硒化雷公藤红素磷脂小体通过DUSP1/自噬途径抑制GPX4降解减轻铁中毒介导的急性肾损伤

IF 9.6 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-08-12 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0236
Liang Yan, Qi Feng, Yong Sun, Bo-Ning Zeng, Chuan-Chuan Sun, Qing-Bing Zha, Xing-Wang Zhang, Shi-Ping Zhu
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引用次数: 0

摘要

铁死亡是脂质过氧化介导的细胞死亡的一种形式,在急性肾损伤(AKI)的进展中起着关键作用。雷公藤红素是一种从传统中草药中分离出来的活性成分,具有多种生物学和药理活性。然而,雷公藤红素较差的生物利用度和细胞毒性限制了其进一步的临床应用,雷公藤红素治疗AKI的潜在作用机制仍不清楚。本研究旨在通过将雷公藤红素掺入硒化磷脂小体来克服这些缺点,并研究硒化雷公藤红素磷脂小体(Se@Tri-PTs)对铁中毒相关AKI的治疗作用。数据显示Se@Tri-PTs提高了雷公藤红素的抗氧化能力,同时降低了其细胞毒性。在erastin或RSL3刺激下,Se@Tri-PTs维持细胞内谷胱甘肽水平,减少脂质ROS生成,抑制铁下垂。在机制上,Se@Tri-PTs阻断了自噬介导的谷胱甘肽过氧化物酶4 (GPX4)的降解,从而抑制铁凋亡。此外,Se@Tri-PTs在erastin刺激的细胞中维持双特异性蛋白磷酸酶1 (DUSP1)蛋白水平,并且DUSP1敲低逆转Se@Tri-PTs-mediated对自噬和铁下垂的抑制。与体外结果一致,Se@Tri-PTs给药明显减轻了叶酸诱导的小鼠AKI和自噬依赖性铁下垂。总之,这些结果表明Se@Tri-PTs通过保持DUSP1水平来阻断GPX4自噬介导的降解,从而改善了铁中毒和AKI,突出了它们在治疗铁中毒相关疾病方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Selenized Tripterine Phytosomes Alleviate Ferroptosis-Mediated Acute Kidney Injury by Suppressing GPX4 Degradation via the DUSP1/Autophagy Pathway.

Ferroptosis, a form of lipid peroxidation-mediated cell death, plays a critical role in acute kidney injury (AKI) progression. Tripterine is an active component isolated from traditional medicinal herbs and exhibits diverse biological and pharmacological activities. However, poor bioavailability and cytotoxicity of tripterine has limited its further clinical application, and the underlying action mechanism of tripterine against AKI remains largely unknown. This study aimed to overcome these shortcomings by formulating tripterine into selenized phytosomes and to investigate the therapeutic effects of selenized tripterine phytosomes (Se@Tri-PTs) on ferroptosis-associated AKI. The data showed that Se@Tri-PTs improved the antioxidant capacity of tripterine while reducing its cytotoxicity. Upon erastin or RSL3 stimulation, Se@Tri-PTs maintained intracellular glutathione levels, decreased lipid ROS generation, and suppressed ferroptosis. Mechanistically, Se@Tri-PTs blocked autophagy-mediated degradation of glutathione peroxidase 4 (GPX4), thereby suppressing ferroptosis. Furthermore, Se@Tri-PTs maintained dual-specificity protein phosphatase 1 (DUSP1) protein levels in erastin-stimulated cells, and DUSP1 knockdown reversed Se@Tri-PTs-mediated inhibition of autophagy and ferroptosis. In line with in vitro results, Se@Tri-PTs administration obviously attenuated folic acid-induced AKI and autophagy-dependent ferroptosis in mice. Collectively, these results indicated that Se@Tri-PTs ameliorated ferroptosis and AKI by preserving DUSP1 levels to block autophagy-mediated degradation of GPX4, highlighting their potential in treating ferroptosis-related diseases.

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