Molladavoodi Sara, DeWitte-Orr Stephanie J, Gregory Diane E
Department of Kinesiology and Physical Education Wilfrid Laurier University Waterloo Ontario Canada.
Department of Health Sciences Wilfrid Laurier University Waterloo Ontario Canada.
JOR Spine. 2022 Jan 31;5(1):e1193. doi: 10.1002/jsp2.1193. eCollection 2022 Mar.
Disorders of the intervertebral disc (IVD) are widely known to result in low back pain; one of the most common debilitating conditions worldwide. As a multifaceted condition, both inflammatory environment and mechanical factors can play a crucial role in IVD damage, and in particular, in the annulus fibrosus (AF), the highly collagenous outer ring of the IVD. As a result, a better understanding of how cells from the IVD, and specifically the AF, interact and respond to their environment is imperative.
The goal of this study is to use collagen type I as an in vitro three-dimensional extracellular matrix for AF cells of IVD and briefly examine both the cellular and mechanical effect of exposure to an inflammatory stimulant.
We utilized type I collagen as a 3D in vitro model material for culturing AF cells of Sprague Dawley rat tail IVDs.
We showed that the cultured cells are viable and metabolically active; these cells also induced a distinct and significant contraction on their collagen matrix. Furthermore, to demonstrate potential versatility of our model our model and its versatility, we used lipopolysaccharide (LPS), as a known inflammatory stimulant in IVDs, to manipulate the cells and their interaction. LPS treatment resulted in detectable changes to the contraction cells induced on the collagen matrix and affected the mechanical properties of these constructs.
众所周知,椎间盘(IVD)疾病会导致下背痛,这是全球最常见的使人衰弱的病症之一。作为一种多方面的病症,炎症环境和机械因素在IVD损伤中都可能起关键作用,尤其是在椎间盘高度胶原化的外环纤维环(AF)中。因此,更深入地了解IVD细胞,特别是AF细胞如何与周围环境相互作用并做出反应势在必行。
本研究的目标是使用I型胶原作为IVD的AF细胞的体外三维细胞外基质,并简要研究暴露于炎症刺激物后的细胞效应和力学效应。
我们利用I型胶原作为三维体外模型材料,培养Sprague Dawley大鼠尾巴IVD的AF细胞。
我们发现培养的细胞具有活性且代谢活跃;这些细胞还使其胶原基质发生明显且显著的收缩。此外,为了证明我们模型的潜在通用性及其通用性,我们使用脂多糖(LPS)作为IVD中已知的炎症刺激物来处理细胞及其相互作用。LPS处理导致胶原基质上诱导的细胞收缩发生可检测到的变化,并影响这些构建体的力学性能。