神经炎症
细胞生物学
色素性视网膜炎
雌激素受体α
雌激素受体
视网膜变性
生物
下调和上调
神经科学
选择性雌激素受体调节剂
雌激素受体
信号转导
癌症研究
视网膜
外层核层
穆勒胶质细胞
化学
小胶质细胞
调解人
神经毒性
肿瘤坏死因子α
促炎细胞因子
作者
Y. Li,Yadi Li,Jiarui Luo,Lan Wang,Qianlu Yang,Qianxi Yang,Cong Duan,Wenrong Xu,Yujie Dong,Lei Kong,Yiming Li,Wenjia Zhang,Kangwei Jiao,Zhijian Zhao,Christina Schwarz,François Paquet-Durand,J Ye,zhulin Hu,Jie Yan
标识
DOI:10.1186/s12974-025-03669-z
摘要
Retinitis pigmentosa (RP) is an inherited retinal degenerative disorder characterized by progressive photoreceptor loss and irreversible blindness. Increasing evidence implicates neuroinflammation as a contributor to photoreceptor degeneration extending beyond the initial genetic insult. Although estrogen has been reported to exert anti-inflammatory effects in the central nervous system, its role in RP remains controversial, with some studies suggesting a paradoxical exacerbation of retinal pathology. To address this discrepancy, we identify estrogen receptor alpha (Esr1) as a central immunoregulatory hub in RP. Transcriptomic analyses of rd1 and rd10 revealed upregulation of estrogen-responsive and inflammatory pathways, with Esr1 expression markedly elevated during degeneration. TUNEL assays demonstrated that systemic estradiol (E2) exerted divergent effects, protective in rd1 yet deleterious in rd10, whereas selective pharmacological activation of Esr1 with propyl pyrazole triol (PPT) consistently reduced photoreceptor death, preserved dark-adapted ERG responses, and downregulated inflammatory mediators including Tnf-α, Cx3cl1/Cx3cr1, Cd68, and Iba1. Mechanistically, Esr1 activation repressed microglial Tnf transcription and disrupted a self-sustaining Cx3cl1/Cx3cr1–Tnf-α signaling loop driving microglial recruitment, activation and neurotoxicity in the outer nuclear layer (ONL). Targeted interventions confirmed tumor necrosis factor receptor 1 (Tnfr1) as the principal mediator of Tnf-induced photoreceptor death: selective inhibition with R7050 conferred superior protection compared with broad-spectrum Tnf-α inhibitors (etanercept, infliximab). Cx3cr1 blockade likewise suppressed microglial activation and improved visual outcomes. Collectively, our findings establish Esr1 activation as not merely an external intervention but the amplification of an intrinsic self-protective program, positioning Esr1, Tnfr1, and Cx3cr1 as actionable therapeutic targets to suppress neuroinflammation and preserve vision in RP.
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