巨噬细胞移动抑制因子
前列腺炎
巨噬细胞极化
促炎细胞因子
炎症
细胞因子
巨噬细胞
癌症研究
氧化应激
免疫学
调解人
旁分泌信号
免疫系统
信号转导
川东北74
医学
细胞生物学
活性氧
自分泌信号
转录因子
生物
转录组
刺猬信号通路
巴基斯坦卢比
糖酵解
巨噬细胞炎性蛋白
自身免疫
川地163
下调和上调
M2巨噬细胞
受体
化学
磷酸肌醇3激酶
作者
Fei Zhang,Andong Zhang,Tong Meng,Kexin Xu,Cheng Yang,Chaozhao Liang,Meng Zhang
出处
期刊:Redox biology
[Elsevier BV]
日期:2026-01-20
卷期号:90: 104042-104042
标识
DOI:10.1016/j.redox.2026.104042
摘要
Chronic nonbacterial prostatitis (CNP) is a prevalent and refractory urogenital disorder whose immunopathogenic mechanisms remain incompletely understood. Given that redox imbalance is increasingly recognized as a critical driver of chronic inflammation, this study systematically investigated the role of epithelial redox stress in immune regulation during CNP and its underlying molecular mechanisms. By integrating plasma cytokine profiling, bulk and single-cell transcriptomic analyses, and experimental autoimmune prostatitis (EAP) models, we identified epithelial-derived macrophage migration inhibitory factor (MIF) as a central mediator driving chronic prostatic inflammation. Mechanistically, inflammatory injury induced excessive accumulation of reactive oxygen species (ROS) in epithelial cells, which in turn activated the redox-responsive transcription factor ZNF24 to bind the MIF promoter and promote its transcription. Epithelial cell-derived MIF acted in a paracrine manner on CD74-expressing macrophages. Engagement of CD74 by MIF stabilized PKM2 expression, enhanced macrophage glycolytic reprogramming, promoted PKM2 nuclear translocation, and activated NF-κB-dependent transcriptional programs, thereby driving M1 macrophage polarization and proinflammatory cytokine production. Pharmacological interventions targeting distinct key nodes of this signaling pathway-including inhibition of MIF (ISO-1), blockade of CD74 (neutralizing antibodies), stabilization of PKM2 tetramers (DASA-58), and suppression of NF-κB (JSH-23)-significantly attenuated prostatic inflammation, restored mitochondrial homeostasis, and alleviated pelvic pain in vitro or in vivo. Collectively, these findings define an epithelial ROS-ZNF24-MIF-macrophage CD74-PKM2-NF-κB signaling axis, through which coordinated enhancement of glycolytic reprogramming and inflammatory signaling promotes M1 macrophage polarization and drives the initiation and progression of CNP. Moreover, multiple redox-sensitive nodes within this pathway represent promising therapeutic targets for precision immunomodulation in CNP.
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