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UV photofunctionalization promotes nano-biomimetic apatite deposition on titanium

机译:紫外线光官能化促进纳米仿生磷灰石在钛上的沉积

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Background: Although biomimetic apatite coating is a promising way to provide titanium with osteoconductivity, the efficiency and quality of deposition is often poor. Most titanium implants have microscale surface morphology, and an addition of nanoscale features while preserving the micromorphology may provide further biological benefit. Here, we examined the effect of ultraviolet (UV) light treatment of titanium, or photofunctionalization, on the efficacy of biomimetic apatite deposition on titanium and its biological capability. Methods and results: Micro-roughed titanium disks were prepared by acid-etching with sulfuric acid. Micro-roughened disks with or without photofunctionalization (20-minute exposure to UV light) were immersed in simulated body fluid (SBF) for 1 or 5 days. Photofunctionalized titanium disks were superhydrophilic and did not form surface air bubbles when immersed in SBF, whereas non-photofunctionalized disks were hydrophobic and largely covered with air bubbles during immersion. An apatite-related signal was observed by X-ray diffraction on photofunctionalized titanium after 1 day of SBF immersion, which was equivalent to the one observed after 5 days of immersion of control titanium. Scanning electron microscopy revealed nodular apatite deposition in the valleys and at the inclines of micro-roughened structures without affecting the existing micro-configuration. Micro-roughened titanium and apatite-deposited titanium surfaces had similar roughness values. The attachment, spreading, settling, proliferation, and alkaline phosphate activity of bone marrow-derived osteoblasts were promoted on apatite-coated titanium with photofunctionalization. Conclusion: UV-photofunctionalization of titanium enabled faster deposition of nanoscale biomimetic apatite, resulting in the improved biological capability compared to the similarly prepared apatite-deposited titanium without photofunctionalization. Photofunctionalization-assisted biomimetic apatite deposition may be a novel method to effectively enhance micro-roughened titanium surfaces without altering their microscale morphology.
机译:背景:尽管仿生磷灰石涂层是使钛具有骨传导性的一种有前途的方法,但沉积的效率和质量通常很差。大多数钛植入物具有微观尺度的表面形态,并且在保留微观形态的同时增加纳米尺度的特征可能会提供进一步的生物学益处。在这里,我们检查了钛的紫外线(UV)处理或光功能化对仿生磷灰石在钛上沉积的功效及其生物学功能的影响。方法和结果:用硫酸酸蚀制备了微粗糙度钛盘。将带有或不带有光功能化功能的微粗糙光盘(暴露于紫外线下20分钟)浸入模拟体液(SBF)中1或5天。光功能化的钛圆片具有超亲水性,浸入SBF时不会形成表面气泡,而非光功能化的钛圆片则具有疏水性,并且在浸入过程中大部分被气泡覆盖。 SBF浸入1天后,通过X射线衍射在光官能化钛上观察到磷灰石相关信号,该信号相当于对照钛浸入5天后观察到的信号。扫描电子显微镜显示在微粗糙结构的谷部和倾斜处有球状磷灰石沉积,而没有影响现有的微结构。微粗糙化的钛和磷灰石沉积的钛表面具有相似的粗糙度值。带有磷官能团的磷灰石涂层钛促进了骨髓来源的成骨细胞的附着,扩散,沉降,增殖和碱性磷酸酶活性。结论:钛的紫外光功能化可以更快地沉积纳米级仿生磷灰石,与类似制备的未经光功能化的磷灰石沉积钛相比,其生物学功能得以改善。光官能化辅助仿生磷灰石沉积可能是一种有效的方法,可以有效地增强微粗糙化的钛表面而不改变其微观形貌。

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