Institute of Science and Technology for Ceramics, National Research Council, Faenza, Italy.
Belgian Ceramic Research Centre, Avenue Gouverneur Cornez 4, B-7000, Mons, Belgium.
J Mater Sci Mater Med. 2021 Jan 20;32(1):3. doi: 10.1007/s10856-020-06486-3.
Biomaterial science increasingly seeks more biomimetic scaffolds that functionally augment the native bone tissue. In this paper, a new concept of a structural scaffold design is presented where the physiological multi-scale architecture is fully incorporated in a single-scaffold solution. Hydroxyapatite (HA) and β-tricalcium phosphate (β-TCP) bioceramic scaffolds with different bioinspired porosity, mimicking the spongy and cortical bone tissue, were studied. In vitro experiments, looking at the mesenchymal stem cells behaviour, were conducted in a perfusion bioreactor that mimics the physiological conditions in terms of interstitial fluid flow and associated induced shear stress. All the biomaterials enhanced cell adhesion and cell viability. Cortical bone scaffolds, with an aligned architecture, induced an overexpression of several late stage genes involved in the process of osteogenic differentiation compared to the spongy bone scaffolds. This study reveals the exciting prospect of bioinspired porous designed ceramic scaffolds that combines both cortical and cancellous bone in a single ceramic bone graft. It is prospected that dual core shell scaffold could significantly modulate osteogenic processes, once implanted in patients, rapidly forming mature bone tissue at the tissue interface, followed by subsequent bone maturation in the inner spongy structure.
生物材料科学越来越多地寻求更仿生的支架,以功能性地增强天然骨组织。在本文中,提出了一种新的结构支架设计概念,其中生理多尺度结构完全纳入单个支架解决方案中。研究了具有不同仿生孔隙率的羟基磷灰石(HA)和β-磷酸三钙(β-TCP)生物陶瓷支架,模仿海绵骨和皮质骨组织。在体外实验中,在灌注生物反应器中观察间充质干细胞行为,该生物反应器在间质液流动和相关诱导剪切应力方面模拟生理条件。所有生物材料都增强了细胞黏附和细胞活力。与海绵骨支架相比,具有定向结构的皮质骨支架诱导了几个晚期基因的过表达,这些基因参与成骨分化过程。这项研究揭示了仿生多孔设计陶瓷支架的令人兴奋的前景,该支架将皮质骨和松质骨结合在单个陶瓷骨移植物中。预计双芯壳支架一旦植入患者体内,将显著调节成骨过程,在组织界面迅速形成成熟的骨组织,随后在内部松质结构中进行随后的骨成熟。