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诱导型 RPE 特异性 GPX4 敲除导致氧化应激和视网膜变性,具有年龄相关性黄斑变性的特征。

Inducible RPE-specific GPX4 knockout causes oxidative stress and retinal degeneration with features of age-related macular degeneration.

机构信息

FM Kirby Center for Molecular Ophthalmology, Scheie Eye Institute, Department of Ophthalmology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA, 19104, USA.

FM Kirby Center for Molecular Ophthalmology, Scheie Eye Institute, Department of Ophthalmology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA, 19104, USA.

出版信息

Exp Eye Res. 2024 Oct;247:110028. doi: 10.1016/j.exer.2024.110028. Epub 2024 Aug 10.

Abstract

Age-related macular degeneration (AMD) is one of the leading causes of vision loss in the elderly. This disease involves oxidative stress burden in the retina leading to death of retinal pigment epithelial (RPE) cells and photoreceptors. The retina is susceptible to oxidative stress, in part due to high metabolic activity and high concentration of polyunsaturated fatty acids that undergo lipid peroxidation chain reactions. Antioxidant enzymes exist in the retina to combat this stress, including glutathione peroxidase 4 (GPX4). GPX4 specifically reduces oxidized lipids, protecting against lipid peroxidation-induced oxidative stress, which is noted in dry AMD. We hypothesize that Gpx4 knockout within the RPE will result in an environment of chronic oxidative stress yielding degeneration akin to AMD. C57BL/6J mice with a floxed Gpx4 gene were mated with Rpe65Cre/ER mice. Offspring containing Rpe65Cre ± alleles and either Gpx4 WT or Gpx4 fl/fl alleles were administered tamoxifen to induce Gpx4 knockout in Gpx4 fl/fl mice. At sequential timepoints, retinal phenotypes were assessed via in vivo imaging utilizing confocal scanning laser ophthalmoscopy and optical coherence tomography (OCT), and visual function was probed by electroretinography. Retinas were studied post-mortem by immunohistochemical analyses, electron microscopy, plastic sectioning, and quantitative polymerase chain reaction and Western analyses. The RPE-specific Gpx4 knockout model was validated via Western analysis indicating diminished GPX4 protein only within the RPE and not the neural retina. Following Gpx4 knockout, RPE cells became dysfunctional and died, with significant cell loss occurring 2 weeks post-knockout. Progressive thinning of the photoreceptor layer followed RPE degeneration and was accompanied by loss of visual function. OCT and light microscopy showed hyperreflective foci and enlarged, pigmented cells in and above the RPE layer. Electron microscopy revealed decreased mitochondrial cristae and loss of basal and apical RPE ultrastructure. Finally, there was increased carboxyethylpyrrole staining, indicating oxidation of docosahexaenoic acid, and increased levels of mRNAs encoding oxidative stress-associated genes in the RPE and photoreceptors. Overall, we show that RPE-localized GPX4 is necessary for the health of the RPE and outer retina, and that knockout recapitulates phenotypes of dry AMD.

摘要

年龄相关性黄斑变性(AMD)是老年人视力丧失的主要原因之一。这种疾病涉及视网膜中的氧化应激负担,导致视网膜色素上皮(RPE)细胞和光感受器死亡。视网膜容易受到氧化应激的影响,部分原因是代谢活性高,多不饱和脂肪酸浓度高,会发生脂质过氧化链式反应。抗氧化酶存在于视网膜中以对抗这种应激,包括谷胱甘肽过氧化物酶 4(GPX4)。GPX4 专门还原氧化脂质,防止脂质过氧化诱导的氧化应激,这在干性 AMD 中很明显。我们假设 RPE 中的 Gpx4 敲除会导致慢性氧化应激环境,从而产生类似于 AMD 的退行性变。带有 floxed Gpx4 基因的 C57BL/6J 小鼠与 Rpe65Cre/ER 小鼠交配。含有 Rpe65Cre ± 等位基因和 Gpx4 WT 或 Gpx4 fl/fl 等位基因的后代给予他莫昔芬以诱导 Gpx4 fl/fl 小鼠中的 Gpx4 敲除。在连续的时间点,通过利用共焦扫描激光检眼镜和光学相干断层扫描(OCT)进行体内成像评估视网膜表型,并通过视网膜电图探测视觉功能。死后通过免疫组织化学分析、电子显微镜、塑料切片和定量聚合酶链反应和 Western 分析研究视网膜。通过 Western 分析验证了 RPE 特异性 Gpx4 敲除模型,表明只有在 RPE 中而不是在神经视网膜中,GPX4 蛋白减少。在 Gpx4 敲除后,RPE 细胞变得功能失调并死亡,敲除后 2 周发生明显的细胞丢失。光感受器层的进行性变薄伴随着 RPE 退化,并伴有视觉功能丧失。OCT 和光镜显示 RPE 层上方和上方出现超反射焦点和增大的色素细胞。电子显微镜显示嵴减少和基底和顶侧 RPE 超微结构丢失。最后,在 RPE 和光感受器中,羧乙基吡咯染色增加,表明二十二碳六烯酸氧化,以及编码氧化应激相关基因的 mRNAs 水平增加。总体而言,我们表明 RPE 定位的 GPX4 对于 RPE 和外视网膜的健康是必要的,并且敲除再现了干性 AMD 的表型。

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