通过rig - 1 /c-Myc/FTH轴重编程铁代谢减轻肾缺血再灌注损伤

IF 6.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yulu Zhang, Jia Xing, Li Yao, Yu Zou, Hui Peng, Xiling Yi, Lifang Bai, Yang Yu, Hanzhe Liu, Xue Li, Xiaoyue Zhai
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引用次数: 0

摘要

目的:铁代谢紊乱在急性肾缺血再灌注损伤(IRI)的发病机制中起关键作用。然而,驱动这些干扰的分子机制仍然知之甚少。结果:在IRI小鼠肾脏中,观察到病理改变、铁代谢中断和功能损伤。维甲酸诱导基因i (RIG-I)、转录因子c-Myc和铁蛋白重链(FTH)在小管上皮细胞中的表达和共定位升高,并伴有谷胱甘肽过氧化物酶4 (GPX4)水平下降和铁下垂的证据。进一步的体外研究表明,RIG-I促进了c-Myc的活化。后者通过染色质免疫沉淀试验和c-Myc siRNA实验证明其对FTH转录有正向调节作用。有趣的是,FTH过表达导致rig - 1、转铁蛋白受体、铁转运蛋白和核受体共激活因子4水平升高。最终,c-Myc抑制剂10058-F4逆转了所有不利的改变,并证明了IRI小鼠肾脏和小鼠肾小管细胞受到铁凋亡诱导剂erastin、RIG-I激动剂或缺氧/再氧化的保护作用。这种逆转表现为肾脏形态和功能改善,铁代谢平衡,GPX4水平升高,4-羟基烯醛水平降低,炎症细胞浸润、白细胞介素-1 β释放和肾损伤分子1表达减少。创新:本研究提出了一种新的机制,在IRI肾脏中,c-Myc被RIG-I升高激活,并积极调节FTH转录,因此涉及铁代谢紊乱。结论:RIG-I、c-Myc和FTH破坏铁稳态,抑制c-Myc稳定铁代谢并减轻氧化应激,提示IRI的潜在治疗靶点。Antioxid。氧化还原信号:00000 - 00000。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reprogramming Iron Metabolism via the RIG-I/c-Myc/FTH Axis Mitigates Renal Ischemia-Reperfusion Injury.

Aims: Iron metabolism disorders are critical in the pathogenesis of acute kidney ischemia-reperfusion injury (IRI). However, the molecular mechanisms driving these disturbances remain poorly understood. Results: In IRI mouse kidneys, pathological alterations, iron metabolism disruptions, and functional impairments were observed. Retinoic acid-inducible gene-I (RIG-I), transcription factor c-Myc, and ferritin heavy chain (FTH) exhibited elevated expression and colocalization in tubular epithelial cells, accompanied by decreased glutathione peroxidase 4 (GPX4) level and evidence of ferroptosis. Further in vitro studies revealed that RIG-I promoted c-Myc activation. The latter demonstrated its positive regulation of FTH transcription by chromatin immunoprecipitation assays and c-Myc siRNA experiments. Interestingly, FTH overexpression resulted in elevated levels of RIG-I, transferrin receptor, ferroportin, and nuclear receptor coactivator 4. Ultimately, the c-Myc inhibitor 10058-F4 reversed all adverse alterations and demonstrated a protective role in IRI mouse kidneys and mouse kidney tubule cells subjected to the ferroptosis inducer erastin, RIG-I agonist, or hypoxia/reoxygenation. This reversal was reflected in improved renal morphology and function, balanced iron metabolism, increased GPX4 level, decreased 4-hydroxynonenal level, reduced inflammatory cell infiltration, interleukin-1 beta release, and kidney injury molecule 1 expression. Innovation: This study proposes a novel mechanism in which c-Myc is activated by elevated RIG-I in IRI kidneys and positively regulates FTH transcription, therefore involving iron metabolism disorders. Conclusions: The RIG-I, c-Myc, and FTH disrupt iron homeostasis, and the c-Myc inhibition stabilizes iron metabolism and mitigates oxidative stress, suggesting a potential therapeutic target in IRI. Antioxid. Redox Signal. 00, 000-000.

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来源期刊
Antioxidants & redox signaling
Antioxidants & redox signaling 生物-内分泌学与代谢
CiteScore
14.10
自引率
1.50%
发文量
170
审稿时长
3-6 weeks
期刊介绍: Antioxidants & Redox Signaling (ARS) is the leading peer-reviewed journal dedicated to understanding the vital impact of oxygen and oxidation-reduction (redox) processes on human health and disease. The Journal explores key issues in genetic, pharmaceutical, and nutritional redox-based therapeutics. Cutting-edge research focuses on structural biology, stem cells, regenerative medicine, epigenetics, imaging, clinical outcomes, and preventive and therapeutic nutrition, among other areas. ARS has expanded to create two unique foci within one journal: ARS Discoveries and ARS Therapeutics. ARS Discoveries (24 issues) publishes the highest-caliber breakthroughs in basic and applied research. ARS Therapeutics (12 issues) is the first publication of its kind that will help enhance the entire field of redox biology by showcasing the potential of redox sciences to change health outcomes. ARS coverage includes: -ROS/RNS as messengers -Gaseous signal transducers -Hypoxia and tissue oxygenation -microRNA -Prokaryotic systems -Lessons from plant biology
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