Department of Biomedical Engineering, Washington University in St. Louis, United States.
Department of Orthopedic Surgery, Washington University School of Medicine, United States.
Acta Biomater. 2021 Sep 1;131:117-127. doi: 10.1016/j.actbio.2021.06.045. Epub 2021 Jul 4.
Degeneration of the intervertebral disc (IVD) is associated with significant biochemical and morphological changes that include a loss of disc height, decreased water content and decreased cellularity. Cell delivery has been widely explored as a strategy to supplement the nucleus pulposus (NP) region of the degenerated IVD in both pre-clinical and clinical trials, using progenitor or primary cell sources. We previously demonstrated an ability for a polymer-peptide hydrogel, serving as a culture substrate, to promote adult NP cells to undergo a shift from a degenerative fibroblast-like state to a juvenile-like NP phenotype. In the current study, we evaluate the ability for this peptide-functionalized hydrogel to serve as a bioactive system for cell delivery, retention and preservation of a biosynthetic phenotype for primary IVD cells delivered to the rat caudal disc in an anular puncture degeneration model. Our data suggest that encapsulation of adult degenerative human NP cells in a stiff formulation of the hydrogel functionalized with laminin-mimetic peptides IKVAV and AG73 can promote cell viability and increased biosynthetic activity for this population in 3D culture in vitro. Delivery of the peptide-functionalized biomaterial with primary rat cells to the degenerated IVD supported NP cell retention and NP-specific protein expression in vivo, and promoted improved disc height index (DHI) values and endplate organization compared to untreated degenerated controls. The results of this study suggest the physical cues of this peptide-functionalized hydrogel can serve as a supportive carrier for cell delivery to the IVD. STATEMENT OF SIGNIFICANCE: Cell delivery into the degenerative intervertebral disc has been widely explored as a strategy to supplement the nucleus pulposus. The current work seeks to employ a biomaterial functionalized with laminin-mimetic peptides as a cell delivery scaffold in order to improve cell retention rates within the intradiscal space, while providing the delivered cells with biomimetic cues in order to promote phenotypic expression and increase biosynthetic activity. The use of the in situ crosslinkable material integrated with the native IVD, presenting a system with adequate physical properties to support a degenerative disc.
椎间盘(IVD)退变与显著的生化和形态变化相关,包括椎间盘高度降低、水分减少和细胞减少。细胞输送已广泛应用于临床前和临床试验中,作为补充退变的 IVD 髓核(NP)区域的策略,使用祖细胞或原代细胞来源。我们之前证明,聚合物-肽水凝胶作为一种培养底物,能够促使成人 NP 细胞从退行性成纤维样状态向幼年 NP 表型转变。在目前的研究中,我们评估了这种肽功能化水凝胶作为细胞输送的生物活性系统的能力,用于保留和保持输送到大鼠尾部椎间盘环形穿刺退变模型中的原代 IVD 细胞的生物合成表型。我们的数据表明,将成人退行性人 NP 细胞包封在具有层粘连蛋白模拟肽 IKVAV 和 AG73 的刚性水凝胶配方中,可以促进该群体在体外 3D 培养中的细胞活力和增加生物合成活性。将肽功能化生物材料与原代大鼠细胞一起输送到退变的 IVD 中,支持 NP 细胞在体内保留和 NP 特异性蛋白表达,并与未经处理的退变对照相比,促进了椎间盘高度指数(DHI)值和终板组织的改善。这项研究的结果表明,这种肽功能化水凝胶的物理线索可以作为细胞输送到 IVD 的支持载体。意义声明:细胞输送到退变的椎间盘已广泛探索作为补充髓核的策略。目前的工作旨在使用层粘连蛋白模拟肽功能化的生物材料作为细胞输送支架,以提高细胞在椎间盘内的保留率,同时为输送的细胞提供仿生线索,以促进表型表达和增加生物合成活性。使用与天然 IVD 集成的可原位交联材料,提供具有足够物理性能的系统来支持退行性椎间盘。