Gu Yong, Chen Liang, Niu Hai-Yun, Shen Xiao-Feng, Yang Hui-Lin
Department of Orthopaedic Surgery, The First Affiliated Hospital of Soochow University, China.
Department of Orthopaedic Surgery, The First Affiliated Hospital of Soochow University, China
J Biomater Appl. 2016 Mar;30(8):1251-60. doi: 10.1177/0885328215620067. Epub 2015 Dec 3.
To prepare a biomineralized nano silk fibroin film seeded with bone marrow stromal cells (BMSCs), and to evaluate its performance in spinal fusion.
The silk fibroin film was mineralized in a modified, simulated body fluid, seeded with BMSCs, and evaluated in a rat model of posterolateral lumbar fusion, compared with pure silk fibroin, silk fibroin/bone marrow stromal cells, mineralized silk fibroin, mineralized silk fibroin/bone marrow stromal cells, iliac crest bone, and no graft. After 12 weeks, all rats were sacrificed and underwent manual palpation, micro-CT scanning, biomechanical testing, and histology.
The infrared spectrum, X-ray diffraction, and scanning electron microscopy demonstrated deposition of mineral layers on the silk fibroin film surface. The fusion rate, bone volume, relative strength and stiffness, and histological score of the mineralized silk fibroin/bone marrow stromal cells were slightly lower than the autograft, but without any significant difference (p > 0.05). In addition, the mineralized silk fibroin was significantly greater in most parameters than the silk fibroin/bone marrow stromal cells (p < 0.05).
The mineralized silk fibroin resembles natural bone structurally, and the cellular and mineral layers of silk fibroin are both critical to bone regeneration. The ability to promote spinal fusion is enhanced when the mineralized silk fibroin is seeded with bone marrow stromal cells.
制备接种骨髓基质细胞(BMSCs)的生物矿化纳米丝素蛋白膜,并评估其在脊柱融合中的性能。
将丝素蛋白膜在改良的模拟体液中矿化,接种BMSCs,并在大鼠腰椎后外侧融合模型中进行评估,与纯丝素蛋白、丝素蛋白/骨髓基质细胞、矿化丝素蛋白、矿化丝素蛋白/骨髓基质细胞、髂嵴骨及未植入物进行比较。12周后,处死所有大鼠并进行手动触诊、显微CT扫描、生物力学测试和组织学检查。
红外光谱、X射线衍射和扫描电子显微镜显示丝素蛋白膜表面有矿化层沉积。矿化丝素蛋白/骨髓基质细胞的融合率、骨体积、相对强度和刚度以及组织学评分略低于自体移植,但无显著差异(p>0.05)。此外,矿化丝素蛋白在大多数参数上显著高于丝素蛋白/骨髓基质细胞(p<0.05)。
矿化丝素蛋白在结构上类似于天然骨,丝素蛋白的细胞层和矿化层对骨再生均至关重要。当矿化丝素蛋白接种骨髓基质细胞时,促进脊柱融合的能力增强。