Department of Spine Surgery, The Second Nanning People's Hospital,The Third Affiliated Hospital of Guangxi Medical University, Nanning, Guangxi, 530031, China.
Cell Mol Biol (Noisy-le-grand). 2024 Jun 5;70(6):192-198. doi: 10.14715/cmb/2024.70.6.29.
Intervertebral disc degeneration (IDD) is characterized by the decreased function and number of nucleus pulposus cells (NPCs) caused by excessive intervertebral disc (IVD) pressure. This research aims to provide novel insights into IDD prevention and treatment by clarifying the effect of andrographolide (ANDR) on IDD cell autophagy and oxidative stress under mechanical stress. Human primary NPCs were extracted from the nucleus pulposus tissue of non-IDD trauma patients. An IDD cell model was established by posing mechanical traction on NPCs. Through the construction of an IDD rat model, the influence of ANDR on IDD pathological changes was explored in vivo. The proliferation and autophagy of NPCs were decreased while the apoptosis rate and oxidative stress reaction were increased by mechanical traction. ANDR intervention obviously alleviated this situation. MiR-9 showed upregulated expression in IDD cell model, while FoxO3 and PINK1/Parkin were downregulated. Decreased proliferation and autophagy as well as enhanced apoptosis and oxidative stress response of NPCs were observed following miR-9 mimics and H89 intervention, while the opposite trend was observed after FoxO3 overexpression. FoxO3 is a direct target downstream miR-9. The in vivo experiments revealed that after ANDR intervention, the number of apoptotic cells in rat IVD tissue decreased and the autophagy increased. In conclusion, ANDR improves NPC proliferation, and autophagy, inhibits apoptosis and oxidative stress, and alleviates the pathological changes of IDD via the miR-9/FoxO3/PINK1/Parkin axis, which may be a new and effective treatment for IDD in the future.
椎间盘退变(IDD)的特征是由于椎间盘(IVD)压力过大,导致髓核细胞(NPC)的功能和数量减少。本研究旨在通过阐明穿心莲内酯(ANDR)在机械应力下对 IDD 细胞自噬和氧化应激的影响,为 IDD 的预防和治疗提供新的见解。从非 IDD 创伤患者的髓核组织中提取人原代 NPC。通过对 NPC 施加机械牵引,建立 IDD 细胞模型。通过构建 IDD 大鼠模型,在体内探索 ANDR 对 IDD 病理变化的影响。机械牵引导致 NPC 的增殖和自噬减少,而凋亡率和氧化应激反应增加。ANDR 干预明显缓解了这种情况。miR-9 在 IDD 细胞模型中呈现上调表达,而 FoxO3 和 PINK1/Parkin 则下调。miR-9 模拟物和 H89 干预后观察到 NPC 增殖和自噬减少,凋亡和氧化应激反应增强,而 FoxO3 过表达后观察到相反趋势。FoxO3 是 miR-9 的直接下游靶标。体内实验表明,ANDR 干预后,大鼠 IVD 组织中凋亡细胞数量减少,自噬增加。综上所述,ANDR 通过 miR-9/FoxO3/PINK1/Parkin 轴改善 NPC 的增殖和自噬,抑制凋亡和氧化应激,缓解 IDD 的病理变化,这可能是未来治疗 IDD 的一种新的有效方法。