Senescent retinal pigment epithelial cells promote angiogenesis in choroidal neovascularization via the TAK1/p38 MAPK pathway.

IF 3 2区 医学 Q1 OPHTHALMOLOGY Experimental eye research Pub Date : 2025-01-06 DOI:10.1016/j.exer.2025.110232
Yinhao Wang, Huiling Ma, Qianjie Yang, Kuangqi Chen, Hui Ye, Xinglin Wang, Jianhua Xia, Xiaodan Chen, Xiawei Wang, Ye Shen, Hongguang Cui
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Abstract

Senescent retinal pigment epithelial cells play a key role in neovascular age-related macular degeneration (nAMD); however, the mechanisms underlying the angiogenic ability of these cells remain unclear. Herein, we investigated the effects of the senescent adult retinal pigment epithelial cell line-19 (ARPE-19) on wound healing, cell migration and survival, and tube formation abilities of human umbilical vein endothelial cells (HUVECs). Additionally, we used Brown Norway rats to establish a laser-induced choroidal neovascularization (CNV) model for further nAMD-related studies. We found that the wound healing, cell migration, and tube formation abilities of HUVECs were significantly enhanced following culture in conditioned media from senescent ARPE-19 cells; this was attributed to the activation of the transforming growth factor β-activated kinase 1 (TAK1)/p38 MAPK pathway. Consistently, we found that the TAK1 inhibitors 5Z-7-oxozeaenol and takinib reversed the effects of conditioned media from senescent ARPE-19 cells on the wound healing, migration, survival, and tube formation abilities of HUVECs. We further investigated the therapeutic effects of 5Z-7-oxozeaenol on the laser-induced CNV rat model. We found that TAK1 was activated in IB4+ areas in laser-induced CNV lesions; inhibiting the activity of TAK1 using 5Z-7-oxozeaenol significantly alleviated CNV lesion formation and fluorescein leakage in fundus fluorescein angiography and greatly improved a-waves, b-waves, and OP values, as recorded by electroretinography. Thus, senescent RPE cells may promote angiogenesis via the TAK1/p38 MAPK pathway. Further, inhibiting TAK1 expression alleviates pathological neovascularization and improves retinal function in a laser-induced CNV rat model, highlighting the therapeutic potential of this approach for treating nAMD.

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衰老的视网膜色素上皮细胞通过TAK1/p38 MAPK通路促进脉络膜新生血管的血管生成。
衰老视网膜色素上皮细胞在新生血管性年龄相关性黄斑变性(nAMD)中起关键作用然而,这些细胞血管生成能力的机制尚不清楚。在此,我们研究了衰老成人视网膜色素上皮细胞系19 (ARPE-19)对人脐静脉内皮细胞(HUVECs)伤口愈合、细胞迁移和存活以及成管能力的影响。此外,我们用布朗挪威大鼠建立了激光诱导脉络膜新生血管(CNV)模型,用于进一步的namd相关研究。我们发现,衰老的ARPE-19细胞在条件培养基中培养后,HUVECs的伤口愈合、细胞迁移和成管能力显著增强;这归因于转化生长因子β活化激酶1 (TAK1)/p38 MAPK通路的激活。同样,我们发现TAK1抑制剂5z -7-氧zeaenol和takinib逆转了衰老ARPE-19细胞条件培养基对huvec伤口愈合、迁移、存活和管形成能力的影响。我们进一步研究了5z -7-氧玉米烯醇对激光诱导CNV大鼠模型的治疗作用。我们发现,在激光诱导的CNV病变中,TAK1在IB4+区被激活;5z -7-氧zeaenol抑制TAK1活性可显著减轻眼底荧光素血管造影中CNV病变形成和荧光素渗漏,并可显著改善视网膜电图记录的a波、b波和OP值。因此,衰老的RPE细胞可能通过TAK1/p38 MAPK途径促进血管生成。此外,在激光诱导的CNV大鼠模型中,抑制TAK1表达可缓解病理性新生血管并改善视网膜功能,突出了该方法治疗nAMD的治疗潜力。
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来源期刊
Experimental eye research
Experimental eye research 医学-眼科学
CiteScore
6.80
自引率
5.90%
发文量
323
审稿时长
66 days
期刊介绍: The primary goal of Experimental Eye Research is to publish original research papers on all aspects of experimental biology of the eye and ocular tissues that seek to define the mechanisms of normal function and/or disease. Studies of ocular tissues that encompass the disciplines of cell biology, developmental biology, genetics, molecular biology, physiology, biochemistry, biophysics, immunology or microbiology are most welcomed. Manuscripts that are purely clinical or in a surgical area of ophthalmology are not appropriate for submission to Experimental Eye Research and if received will be returned without review.
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