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首页> 外文期刊>Biomaterials >Increased osteoblast functions on theta plus delta nanofiber alumina
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Increased osteoblast functions on theta plus delta nanofiber alumina

机译:θ和δ纳米纤维氧化铝增强了成骨细胞功能

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Nanophase materials, or materials with grain sizes less than 100 nm in at least one direction, are promising materials for various implant applications since our tissues are composed of nanometer components (i.e., proteins and/or inorganics). Specifically, bone is comprised of nanostructured hydroxyapatite and collagen fibers which continuously provide an extracellular matrix surface to bone-forming cells (osteoblasts) with a high degree of nanometer roughness. Despite this fact, materials currently utilized for orthopedic implants, whether metallic or ceramic, have constituent grain sizes in the non-biologically inspired micron regime. For this reason, the objective of the present in vitro study was to determine osteoblast functions on one classification of nanomaterials for orthopedic applications: nanofiber alumina. Various crystalline forms of nanofiber alumina were tested in this study. To obtained different crystalline structured nanofiber alumina, boehmite nanofiber alumina was sintered at either 400degreesC, 600degreesC, 800degreesC, 1000degreesC, or 1200degreesC for 2 h in air. X-ray diffraction results provided evidence that boehmite nanofiber alumina remained boehmite when sintered at 400degreesC but changed crystalline phases to gamma, gamma + delta, theta + delta, and alpha when sintered at 600degreesC, 800degreesC, 1000degreesC, and 1200degreesC, respectively. Moreover, compared to any other alumina formulation tested in this study, osteoblast functions (as measured by alkaline phosphatase activity and calcium deposition) were the greatest on theta + delta crystalline phase nanofiber alumina after 14 days of culture. Boehmite had the next greatest amount of calcium deposition by osteoblasts followed by gamma + delta. Gamma crystalline phase then followed and was greater than alpha crystalline phase nanofiber alumina which promoted osteoblast functions the least of all the compacts with the exception of borosilicate glass (reference substrate). For this reason, this study suggests that theta + delta nanofiber alumina should be further investigated in orthopedic applications. (C) 2004 Elsevier Ltd. All rights reserved.
机译:纳米相材料或在至少一个方向上的晶粒尺寸小于100 nm的材料是有希望的材料,可用于各种植入物,因为我们的组织由纳米成分(即蛋白质和/或无机物)组成。具体地,骨骼由纳米结构的羟基磷灰石和胶原纤维组成,它们连续地以高的纳米粗糙度为形成骨的细胞(成骨细胞)提供细胞外基质表面。尽管如此,目前用于矫形外科植入物的材料,无论是金属的还是陶瓷的,在非生物激发的微米范围内具有组成的晶粒尺寸。因此,本体外研究的目的是确定用于整形外科应用的纳米材料的一种分类中的成骨细胞功能:纳米纤维氧化铝。在这项研究中测试了各种晶体形式的纳米纤维氧化铝。为了获得不同的晶体结构的纳米纤维氧化铝,勃姆石纳米纤维氧化铝在空气中在400℃,600℃,800℃,1000℃或1200℃下烧结2小时。 X射线衍射结果提供了证据,勃姆石纳米纤维氧化铝在400°C烧结时仍保留勃姆石,但分别在600°C,800°C,1000°C和1200°C烧结时将结晶相改变为γ,γ+δ,θ+δ和α。此外,与本研究中测试的任何其他氧化铝配方相比,培养14天后,成角+δ晶相纳米纤维氧化铝的成骨细胞功能(通过碱性磷酸酶活性和钙沉积测定)最大。勃姆石的钙沉积量次之于成骨细胞,其次是γ+δ。然后是γ晶相,并且比α晶相的纳米纤维氧化铝要大,后者能促进成骨细胞,除了硼硅酸盐玻璃(参考基质)以外,所有压坯中功能最少。因此,这项研究表明,在骨科应用中应进一步研究theta + delta纳米纤维氧化铝。 (C)2004 Elsevier Ltd.保留所有权利。

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