Department of Biomedical Engineering, Columbia University, New York, NY, USA.
Department of Orthopedic Surgery, Columbia University Irving Medical Center, New York, NY, USA.
J Biomech. 2023 Mar;150:111491. doi: 10.1016/j.jbiomech.2023.111491. Epub 2023 Feb 11.
While the anabolic effects of mechanical loading on the intervertebral disc (IVD) have been extensively studied, inflammatory responses to loading have not been as well characterized. Recent studies have highlighted a significant role of innate immune activation, particularly that of toll-like receptors (TLRs), in IVD degeneration. Biological responses of intervertebral disc cells to loading depend on many factors that include magnitude and frequency. The goals of this study were to characterize the inflammatory signaling changes in response to static and dynamic loading of IVD and investigate the contributions of TLR4 signaling in response to mechanical loading. Rat bone-disc-bone motion segments were loaded for 3 hr under a static load (20 % strain, 0 Hz) with or without an additional low-dynamic (4 % dynamic strain, 0.5 Hz) or high-dynamic (8 % dynamic strain, 3 Hz) strain, and results were compared to unloaded controls. Some samples were also loaded with or without TAK-242, an inhibitor of TLR4 signaling. The magnitude of NO release into the loading media (LM) was correlated with the applied frequency and strain magnitudes across different loading groups. Injurious loading profiles, such as static and high-dynamic, significantly increased Tlr4 and Hmgb1 expression while this result was not observed in the more physiologically relevant low-dynamic loading group. TAK-242 co-treatment decreased pro-inflammatory expression in static but not dynamic loaded groups, suggesting that TLR4 plays a direct role in mediating inflammatory responses of IVD to static compression. Overall, the microenvironment induced by dynamic loading diminished the protective effects of the TAK-242, suggesting that TLR4 plays a direct role in mediating inflammatory responses of IVD to static loading injury.
虽然机械加载对椎间盘(IVD)的合成代谢作用已得到广泛研究,但对加载的炎症反应尚未得到很好的描述。最近的研究强调了先天免疫激活的重要作用,特别是 Toll 样受体(TLR)在 IVD 退变中的作用。椎间盘细胞对加载的生物学反应取决于许多因素,包括幅度和频率。本研究的目的是描述 IVD 静态和动态加载的炎症信号变化,并研究 TLR4 信号在机械加载中的作用。在静态加载(20%应变,0Hz)下,大鼠骨-椎间盘-骨运动节段加载 3 小时,或在静态加载下增加低动态(4%动态应变,0.5Hz)或高动态(8%动态应变,3Hz)加载,并将结果与未加载对照进行比较。一些样本还加载了 TLR4 信号抑制剂 TAK-242。向加载介质(LM)中释放的 NO 量与不同加载组中的施加频率和应变幅度相关。损伤性加载模式,如静态和高动态,显著增加了 Tlr4 和 Hmgb1 的表达,而在更具生理相关性的低动态加载组中未观察到这种结果。TAK-242 共同处理降低了静态加载组中的促炎表达,但对动态加载组没有影响,这表明 TLR4 在介导 IVD 对静态压缩的炎症反应中起直接作用。总的来说,动态加载引起的微环境降低了 TAK-242 的保护作用,这表明 TLR4 在介导 IVD 对静态加载损伤的炎症反应中起直接作用。