AO Research Institute Davos, Davos, Switzerland.
AO Research Institute Davos, Davos, Switzerland; Department of Orthopedic and Trauma Surgery, Freiburg University Medical Center, Freiburg, Germany.
Biomaterials. 2016 Apr;84:196-209. doi: 10.1016/j.biomaterials.2016.01.040. Epub 2016 Jan 21.
Nucleus pulposus (NP) replacement offers a minimally invasive alternative to spinal fusion or total disc replacement for the treatment of intervertebral disc (IVD) degeneration. This study aimed to develop a cytocompatible NP replacement material, which is feasible for non-invasive delivery and tunable design, and allows immediate mechanical restoration of the IVD. A bi-phasic polyurethane scaffold was fabricated consisting of a core material with rapid swelling property and a flexible electrospun envelope. The scaffold was assessed in a bovine whole IVD organ culture model under dynamic load for 14 days. Nucleotomy was achieved by incision through the endplate without damaging the annulus fibrosus. After implantation of the scaffold and in situ swelling, the dynamic compressive stiffness and disc height were restored immediately. The scaffold also showed favorable cytocompatibility for native disc cells. Implantation of the scaffold in a partially nucleotomized IVD down-regulated catabolic gene expression, increased proteoglycan and type II collagen intensity and decreased type I collagen intensity in remaining NP tissue, indicating potential to retard degeneration and preserve the IVD cell phenotype. The scaffold can be delivered in a minimally invasive manner, and the geometry of the scaffold post-hydration is tunable by adjusting the core material, which allows individualized design.
髓核(NP)置换为治疗椎间盘(IVD)退变提供了一种微创替代方法,可替代脊柱融合或全椎间盘置换。本研究旨在开发一种细胞相容性 NP 置换材料,其具有可行的非侵入性输送和可调设计,并能立即恢复 IVD 的机械完整性。构建了一种双相聚氨酯支架,由具有快速溶胀特性的芯材料和柔性静电纺丝包膜组成。在动态负载下对牛整个 IVD 器官培养模型进行了为期 14 天的评估。通过切开终板而不损伤纤维环来实现髓核切除术。植入支架并原位溶胀后,立即恢复了动态压缩刚度和椎间盘高度。该支架还显示出对天然椎间盘细胞的良好细胞相容性。在部分髓核切除的 IVD 中植入支架可下调分解代谢基因表达,增加蛋白聚糖和 II 型胶原强度,降低剩余 NP 组织中 I 型胶原强度,表明有潜力延缓退变并保持 IVD 细胞表型。该支架可以微创方式输送,通过调整芯材料可调整支架在水合后的几何形状,从而实现个体化设计。