Metrnl通过LKB1/AMPK信号抑制线粒体损伤改善糖尿病足溃疡模型中的铁下垂

Xiangjian Meng, Zhichen Pu, Junjun He, Qin Li, Ying Xie
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摘要

糖尿病足溃疡(DFU)是糖尿病的一种严重并发症,主要由周围血管闭塞和感染引起,给临床治疗带来了重大挑战,可能导致坏疽、截肢,甚至死亡。本研究旨在探讨流星蛋白样(Meteorin-like, Metrnl)在DFU发病过程中的作用及其机制。小鼠用链脲佐菌素诱导糖尿病,而人脐静脉内皮细胞(HUVECs)暴露于5.5、10、20或40 mM的葡萄糖中。用Lipofectamine 2000转染阴性或Metrnl或si-nc或si-Metrnl质粒转染HUVECs。在DFU患者和小鼠模型中,Metrnl的表达均下调。升高的葡萄糖水平通过增强的Metrnl泛素化降低了Metrnl。抑制metnl可加重DFU小鼠足部溃疡。Metrnl通过抑制线粒体损伤减轻DFU模型的氧化应激和铁下垂。在DFU模型中,Metrnl诱导肝激酶B1 (LKB1)/ amp活化蛋白激酶(AMPK)信号传导。在DFU模型中,LKB1可减弱Metrnl对氧化应激和铁下垂的影响。这些数据累积表明,Metrnl通过LKB1/AMPK信号传导抑制线粒体损伤,改善DFU模型中的铁下垂,这表明靶向Metrnl可能成为预防DFU或其他糖尿病铁下垂的潜在方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metrnl Ameliorates Ferroptosis in Model of Diabetic Foot Ulcer Through the Inhibition of Mitochondrial Damage via LKB1/AMPK Signaling.

Diabetic foot ulcer (DFU) represents a severe complication of diabetes, mainly caused by peripheral vascular occlusion and infection, presenting significant clinical challenges in treatment and potentially resulting in gangrene, amputation, or even fatality. This study aimed to investigate the involvement and underlying mechanisms of Meteorin-like (Metrnl) in the pathogenic process of DFU. Mice underwent diabetes induction by streptozotocin, while human umbilical vein endothelial cells (HUVECs) were exposed to 5.5, 10, 20 or 40 mM glucose. HUVECs were transfected with negative or Metrnl or si-nc or si-Metrnl plasmids via Lipofectamine 2000. The expression of Metrnl was down-regulated in both patients and the murine model of DFU. Elevated glucose levels diminished Metrnl through enhanced Metrnl ubiquitination. The suppression of Metrnl exacerbated foot ulcer in the mouse model of DFU. Metrnl alleviated oxidative stress and ferroptosis in the DFU model by inhibiting mitochondrial damage. Metrnl induced liver kinase B1 (LKB1)/AMP-activated protein kinase (AMPK) signaling in the DFU model. LKB1 attenuated the effects of Metrnl on oxidative stress and ferroptosis in the DFU model.  The data cumulatively demonstrate that Metrnl ameliorates ferroptosis in the DFU model by inhibiting mitochondrial damage via LKB1/AMPK signaling, suggesting that targeting Metrnl may emerge as a potential preventive approach against ferroptosis of DFU or other diabetes.

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