Sub-Micrometer Scale Surface Roughness of Titanium Reduces Fibroblasts Function

S. Migita, So Okuyama, Kunitaka Araki
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引用次数: 13

Abstract

Titanium and its alloys are conventionally used to produce medical devices, but their biocompatibility has not yet been optimized. Surface modification, especially control of the surface roughness of titanium, is one strategy for improving biocompatibility and providing effective binding to hard tissue. However, the soft tissue compatibility of metallic materials is currently poorly understood, and effective techniques for tight binding between metal surfaces and soft tissue are still under development. Therefore, we here investigated whether the surface roughness of titanium affects fibroblast adhesion and proliferation. Our results showed that a surface roughness of ∼100 nm reduces fibroblast function. On such surfaces, distinct focal adhesion was not observed. These findings improve the general understanding of the binding compatibility between soft tissues and metallic materials.
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亚微米级钛表面粗糙度降低成纤维细胞功能
钛及其合金通常用于制造医疗设备,但其生物相容性尚未得到优化。表面改性,特别是控制钛的表面粗糙度,是提高生物相容性和与硬组织有效结合的一种策略。然而,金属材料的软组织相容性目前尚不清楚,金属表面与软组织紧密结合的有效技术仍在开发中。因此,我们在此研究钛的表面粗糙度是否影响成纤维细胞的粘附和增殖。我们的研究结果表明,表面粗糙度约100 nm会降低成纤维细胞的功能。在这些表面上,没有观察到明显的黏附灶。这些发现提高了对软组织与金属材料之间的结合相容性的一般理解。
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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审稿时长
12 months
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