College of Mechanical and Electrical Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi 710021, PR China.
College of Mechanical and Electrical Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi 710021, PR China.
Biomater Adv. 2024 Jul;161:213871. doi: 10.1016/j.bioadv.2024.213871. Epub 2024 Apr 26.
Drawing on the structure and components of natural bone, this study developed Mg-doped hydroxyapatite (Mg-HA) bioceramics, characterized by multileveled and oriented micro/nano channels. These channels play a critical role in ensuring both mechanical and biological properties, making bioceramics suitable for various bone defects, particularly those bearing loads. Bioceramics feature uniformly distributed nanogrooves along the microchannels. The compressive strength or fracture toughness of the Mg-HA bioceramics with micro/nano channels formed by single carbon nanotube/carbon fiber (CNT/CF) (Mg-HA(05-CNT/CF)) are comparable to those of cortical bone, attributed to a combination of strengthened compact walls and microchannels, along with a toughening mechanism involving crack pinning and deflection at nanogroove intersections. The introduction of uniform nanogrooves also enhanced the porosity by 35.4 %, while maintaining high permeability owing to the capillary action in the oriented channels. This leads to superior degradation properties, protein adsorption, and in vivo osteogenesis compared with bioceramics with only microchannels. Mg-HA(05-CNT/CF) exhibited not only high strength and toughness comparable to cortical bone, but also permeability similar to cancellous bone, enhanced cell activity, and excellent osteogenic properties. This study presents a novel approach to address the global challenge of applying HA-based bioceramics to load-bearing bone defects, potentially revolutionizing their application in tissue engineering.
本研究借鉴天然骨的结构和组成,开发了具有多层次和定向微/纳米通道的镁掺杂羟基磷灰石(Mg-HA)生物陶瓷。这些通道在确保机械和生物性能方面起着关键作用,使生物陶瓷适用于各种骨缺损,特别是承受负荷的骨缺损。生物陶瓷的微通道中均匀分布着纳米凹槽。具有由单根碳纳米管/碳纤维(CNT/CF)形成的微/纳米通道的 Mg-HA 生物陶瓷(Mg-HA(05-CNT/CF))的抗压强度或断裂韧性与皮质骨相当,这归因于强化的致密壁和微通道的组合,以及涉及纳米凹槽交叉处的裂纹钉扎和偏转的增韧机制。均匀纳米凹槽的引入还将孔隙率提高了 35.4%,同时由于定向通道中的毛细作用,保持了较高的渗透性。与仅具有微通道的生物陶瓷相比,这导致了更好的降解性能、蛋白质吸附和体内成骨。Mg-HA(05-CNT/CF)不仅表现出与皮质骨相当的高强度和韧性,而且还具有与松质骨相似的渗透性、增强的细胞活性和优异的成骨性能。本研究提出了一种新方法来解决将基于 HA 的生物陶瓷应用于承重骨缺损的全球挑战,可能会彻底改变它们在组织工程中的应用。