Multiscale Hierarchical Micro- and Nano-Surface Induced by High-Repetition-Rate Femtosecond Laser Promote Peri-Implant Osseointegration.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2025-01-21 DOI:10.1021/acsabm.4c01759
Weiwei Guo, Xu He, Jianye Song, Zhonghua Cao, Wenhui Hu, Yinghui Tan, Shiwu Dong, Yuncan Ma, Kun Wang
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Abstract

Micro- and nanomorphological modification and roughening of titanium implant surfaces can enhance osseointegration; however, the optimal morphology remains unclear. Laser processing of implant surfaces has demonstrated significant potential due to its precision, controllability, and environmental friendliness. Femtosecond lasers, through precise optimization of processing parameters, can modify the surface of any solid material to generate micro- and nanomorphologies of varying scales and roughness. Inspired by the multiscale micro- and nanostructures of natural bone tissue, this study employed a high-repetition-rate femtosecond laser to fabricate three distinct micro- and nanomorphologies on titanium implant surfaces, characterized by low (LTi), medium (MTi), and high (HTi) roughness, exhibiting multiscale coexistence. Comprehensive characterization of the modified surfaces included analysis of morphology, roughness, wettability, and elemental composition. Furthermore, in vitro and in vivo experiments were conducted to evaluate osteogenic differentiation and osseointegration capabilities. Results revealed that the HTi surface, exhibiting high roughness, presents a multiscale hierarchical micro- and nanostructure composed of micrometer-sized spheres, submicrometer-sized corrugations, and nanometer-sized particles. In vitro studies demonstrated that the HTi surface promoted earlier adhesion, spreading, and enhanced osteogenic differentiation of osteoblasts, while in vivo studies indicated improved bone formation and osseointegration. In conclusion, multiscale hierarchical micro- and nanosurfaces with high roughness generated by high-repetition-rate femtosecond laser processing hold considerable promise for titanium implant applications.

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高重复率飞秒激光诱导多尺度层次微纳米表面促进种植体周围骨整合。
钛种植体表面的微纳米形态修饰和粗化可以促进骨整合;然而,最佳形态仍不清楚。激光加工具有精度高、可控性好、环境友好等优点,具有广阔的应用前景。飞秒激光通过对加工参数的精确优化,可以修饰任何固体材料的表面,产生不同尺度和粗糙度的微纳米形态。受天然骨组织的多尺度微纳米结构的启发,本研究采用高重复率飞秒激光在钛种植体表面制备了三种不同的微纳米形态,其特征是低(LTi)、中(MTi)和高(HTi)粗糙度,表现出多尺度共存。对改性表面的综合表征包括形貌、粗糙度、润湿性和元素组成的分析。此外,还进行了体外和体内实验来评估成骨分化和骨整合能力。结果表明,HTi表面具有高粗糙度,呈现由微米级球体、亚微米级波纹和纳米级颗粒组成的多尺度层次微纳米结构。体外研究表明,HTi表面促进了成骨细胞的早期粘附、扩散和成骨分化,而体内研究表明,HTi表面促进了骨形成和骨整合。综上所述,高重复率飞秒激光加工产生的高粗糙度的多尺度分层微纳米表面在钛植入物中具有很大的应用前景。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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