Department of Biomedical Materials Science, School of Biomedical Engineering, Third Military Medical University , Chongqing 400038, P. R. China.
ACS Appl Mater Interfaces. 2013 Nov 27;5(22):12036-44. doi: 10.1021/am4038432. Epub 2013 Nov 18.
Natural bone is a complex material with well-designed architecture. To achieve successful bone integration and regeneration, the constituent and structure of bone-repairing scaffolds need to be functionalized synergistically based on biomimetics. In this study, a hybrid membrane composed of chitosan (CS), sodium carboxymethyl cellulose (CMC), and nano-hydroxyapatite (n-HA) was curled in a concentric manner to generate an anisotropic spiral-cylindrical scaffold, with compositional and structural properties mimicking natural bone. After optimization in terms of morphology, hydrophilicity, swelling and degradation pattern, the osteoblast cells seeded on the membrane of 60 wt% n-HA exhibited the highest cell viability and osteocalcin expression. In vivo osteogenesis assessment revealed that the spiral-cylindrical architecture played a dominant role in bone regeneration and osseointegration. Newly formed bone tissue grew through the longitudinal direction of the cylinder-shaped scaffold bridging both ends of the defect, bone marrow penetrated the entire scaffold and formed a medullary cavity in the center of the spiral cylinder. This study for the first time demonstrates that the spiral-cylindrical scaffold can promote complete infiltration of bone tissues in vivo, leading to successful osteointegration and functional reconstruction of bone defects. It suggests that the biomimetic spiral-cylindrical scaffold could be a promising candidate for bone regeneration applications.
天然骨是一种具有精心设计结构的复杂材料。为了实现成功的骨整合和再生,基于仿生学,修复骨支架的组成和结构需要协同功能化。在这项研究中,壳聚糖 (CS)、羧甲基纤维素钠 (CMC) 和纳米羟基磷灰石 (n-HA) 的混合膜以同心圆的方式卷曲,形成具有仿生天然骨组成和结构特性的各向异性螺旋圆柱支架。在优化形态、亲水性、溶胀和降解模式后,在 60wt%n-HA 膜上接种的成骨细胞表现出最高的细胞活力和骨钙素表达。体内成骨评估表明,螺旋圆柱结构在骨再生和骨整合中起着主导作用。新形成的骨组织通过桥接缺损两端的圆柱状支架的纵向方向生长,骨髓渗透整个支架并在螺旋圆柱的中心形成髓腔。这项研究首次证明,螺旋圆柱支架可以促进骨组织在体内的完全渗透,从而成功实现骨整合和骨缺损的功能重建。这表明仿生螺旋圆柱支架可能是骨再生应用的有前途的候选物。