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软骨终板内力学微环境的见解:在维持椎间盘内环境稳定和正常功能中的新作用。

Insights into the mechanical microenvironment within the cartilaginous endplate: An emerging role in maintaining disc homeostasis and normal function.

作者信息

Xiang Pan, Luo Zong-Ping, Che Yan-Jun

机构信息

Department of Orthopaedics, The First Affiliated Hospital of SooChow University, Suzhou, Jiangsu, 215000, PR China.

Orthopedics and Sports Medicine Center, The Affiliated Suzhou Hospital of Nanjing Medical University, 242 Guangji Road, Suzhou, Jiangsu, 215008, PR China.

出版信息

Heliyon. 2024 May 11;10(10):e31162. doi: 10.1016/j.heliyon.2024.e31162. eCollection 2024 May 30.

Abstract

Biomechanical factors are strongly linked with the emergence and development of intervertebral disc degeneration (IVDD). The intervertebral disc (IVD), as a unique enclosed biomechanical structure, exhibits distinct mechanical properties within its substructures. Damage to the mechanical performance of any substructure can disrupt the overall mechanical function of the IVD. Endplate degeneration serves as a significant precursor to IVDD. The endplate (EP) structure, especially the cartilaginous endplate (CEP), serves as a conduit for nutrient and metabolite transport in the IVD. It is inevitably influenced by its nutritional environment, mechanical loading, cytokines and extracellular components. Currently, reports on strategies targeting the CEP for the prevention and treatment of IVDD are scarce. This is due to two primary reasons: first, limited knowledge of the biomechanical microenvironment surrounding the degenerated CEP cells; and second, innovative biological treatment strategies, such as implanting active cells (disc or mesenchymal stem cells) or modulating natural cell activity through the addition of therapeutic factors or genes to treat IVDD often overlook a critical aspect-the restoration of the nutrient supply function and mechanical microenvironment of the endplate. Therefore, restoring the healthy structure of the CEP and maintaining a stable mechanical microenvironment within the EP are crucial for the prevention of IVDD and the repair of degenerated IVDs. We present a comprehensive literature review on the mechanical microenvironment characteristics of cartilage endplates and their associated mechanical signaling pathways. Our aim is to provide valuable insights into the development and implementation of strategies to prevent IVDD by delaying or reversing CEP degeneration.

摘要

生物力学因素与椎间盘退变(IVDD)的发生和发展密切相关。椎间盘(IVD)作为一种独特的封闭生物力学结构,其亚结构具有不同的力学性能。任何亚结构的力学性能受损都可能破坏IVD的整体力学功能。终板退变是IVDD的重要先兆。终板(EP)结构,尤其是软骨终板(CEP),是IVD中营养物质和代谢产物运输的通道。它不可避免地受到其营养环境、机械负荷、细胞因子和细胞外成分的影响。目前,针对CEP预防和治疗IVDD的策略报道较少。这主要有两个原因:第一,对退变CEP细胞周围生物力学微环境的了解有限;第二,创新的生物治疗策略,如植入活性细胞(椎间盘或间充质干细胞)或通过添加治疗因子或基因来调节天然细胞活性以治疗IVDD,往往忽略了一个关键方面——终板营养供应功能和机械微环境的恢复。因此,恢复CEP的健康结构并维持EP内稳定的机械微环境对于预防IVDD和修复退变的IVD至关重要。我们对软骨终板的机械微环境特征及其相关机械信号通路进行了全面的文献综述。我们的目的是为通过延迟或逆转CEP退变来预防IVDD的策略的开发和实施提供有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc7c/11128916/9db03b156aa7/gr1.jpg

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