Songorine modulates macrophage polarization and metabolic reprogramming to alleviate inflammation in osteoarthritis

巨噬细胞极化 炎症 氧化应激 重编程 骨关节炎 巨噬细胞 活性氧 氧化磷酸化 线粒体 细胞生物学 医学 糖酵解 表型 癌症研究 化学 代谢途径 下调和上调 基因敲除 代谢组学 免疫学 生物信息学 M2巨噬细胞 生物
作者
Xixi He,Yuan-Jun Huang,Chun-Long Hu,Qiong-Qian Xu,Qingjun Wei
出处
期刊:Frontiers in Immunology [Frontiers Media]
卷期号:15: 1344949-1344949 被引量:10
标识
DOI:10.3389/fimmu.2024.1344949
摘要

Introduction Osteoarthritis (OA) is a prevalent joint disorder characterized by multifaceted pathogenesis, with macrophage dysregulation playing a critical role in perpetuating inflammation and joint degeneration. Methods This study focuses on Songorine, derived from Aconitum soongaricum Stapf, aiming to unravel its therapeutic mechanisms in OA. Comprehensive analyses, including PCR, Western blot, and immunofluorescence, were employed to evaluate Songorine's impact on the joint microenvironment and macrophage polarization. RNA-seq analysis was conducted to unravel its anti-inflammatory mechanisms in macrophages. Metabolic alterations were explored through extracellular acidification rate monitoring, molecular docking simulations, and PCR assays. Oxygen consumption rate measurements were used to assess mitochondrial oxidative phosphorylation, and Songorine's influence on macrophage oxidative stress was evaluated through gene expression and ROS assays. Results Songorine effectively shifted macrophage polarization from a pro-inflammatory M1 phenotype to an anti-inflammatory M2 phenotype. Notably, Songorine induced metabolic reprogramming, inhibiting glycolysis and promoting mitochondrial oxidative phosphorylation. This metabolic shift correlated with a reduction in macrophage oxidative stress, highlighting Songorine's potential as an oxidative stress inhibitor. Discussion In an in vivo rat model of OA, Songorine exhibited protective effects against cartilage damage and synovial inflammation, emphasizing its therapeutic potential. This comprehensive study elucidates Songorine's multifaceted impact on macrophage modulation, metabolic reprogramming, and the inflammatory microenvironment, providing a theoretical foundation for its therapeutic potential in OA.
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