Long Non-coding RNA MIR22HG Alleviates Ischemic Acute Kidney Injury by Targeting the miR-134-5p/NFAT5 axis.

IF 4.5 2区 医学 Q2 CELL BIOLOGY
Jingdong Li, Zhe Dong, Liting Tang, Lu Liu, Cuijing Su, Shan Yu
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Abstract

Acute kidney injury (AKI), often triggered by ischemia-reperfusion (I/R) injury, is a critical condition characterized by rapid loss of renal function, leading to high morbidity and mortality. Despite extensive research, therapeutic options for ischemic AKI remain limited, and understanding the molecular mechanisms involved is crucial for developing targeted therapies. Long non-coding RNAs (lncRNAs) have emerged as pivotal regulators of gene expression and cellular processes in various diseases, including cancer and renal injury. This study investigates the role of the lncRNA MIR22HG in mitigating renal injury during ischemic AKI. Using in vivo and in vitro models of I/R-induced AKI in mice and hypoxia/reoxygenation (H/R)-treated renal cells, we demonstrated that MIR22HG expression is significantly downregulated in ischemic AKI conditions. Functional assays showed that overexpression of MIR22HG in these models led to reduced renal cell apoptosis, inflammation, and improved renal function. Mechanistically, MIR22HG exerted its protective effects by negatively regulating miR-134-5p, which in turn alleviated renal injury by upregulating NFAT5, a transcription factor known to mitigate cellular stress. Furthermore, dual-luciferase and RNA pull-down assays confirmed direct interactions between MIR22HG and miR-134-5p, as well as miR-134-5p and NFAT5. Additionally, loss-and-gain-of-function assays demonstrated that overexpression of MIR22HG led to the upregulation of NFAT5, which mitigated renal apoptosis, and inflammation and improved renal function. Collectively, the results of our study highlight the therapeutic potential of targeting the MIR22HG/miR-134-5p/NFAT5 axis in the treatment of ischemic AKI, providing new insights into the molecular regulation of renal cell survival and repair during injury.

长非编码 RNA MIR22HG 通过靶向 miR-134-5p/NFAT5 轴缓解缺血性急性肾损伤
急性肾损伤(AKI)通常由缺血再灌注(I/R)损伤引发,是一种以肾功能迅速丧失为特征的危重疾病,发病率和死亡率高。尽管进行了广泛的研究,但缺血性AKI的治疗选择仍然有限,了解所涉及的分子机制对于开发靶向治疗至关重要。长链非编码rna (lncRNAs)已成为多种疾病(包括癌症和肾损伤)中基因表达和细胞过程的关键调节因子。本研究探讨了lncRNA MIR22HG在缺血性AKI期间减轻肾损伤中的作用。通过I/R诱导的小鼠AKI的体内和体外模型以及缺氧/再氧化(H/R)处理的肾细胞,我们发现MIR22HG的表达在缺血性AKI条件下显著下调。功能分析显示,这些模型中MIR22HG的过表达导致肾细胞凋亡减少,炎症减少,肾功能改善。在机制上,MIR22HG通过负调控miR-134-5p发挥其保护作用,miR-134-5p反过来通过上调NFAT5(一种已知可减轻细胞应激的转录因子)来减轻肾损伤。此外,双荧光素酶和RNA下拉实验证实了MIR22HG与miR-134-5p以及miR-134-5p与NFAT5之间的直接相互作用。此外,功能丧失和功能获得实验表明,MIR22HG的过表达导致NFAT5的上调,从而减轻肾细胞凋亡、炎症和改善肾功能。总之,我们的研究结果突出了靶向MIR22HG/miR-134-5p/NFAT5轴治疗缺血性AKI的治疗潜力,为损伤期间肾细胞存活和修复的分子调控提供了新的见解。
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来源期刊
Inflammation
Inflammation 医学-免疫学
CiteScore
9.70
自引率
0.00%
发文量
168
审稿时长
3.0 months
期刊介绍: Inflammation publishes the latest international advances in experimental and clinical research on the physiology, biochemistry, cell biology, and pharmacology of inflammation. Contributions include full-length scientific reports, short definitive articles, and papers from meetings and symposia proceedings. The journal''s coverage includes acute and chronic inflammation; mediators of inflammation; mechanisms of tissue injury and cytotoxicity; pharmacology of inflammation; and clinical studies of inflammation and its modification.
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