Wang Xianli, Wang Cheng, Chu Chenglin, Xue Feng, Li Jun, Bai Jing
School of Materials Science and Engineering, Southeast University, Jiangning, Nanjing, 211189, Jiangsu, China.
Jiangsu Key Laboratory for Advanced Metallic Materials, Jiangning, Nanjing, 211189, Jiangsu, China.
Bioact Mater. 2024 May 17;39:74-105. doi: 10.1016/j.bioactmat.2024.05.024. eCollection 2024 Sep.
Mg is a typical biodegradable metal widely used for biomedical applications due to its considerable mechanical properties and bioactivity. Biodegradable polymers have attracted great interest owing to their favorable processability and inclusiveness. However, it is challenging for the degradation rates of Mg or polymers to precisely match tissue repair processes, and the significant changes in local pH during degradation hinder tissue repair. The concept of combining Mg with polymers is proposed to overcome the shortcomings of materials, aiming to meet repair needs from various aspects such as mechanics and biology. Therefore, it is essential to systematically understand the behavior of biodegradable Mg/polymer composite (BMPC) from the design, manufacturing, mechanical properties, degradation, and biological effects. In this review, we elaborate on the design concepts and manufacturing strategies of high-strength BMPC, the "structure-function" relationship between the microstructures and mechanical properties of composites, the variation in the degradation rate due to endogenous and exogenous factors, and the establishment of advanced degradation research platform. Additionally, the interplay among composite components during degradation and the biological function of composites under non-responsive/stimuli-responsive platforms are also discussed. Finally, we hope that this review will benefit future clinical applications of "structure-function" integrated biomaterials.
镁是一种典型的可生物降解金属,因其具有相当可观的机械性能和生物活性而被广泛应用于生物医学领域。可生物降解聚合物因其良好的加工性能和包容性而备受关注。然而,镁或聚合物的降解速率要精确匹配组织修复过程具有挑战性,而且降解过程中局部pH值的显著变化会阻碍组织修复。提出将镁与聚合物结合的概念以克服材料的缺点,旨在从力学和生物学等各个方面满足修复需求。因此,从设计、制造、力学性能、降解和生物学效应等方面系统地了解可生物降解镁/聚合物复合材料(BMPC)的行为至关重要。在这篇综述中,我们详细阐述了高强度BMPC的设计概念和制造策略、复合材料微观结构与力学性能之间的“结构-功能”关系、内源性和外源性因素导致的降解速率变化以及先进降解研究平台的建立。此外,还讨论了降解过程中复合组分之间的相互作用以及非响应/刺激响应平台下复合材料的生物学功能。最后,我们希望这篇综述将有助于“结构-功能”一体化生物材料未来的临床应用。