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冬凌草甲素通过抑制 ROS 介导的 NF-κB 和 NFATc1 活性减轻去卵巢诱导的骨丢失和 RANKL 诱导的破骨细胞形成。

Dauricine attenuates ovariectomized-induced bone loss and RANKL-induced osteoclastogenesis via inhibiting ROS-mediated NF-κB and NFATc1 activity.

机构信息

The First Affiliated Hospital of Xiamen University-ICMRS Collaborating Center for Skeletal Stem Cells, State Key Laboratory of Cellular Stress Biology, School of Medicine, Xiamen University, Xiamen, Fujian, 361100, China; Xiamen Key Laboratory of Regeneration Medicine, Fujian Provincial Key Laboratory of Organ and Tissue Regeneration, School of Medicine, Xiamen University, Xiamen, 361100, China.

The First Affiliated Hospital of Xiamen University-ICMRS Collaborating Center for Skeletal Stem Cells, State Key Laboratory of Cellular Stress Biology, School of Medicine, Xiamen University, Xiamen, Fujian, 361100, China; Xiamen Key Laboratory of Regeneration Medicine, Fujian Provincial Key Laboratory of Organ and Tissue Regeneration, School of Medicine, Xiamen University, Xiamen, 361100, China; Department of Orthopedics, The Second Affiliated Hospital of Shantou University Medical College, Shantou University Medical College, Shantou, Guangdong, 515044, China.

出版信息

Phytomedicine. 2024 Jul;129:155559. doi: 10.1016/j.phymed.2024.155559. Epub 2024 Mar 20.

Abstract

BACKGROUND

Osteoclast plays an important role in maintaining the balance between bone anabolism and bone catabolism. The abnormality of osteoclast is closely related to osteolytic bone diseases such as osteoporosis, rheumatoid arthritis and tumor bone metastasis.

PURPOSE

We aim to search for natural compound that may suppress osteoclast formation and function.

STUDY DESIGN

In this study, we assessed the impact of Dauricine (Dau) on the formation and function of osteoclasts in vitro, as well as its potential in preventing bone loss in an ovariectomy mouse model in vivo.

METHODS

Multiple in vitro experiments were carried out, including osteoclastogenesis, podosomal belt formation, bone resorption assay, RNA-sequencing, real-time quantitative PCR, ROS level detection, surface plasmon resonance assay, luciferase assay and western blot. To verify the effect in vivo, an ovariectomized mouse model (OVX model) was constructed, and bone parameters were measured using micro-CT and histology. Furthermore, metabolomics analysis was performed on blood serum samples from the OVX model.

RESULTS

In vitro experiments demonstrated that Dau inhibits RANKL-induced osteoclastogenesis, podosomal belt formation, and bone resorption function. RNA-sequencing results revealed that Dau significantly suppresses genes related to osteoclast. Functional enrichment analysis indicated that Dau's inhibition of osteoclasts may be associated with NF-κB signaling pathway and reactive oxygen metabolism pathway. Molecular docking, surface plasmon resonance assay and western blot analysis further confirmed that Dau inhibits RANKL-induced osteoclastogenesis by modulating the ROS/NF-κB/NFATc1 pathway. Moreover, administration of Dau to OVX-induced mice validated its efficacy in treating bone loss disease.

CONCLUSION

Dau prevents OVX-induced bone loss by inhibiting osteoclast activity and bone resorption, potentially offering a new approach for preventing and treating metabolic bone diseases such as osteoporosis. This study provides innovative insights into the inhibitory effects of Dau in an in vivo OVX model and elucidates the underlying mechanism.

摘要

背景

破骨细胞在维持骨代谢平衡中发挥着重要作用。破骨细胞的异常与骨质疏松症、类风湿关节炎和肿瘤骨转移等溶骨性骨疾病密切相关。

目的

寻找可能抑制破骨细胞形成和功能的天然化合物。

研究设计

本研究旨在评估冬凌草甲素(Dau)对体外破骨细胞形成和功能的影响及其在体内卵巢切除小鼠模型中预防骨丢失的潜力。

方法

进行了多项体外实验,包括破骨细胞生成、足突带形成、骨吸收测定、RNA 测序、实时定量 PCR、ROS 水平检测、表面等离子共振分析、荧光素酶测定和 Western blot。为了验证体内的效果,构建了卵巢切除小鼠模型(OVX 模型),并使用 micro-CT 和组织学测量骨参数。此外,对 OVX 模型的血清样本进行代谢组学分析。

结果

体外实验表明,Dau 抑制 RANKL 诱导的破骨细胞生成、足突带形成和骨吸收功能。RNA 测序结果表明,Dau 显著抑制与破骨细胞相关的基因。功能富集分析表明,Dau 对破骨细胞的抑制可能与 NF-κB 信号通路和活性氧代谢通路有关。分子对接、表面等离子共振分析和 Western blot 分析进一步证实,Dau 通过调节 ROS/NF-κB/NFATc1 通路抑制 RANKL 诱导的破骨细胞生成。此外,给予 Dau 治疗 OVX 诱导的小鼠验证了其治疗骨丢失疾病的疗效。

结论

Dau 通过抑制破骨细胞活性和骨吸收来预防 OVX 诱导的骨丢失,为预防和治疗骨质疏松症等代谢性骨疾病提供了一种新的方法。本研究为 Dau 在体内 OVX 模型中的抑制作用提供了新的见解,并阐明了其潜在的机制。

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