Sun Kaiqiang, Shi Yangyang, Yan Chen, Wang Shunmin, Han Linhui, Li Fudong, Xu Ximing, Wang Yuan, Sun Jingchuan, Kang Zijian, Shi Jiangang
Department of Orthopedic Surgery, Changzheng Hospital, Navy Medical University, Shanghai, 200003, P. R. China.
Department of Orthopedics, Naval Medical Center of PLA, Shanghai, 200052, P. R. China.
Adv Sci (Weinh). 2025 Jun;12(21):e2416149. doi: 10.1002/advs.202416149. Epub 2025 Apr 2.
The abnormal activation of the inflammatory microenvironment is frequently accompanied by metabolic changes that affect the development of various diseases. However, the relationship between metabolic reprogramming and intervertebral disc degeneration (IVDD) remains unclear. This study aims to reveal the metabolic changes in nucleus pulposus (NPCs) during IVDD and investigate the mechanism of glycolysis-derived lactate on NPCs. Single-cell RNA sequencing reveals that during IVDD, NPCs are characterized by excessively elevated glycolysis, and the resultant lactate causes the dysfunction of NPCs via ferroptosis activation. Mechanistically, lactate results in the transcription of Acyl-CoA Synthetase Long Chain Family Member 4 (ACSL4) via promoting Histon H3K18 lactylation. Interestingly, lactate can also increase the lactylation of ACSL4 at K412 site. In addition, lactate-induced decreased expression of Sirtuin-3 (SIRT3), and further cause the elevation of ACSL4 lactylation. Finally, animal experiments demonstrate that inhibiting glycolysis through gene silencing with adenoviral-associated viruses 9 (AAV9)-si-Ldha or chemical treatment using 2-deoxy-D-glucose can suppress lactate production and lactylation, thereby ameliorating ferroptosis and NPC dysfunction. The findings of this study indicate that lactate plays a crucial role in IVDD by activating ferroptosis and that interventions aimed at lactate production can offer a potential therapeutical option for patients with IVDD.
炎症微环境的异常激活常常伴随着影响各种疾病发展的代谢变化。然而,代谢重编程与椎间盘退变(IVDD)之间的关系仍不清楚。本研究旨在揭示IVDD过程中髓核细胞(NPCs)的代谢变化,并探讨糖酵解衍生的乳酸对NPCs的作用机制。单细胞RNA测序显示,在IVDD过程中,NPCs的特征是糖酵解过度升高,产生的乳酸通过激活铁死亡导致NPCs功能障碍。机制上,乳酸通过促进组蛋白H3K18乳酸化导致酰基辅酶A合成酶长链家族成员4(ACSL4)的转录。有趣的是,乳酸还可以增加ACSL4在K412位点的乳酸化。此外,乳酸诱导沉默调节蛋白3(SIRT3)表达降低,进而导致ACSL4乳酸化升高。最后,动物实验表明,通过腺相关病毒9(AAV9)-si-Ldha基因沉默抑制糖酵解或使用2-脱氧-D-葡萄糖进行化学处理可以抑制乳酸产生和乳酸化,从而改善铁死亡和NPCs功能障碍。本研究结果表明,乳酸通过激活铁死亡在IVDD中起关键作用,针对乳酸产生的干预措施可为IVDD患者提供潜在的治疗选择。