Multi-omics profiling of retinal pigment epithelium reveals enhancer-driven activation of RANK-NFATc1 signaling in traumatic proliferative vitreoretinopathy

表观遗传学 增殖性玻璃体视网膜病变 生物 细胞生物学 视网膜色素上皮 染色质 癌症研究 增强子 转录因子 生物信息学 视网膜 遗传学 基因 视网膜 神经科学 视网膜脱离 生物化学
作者
Mengyu Liao,Xu Zhu,Yumei Lu,Xiaoping Yi,Youhui Hu,Yumeng Zhao,Z. Ye,Xu Guo,Minghui Liang,Xin Jin,Hong Zhang,Xiaohong Wang,Ziming Zhao,Yupeng Chen,Hua Yan
出处
期刊:Nature Communications [Springer Nature]
卷期号:15 (1)
标识
DOI:10.1038/s41467-024-51624-y
摘要

During the progression of proliferative vitreoretinopathy (PVR) following ocular trauma, previously quiescent retinal pigment epithelial (RPE) cells transition into a state of rapid proliferation, migration, and secretion. The elusive molecular mechanisms behind these changes have hindered the development of effective pharmacological treatments, presenting a pressing clinical challenge. In this study, by monitoring the dynamic changes in chromatin accessibility and various histone modifications, we chart the comprehensive epigenetic landscape of RPE cells in male mice subjected to traumatic PVR. Coupled with transcriptomic analysis, we reveal a robust correlation between enhancer activation and the upregulation of the PVR-associated gene programs. Furthermore, by constructing transcription factor regulatory networks, we identify the aberrant activation of enhancer-driven RANK-NFATc1 pathway as PVR advanced. Importantly, we demonstrate that intraocular interventions, including nanomedicines inhibiting enhancer activity, gene therapies targeting NFATc1 and antibody therapeutics against RANK pathway, effectively mitigate PVR progression. Together, our findings elucidate the epigenetic basis underlying the activation of PVR-associated genes during RPE cell fate transitions and offer promising therapeutic avenues targeting epigenetic modulation and the RANK-NFATc1 axis for PVR management. Here the authors elucidate the epigenetic basis underlying the activation of PVR-associated genes during RPE cell fate transitions and offers potential therapeutic avenues targeting epigenetic modulation and the RANK-NFATc1 axis for PVR management.
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