Department of Orthopedics, Changzheng Hospital, Naval Medical University, Shanghai, China.
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai, China.
Cell Cycle. 2023 May;22(10):1196-1214. doi: 10.1080/15384101.2023.2200291. Epub 2023 Apr 13.
Intervertebral disc degeneration (IVDD), a widely known contributor to low back pain (LBP), has been proved to be a global health challenging conundrum. Hesperidin (hesperetin-7-O-rutinoside, HRD) is a flavanone glycoside that belongs to the subgroup of citrus flavonoids with therapeutic effect on various diseases due to its anti-inflammatory, antioxidant properties. However, the effect of HRD on IVDD remains elusive. The human nucleus pulposus tissues were harvested for isolating human nucleus pulposus (HNP) cells to verify the expression of Nrf2. The biological effect of HRD on HNP cells were assessed in vitro, and the in vivo therapeutic effects of HRD were assessed in mice. Firstly, we found that the expression of Nrf2 was decreased with the progression of degeneration in degenerated human nucleus pulposus tissue. Subsequently, we confirmed that HRD could mitigate oxidative stress-induced ferroptosis in nucleus pulposus cells via enhancing the expression of Nrf2 axis and suppressing the NF-κB pathway to protect intervertebral disc from degeneration in vitro. Finally, the therapeutic effects of HRD were confirmed in vivo. The current study proved for the first time that HRD may protect HNP cells from degeneration by suppressing ferroptosis in an oxidative stress-dependent via enhancing the expression of Nrf2 and suppressing the NF-κB pathway. The evidence will provide a possible basis for future targeted treatment for IVDD.
椎间盘退行性病变(IVDD)是导致下腰痛(LBP)的一个众所周知的原因,已被证明是一个全球性的健康难题。橙皮苷(橙皮素-7-O-芸香糖苷,HRD)是一种类黄酮糖苷,属于柑橘类黄酮的亚组,由于其具有抗炎、抗氧化特性,对各种疾病具有治疗作用。然而,HRD 对 IVDD 的影响尚不清楚。从人类椎间盘组织中采集人椎间盘(HNP)细胞,以验证 Nrf2 的表达。体外评估 HRD 对 HNP 细胞的生物学效应,并在小鼠体内评估 HRD 的治疗效果。首先,我们发现 Nrf2 的表达随着退变人椎间盘组织退变的进展而降低。随后,我们证实 HRD 可以通过增强 Nrf2 轴的表达和抑制 NF-κB 通路来减轻核蛋白细胞中的氧化应激诱导的铁死亡,从而保护椎间盘免受体外退变。最后,在体内证实了 HRD 的治疗效果。本研究首次证明,HRD 可能通过抑制氧化应激依赖性铁死亡来保护 HNP 细胞免于退变,从而增强 Nrf2 的表达并抑制 NF-κB 通路。该证据将为 IVDD 的未来靶向治疗提供可能的依据。