School of Biomedical Engineering, Faculty of Engineering and Information Technology, University of Technology Sydney, NSW, 2007, Australia.
Department of Mechanical engineering and Mechatronics, Ariel University, Ariel 407000, Israel.
Acta Biomater. 2023 Apr 1;160:164-175. doi: 10.1016/j.actbio.2023.02.019. Epub 2023 Feb 16.
Understanding the structure-function relationship in the intervertebral disk (IVD) is crucial for the development of novel tissue engineering strategies to regenerate IVD and the establishment of accurate computational models for low back pain research. A large number of studies have improved our knowledge of the mechanical and structural properties of the nucleus pulposus (NP) and annulus fibrosus (AF), two of the main regions in the IVD. However, few studies have focused on the AF-NP interface (transition zone; TZ). Therefore, the current study aims to, for the first time, characterize the cyclic and failure mechanical properties of the TZ region under physiological loading (1, 3, and 5%s strain rates) and investigate the structural integration mechanisms between the NP, TZ, and AF regions. The results of the current study reveal significant effects of region (NP, TZ, and AF) and strain rates (1, 3, and 5%s) on stiffness (p < 0.001). In addition, energy absorption is significantly higher for the AF compared to the TZ and NP (p <0.001) as well as between the TZ and NP (p <0.001). The current research finds adaptation, direct penetration, and entanglement between TZ and AF fibers as three common mechanisms for structural integration between the TZ and AF regions. STATEMENT OF SIGNIFICANCE: Despite a large number of studies that have mechanically, structurally, and biologically characterized the nucleus pulposus (NP) and annulus fibrosus (AF) regions, few studies have focused on the NP-AF interface region (known as Transition Zone; TZ) in the IVD; hence, our understanding of the TZ structure-function relationship is still incomplete. Of particular importance, the cyclic mechanical properties of the TZ, compared to the adjacent regions (NP and AF), are yet to be explored and the precise nature of the structural integration between the NP and AF via the TZ region is not yet known. The current study explores both the mechanical and structural properties of the TZ region to ultimately identify the mechanism of integration between the NP and AF.
了解椎间盘(IVD)的结构-功能关系对于开发新型组织工程策略来再生 IVD 以及建立用于腰痛研究的准确计算模型至关重要。大量研究提高了我们对核髓(NP)和纤维环(AF)这两个 IVD 主要区域的机械和结构特性的认识。然而,很少有研究关注 AF-NP 界面(过渡区;TZ)。因此,目前的研究旨在首次在生理负荷(1%、3%和 5%应变率)下对 TZ 区域的循环和失效力学特性进行表征,并研究 NP、TZ 和 AF 区域之间的结构整合机制。目前研究的结果表明,区域(NP、TZ 和 AF)和应变率(1%、3%和 5%)对刚度有显著影响(p < 0.001)。此外,AF 的能量吸收明显高于 TZ 和 NP(p < 0.001)以及 TZ 和 NP 之间(p < 0.001)。目前的研究发现,TZ 和 AF 纤维之间的适应、直接穿透和缠绕是 TZ 和 AF 区域之间结构整合的三种常见机制。意义声明:尽管有大量研究对核髓(NP)和纤维环(AF)区域进行了力学、结构和生物学表征,但很少有研究关注 IVD 中的 NP-AF 界面区域(称为过渡区;TZ);因此,我们对 TZ 的结构-功能关系的理解仍然不完整。特别重要的是,与相邻区域(NP 和 AF)相比,TZ 的循环力学特性尚未得到探索,并且 TZ 区域 NP 和 AF 之间的结构整合的确切性质尚不清楚。目前的研究探讨了 TZ 区域的力学和结构特性,最终确定了 NP 和 AF 之间整合的机制。