Kök Hüray Ilayda, Andreeva Tonya, Stammkötter Sebastian, Reinholdt Cindy, Akbas Osman, Jahn Anne, Gamon Florian, Fuest Sandra, Teschke Mirko, Schäfer Miriam, Müller Michael, Koch Alexander, Jung Ole, Barbeck Mike, Greuling Andreas, Smeets Ralf, Hermsdorf Jörg, Krastev Rumen, Junker Philipp, Stiesch Meike, Walther Frank
Leibniz University Hannover, Institute of Continuum Mechanics, Hannover, Germany.
Reutlingen University, Faculty of Life Sciences, Reutlingen, Germany.
Front Bioeng Biotechnol. 2025 Apr 7;13:1526873. doi: 10.3389/fbioe.2025.1526873. eCollection 2025.
In the field of biomedical implants, additively manufactured titanium alloys, particularly Ti-6Al-4V, hold significant potential due to their biocompatibility and mechanical properties. This study focuses on the characterization and modeling of additively manufactured Ti-6Al-4V alloy for dental and maxillofacial implants, emphasizing fatigue behavior, surface modification, and their combined effects on cyto- and osseocompatibility. Experimental methods, including tensile, compression, and fatigue testing, were applied alongside simulations to assess the long-term mechanical performance of the material. Surface properties were further modified through sandblasting and coating techniques to enhance cell adhesion and proliferation. By using in-vitro methods, the cytocompatibility of the coatings and materials was examined followed by in-vivo tests to determine osseocompatibility. Results demonstrated that appropriate surface roughness and modifications are essential in optimizing osseointegration, while the layer-by-layer additive manufacturing process influenced the fatigue life and stability. These findings contribute to the development of patient-specific implants, optimizing both mechanical integrity and biological integration for enhanced clinical outcomes. This work summarizes the investigations on additively manufactured Ti-6Al-4V alloy of the research unit 5250 "Mechanism-based characterization and modeling of permanent and bioresorbable implants with tailored functionality based on innovative , and methods" funded by the Germany Research Foundation (DFG).
在生物医学植入物领域,增材制造的钛合金,尤其是Ti-6Al-4V,因其生物相容性和机械性能而具有巨大潜力。本研究聚焦于用于牙科和颌面植入物的增材制造Ti-6Al-4V合金的表征与建模,重点关注疲劳行为、表面改性及其对细胞相容性和骨相容性的综合影响。采用了包括拉伸、压缩和疲劳测试在内的实验方法,并结合模拟来评估材料的长期机械性能。通过喷砂和涂层技术进一步改善表面性能,以增强细胞黏附和增殖。采用体外方法检测涂层和材料的细胞相容性,随后进行体内测试以确定骨相容性。结果表明,适当的表面粗糙度和改性对于优化骨整合至关重要,而逐层增材制造工艺会影响疲劳寿命和稳定性。这些发现有助于开发个性化植入物,优化机械完整性和生物整合性以提高临床效果。本工作总结了由德国研究基金会(DFG)资助的5250研究单元“基于创新的、 和 方法对具有定制功能的永久性和可生物吸收植入物进行基于机制的表征和建模”对增材制造Ti-6Al-4V合金的研究。