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Theoretical Explorations Generate New Hypotheses About the Role of the Cartilage Endplate in Early Intervertebral Disk Degeneration

机译:理论探索产生关于软骨终板在早期椎间盘退变中作用的新假设

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摘要

Altered cell nutrition in the intervertebral disk (IVD) is considered a main cause for disk degeneration (DD). The cartilage endplate (CEP) provides a major path for the diffusion of nutrients from the peripheral vasculature to the IVD nucleus pulposus (NP). In DD, sclerosis of the adjacent bony endplate is suggested to be responsible for decreased diffusion and disk cell nutrition. Yet, experimental evidence does not support this hypothesis. Hence, we evaluated how moderate CEP composition changes related to tissue degeneration can affect disk nutrition and cell viability. A novel composition-based permeability formulation was developed for the CEP, calibrated, validated, and used in a mechano-transport finite element IVD model. Fixed solute concentrations were applied at the outer surface of the annulus and the CEP, and three cycles of daily mechanical load were simulated. The CEP model indicated that CEP permeability increases with the degeneration/aging of the tissue, in accordance with recent measurements reported in the literature. Additionally, our results showed that CEP degeneration might be responsible for mechanical load-induced NP dehydration, which locally affects oxygen and lactate levels, and reduced glucose concentration by 16% in the NP-annulus transition zone. Remarkably, CEP degeneration was a condition sine-qua-non to provoke cell starvation and death, while simulating the effect of extracellular matrix depletion in DD. This theoretical study cast doubts about the paradigm that CEP calcification is needed to provoke cell starvation, and suggests an alternative path for DD whereby the early degradation of the CEP plays a key role.
机译:椎间盘(IVD)中细胞营养的改变被认为是导致椎间盘退变(DD)的主要原因。软骨终板(CEP)为营养物从周围血管向IVD髓核(NP)扩散提供了一条主要途径。在DD中,建议相邻骨端板的硬化导致扩散减少和椎间盘营养。然而,实验证据并不支持这一假设。因此,我们评估了与组织变性有关的适度CEP成分变化如何影响椎间盘营养和细胞活力。为CEP开发了一种新颖的基于成分的渗透性配方,并进行了校准,验证和用于机械传输有限元IVD模型中。将固定的溶质浓度施加在环和CEP的外表面,并模拟了三个每日机械负荷循环。根据文献报道的最新测量结果,CEP模型表明CEP渗透性随组织的变性/老化而增加。此外,我们的结果表明,CEP变性可能是机械负荷引起的NP脱水的原因,NP脱水会局部影响氧气和乳酸的水平,并使NP环过渡区的葡萄糖浓度降低16%。值得注意的是,CEP变性是引起细胞饥饿和死亡,同时模拟DD中细胞外基质耗竭效应的必要条件。这项理论研究令人怀疑是否需要CEP钙化来激发细胞饥饿,并为DD提出了另一种途径,即CEP的早期降解起着关键作用。

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