FTH1 overexpression using a dCasRx translation enhancement system protects the kidney from calcium oxalate crystal-induced injury.

IF 9.2 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ziqi He, Caitao Dong, Tianbao Song, Jiawei Zhou, Tao Xu, Ruyuan He, Sheng Li
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引用次数: 0

Abstract

The engineered clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated protein (Cas) system is currently widely applied in genetic editing and transcriptional regulation. The catalytically inactivated CasRx (dCasRx) has the ability to selectively focus on the mRNA coding region without disrupting transcription and translation, opening up new avenues for research on RNA modification and protein translation control. This research utilized dCasRx to create a translation-enhancement system for mammals called dCasRx-eIF4GI, which combined eukaryotic translation initiation factor 4G (eIF4GI) to boost translation levels of the target gene by recruiting ribosomes, without affecting mRNA levels, ultimately increasing translation levels of different endogenous proteins. Due to the small size of dCasRx, the dCasRx-eIF4GI translation enhancement system was integrated into a single viral vector, thus optimizing the delivery and transfection efficiency in subsequent applications. Previous studies reported that ferroptosis, mediated by calcium oxalate (CaOx) crystals, significantly promotes stone formation. In order to further validate its developmental potential, it was applied to a kidney stone model in vitro and in vivo. The manipulation of the ferroptosis regulatory gene FTH1 through single-guide RNA (sgRNA) resulted in a notable increase in FTH1 protein levels without affecting its mRNA levels. This ultimately prevented intracellular ferroptosis and protected against cell damage and renal impairment caused by CaOx crystals. Taken together, this study preliminarily validated the effectiveness and application prospects of the dCasRx-eIF4GI translation enhancement system in mammalian cell-based disease models, providing novel insights and a universal tool platform for protein translation research and future therapeutic approaches for nephrolithiasis.

使用 dCasRx 翻译增强系统过表达 FTH1 可保护肾脏免受草酸钙晶体引起的损伤。
工程化的簇状规则间隔短回文重复序列(CRISPR)-CRISPR相关蛋白(Cas)系统目前被广泛应用于基因编辑和转录调控。催化失活的CasRx(dCasRx)能够选择性地聚焦于mRNA编码区,而不破坏转录和翻译,为研究RNA修饰和蛋白质翻译控制开辟了新途径。这项研究利用dCasRx为哺乳动物创建了一个名为dCasRx-eIF4GI的翻译增强系统,该系统结合真核翻译起始因子4G(eIF4GI),在不影响mRNA水平的情况下,通过招募核糖体提高目标基因的翻译水平,最终提高不同内源蛋白的翻译水平。由于 dCasRx 体积小,dCasRx-eIF4GI 翻译增强系统被整合到了一个病毒载体中,从而优化了后续应用中的递送和转染效率。先前的研究报告称,由草酸钙(CaOx)晶体介导的铁蛋白沉积(ferroptosis)能显著促进结石的形成。为了进一步验证其发展潜力,我们将其应用于体外和体内肾结石模型。通过单导核糖核酸(sgRNA)对铁突变调控基因 FTH1 进行操作,在不影响其 mRNA 水平的情况下显著提高了 FTH1 蛋白水平。这最终阻止了细胞内的铁跃迁,保护细胞免受 CaOx 晶体造成的细胞损伤和肾功能损害。综上所述,这项研究初步验证了 dCasRx-eIF4GI 翻译增强系统在基于哺乳动物细胞的疾病模型中的有效性和应用前景,为蛋白质翻译研究和未来的肾炎治疗方法提供了新的见解和通用工具平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cellular & Molecular Biology Letters
Cellular & Molecular Biology Letters 生物-生化与分子生物学
CiteScore
11.60
自引率
13.30%
发文量
101
审稿时长
3 months
期刊介绍: Cellular & Molecular Biology Letters is an international journal dedicated to the dissemination of fundamental knowledge in all areas of cellular and molecular biology, cancer cell biology, and certain aspects of biochemistry, biophysics and biotechnology.
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