural bone. The apatite layer becomes thicker with the increasing of the SBF immersion time and is firmly adhered to the substrate with the highest average bond strength of 15.5 MPa. This nanocrystallite apatite coating is expected to bond to surrounding bone tissue directly in vivo after implantation.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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