Uncovering the role of ferroptosis in Bietti crystalline dystrophy and potential therapeutic strategies

IF 8.2 2区 生物学 Q1 CELL BIOLOGY
Chang Shen, Qianjie Yang, Kuangqi Chen, Huiling Ma, Xiawei Wang, Jianping Tong, Ye Shen, Hongguang Cui
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引用次数: 0

Abstract

Bietti crystalline dystrophy (BCD) is an inherited retinal degeneration disease caused by mutations in the CYP4V2 gene. Currently, there is no clinical therapy approach available for BCD patients. Previous research has suggested that polyunsaturated fatty acids (PUFAs) may play a significant role in the development of BCD, implicating the involvement of ferroptosis in disease pathogenesis. In this work, we aimed to investigate the interplay between ferroptosis and BCD and to detect potential therapeutic strategies for the disease. Genetic-edited RPE cell line was first established in this study by CRISPR-Cas9 technology. Cyp4v3 (the homologous gene of human CYP4V2) knock out (KO) mice have also been used. Lipid profiling and transcriptome analysis of retinal pigment epithelium (RPE) cells from Cyp4v3 KO mice have been conducted. Ferroptosis phenotypes have been first investigated in BCD models in vitro and in vivo, including lipid peroxidation, mitochondrial changes, elevated levels of reactive oxygen species (ROS), and altered gene expression. Additionally, an iron chelator, deferiprone (DFP), has been tested in vitro and in vivo to determine its efficacy in suppressing ferroptosis and restoring the BCD phenotype. Cyp4v3 KO mice exhibited progressive retinal degeneration and lipid accumulation, similar to the BCD phenotype, which was exacerbated by a high-fat diet (HFD). Increased levels of PUFAs, such as EPA (C22:5) and AA (C20:4), were observed in the RPE of Cyp4v3 KO mice. Transcriptome analysis of RPE in Cyp4v3 KO mice revealed changes in genes involved in iron homeostasis, particularly an upregulation of NCOA4, which was confirmed by immunofluorescence. Ferroptosis-related characteristics, including mitochondrial defects, lipid peroxidation, ROS accumulation, and upregulation of related genes, were detected in the RPE both in vitro and in vivo. Abnormal accumulation of ferrous iron was also detected. DFP, an iron chelator administration suppressed ferroptosis phenotype in CYP4V2 mutated RPE. Oral administration of DFP also restored the retinal function and morphology in Cyp4v3 KO mice. This study represented the first evidence of the substantial role of ferroptosis in the development of BCD. PUFAs resulting from CYP4V2 mutation may serve as substrates for ferroptosis, potentially working in conjunction with NCOA4-regulated iron accumulation, ultimately leading to RPE degeneration. DFP administration, which chelates iron, has demonstrated its ability to reverse BCD phenotype both in vitro and in vivo, suggesting a promising therapeutic approach in the future.
揭示铁蛋白沉积症在比蒂晶体营养不良症中的作用和潜在治疗策略
比蒂晶体营养不良症(BCD)是一种遗传性视网膜变性疾病,由 CYP4V2 基因突变引起。目前,还没有针对 BCD 患者的临床治疗方法。以往的研究表明,多不饱和脂肪酸(PUFAs)可能在 BCD 的发病过程中起着重要作用,这也暗示了铁蛋白沉积在疾病发病机制中的参与。在这项工作中,我们旨在研究铁色素沉着与 BCD 之间的相互作用,并发现该疾病的潜在治疗策略。本研究首先利用 CRISPR-Cas9 技术建立了基因编辑的 RPE 细胞系。研究还使用了Cyp4v3(人类CYP4V2的同源基因)基因敲除(KO)小鼠。对 Cyp4v3 KO 小鼠的视网膜色素上皮细胞(RPE)进行了脂质分析和转录组分析。首先在 BCD 模型中对铁中毒表型进行了体外和体内研究,包括脂质过氧化、线粒体变化、活性氧(ROS)水平升高和基因表达改变。此外,还在体外和体内测试了铁螯合剂去铁酮(deferiprone,DFP),以确定其在抑制铁变态反应和恢复 BCD 表型方面的功效。Cyp4v3 KO小鼠表现出进行性视网膜变性和脂质堆积,与BCD表型相似,高脂饮食(HFD)会加剧这种情况。在 Cyp4v3 KO 小鼠的 RPE 中观察到 PUFAs(如 EPA(C22:5)和 AA(C20:4))水平升高。Cyp4v3 KO 小鼠 RPE 的转录组分析显示,参与铁稳态的基因发生了变化,尤其是 NCOA4 基因上调,这一点已通过免疫荧光得到证实。在体外和体内的 RPE 中都检测到了铁氧化相关特征,包括线粒体缺陷、脂质过氧化、ROS 积累和相关基因的上调。此外,还检测到亚铁的异常积累。服用铁螯合剂 DFP 可抑制 CYP4V2 突变 RPE 的铁突变表型。口服 DFP 还能恢复 Cyp4v3 KO 小鼠的视网膜功能和形态。这项研究首次证明了铁蛋白沉积在 BCD 发病过程中的重要作用。CYP4V2突变产生的PUFA可能是铁跃迁的底物,可能与NCOA4调控的铁积累共同作用,最终导致RPE变性。服用能螯合铁的 DFP 已证明能在体外和体内逆转 BCD 表型,这表明未来的治疗方法大有可为。
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来源期刊
CiteScore
11.00
自引率
0.00%
发文量
180
期刊介绍: Cell Communication and Signaling (CCS) is a peer-reviewed, open-access scientific journal that focuses on cellular signaling pathways in both normal and pathological conditions. It publishes original research, reviews, and commentaries, welcoming studies that utilize molecular, morphological, biochemical, structural, and cell biology approaches. CCS also encourages interdisciplinary work and innovative models, including in silico, in vitro, and in vivo approaches, to facilitate investigations of cell signaling pathways, networks, and behavior. Starting from January 2019, CCS is proud to announce its affiliation with the International Cell Death Society. The journal now encourages submissions covering all aspects of cell death, including apoptotic and non-apoptotic mechanisms, cell death in model systems, autophagy, clearance of dying cells, and the immunological and pathological consequences of dying cells in the tissue microenvironment.
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