Baicalin alleviates sepsis-associated acute kidney injury through activation of the PPAR-γ/UCP1 signaling pathway.

IF 3 3区 医学 Q1 UROLOGY & NEPHROLOGY
Renal Failure Pub Date : 2025-12-01 Epub Date: 2025-06-12 DOI:10.1080/0886022X.2025.2508908
Neng Bao, Ming-Jia Gu, Qiu-Ya Huang, Hai-Jian Sun, Xue-Xue Zhu, Xin Gu, Jin Wang, Xiang Yu, Qing-Bo Lu, Ya-Fen Yu
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引用次数: 0

Abstract

Purpose: This study aims to investigate the protective effect of baicalin on sepsis-associated acute kidney injury (SA-AKI) and its molecular mechanism.

Materials and methods: An SA-AKI mouse model was established via lipopolysaccharide (LPS) injection. Baicalin's effects on renal function, oxidative stress, and apoptosis were evaluated using histopathology, dihydroethidium, and terminal deoxynucleotidyl transferase dUTP nick end labeling staining. Bioinformatics, molecular docking, ribonucleic acid (RNA) sequencing, and Western blotting were employed to investigate the role of baicalin in regulating the peroxisome proliferator‑activated receptor‑γ (PPAR-γ)/uncoupling protein 1 (UCP1) pathway. Human kidney-2 cells were used for in vitro validation.

Results: In this study, baicalin significantly ameliorated LPS-induced acute kidney injury by modulating the PPAR-γ/UCP1 signaling pathway. Both in vivo and in vitro experiments revealed that baicalin attenuates inflammation, oxidative stress, and apoptosis while restoring mitochondrial function. RNA sequencing analysis revealed significant upregulation of PPAR-γ/UCP1 in the baicalin-treated group. Further molecular docking and molecular dynamics simulations confirmed a stable interaction between baicalin and UCP1. Validation via small interfering RNA-mediated knockdown of PPAR-γ and UCP1 revealed that inhibition of the PPAR-γ/UCP1 pathway abrogated baicalin's protective effects, highlighting the critical role of this pathway in mediating baicalin's renoprotection.

Conclusion: Baicalin protects against SA-AKI by activating the PPAR-γ/UCP1 signaling pathway. This study provides new insights into the mechanisms through which baicalin mitigates kidney injury in sepsis, suggesting its potential as a therapeutic agent for SA-AKI.

黄芩苷通过激活PPAR-γ/UCP1信号通路减轻脓毒症相关的急性肾损伤。
目的:探讨黄芩苷对脓毒症相关急性肾损伤(SA-AKI)的保护作用及其分子机制。材料与方法:采用脂多糖(LPS)注射法建立SA-AKI小鼠模型。采用组织病理学、双氢乙啶和末端脱氧核苷酸转移酶dUTP缺口末端标记法评价黄芩苷对肾脏功能、氧化应激和细胞凋亡的影响。采用生物信息学、分子对接、核糖核酸(RNA)测序、Western blotting等方法研究黄芩苷调控过氧化物酶体增殖体激活受体γ (PPAR-γ)/解偶联蛋白1 (UCP1)通路的作用。用人肾-2细胞进行体外验证。结果:在本研究中,黄芩苷通过调节PPAR-γ/UCP1信号通路显著改善lps诱导的急性肾损伤。体内和体外实验均显示黄芩苷能减轻炎症、氧化应激和细胞凋亡,恢复线粒体功能。RNA测序分析显示,黄芩苷处理组PPAR-γ/UCP1显著上调。进一步的分子对接和分子动力学模拟证实了黄芩苷与UCP1之间稳定的相互作用。通过小干扰rna介导的PPAR-γ和UCP1的敲低验证表明,抑制PPAR-γ/UCP1通路可消除黄芩苷的保护作用,突出了该通路在介导黄芩苷的肾保护作用中的关键作用。结论:黄芩苷通过激活PPAR-γ/UCP1信号通路对SA-AKI具有保护作用。本研究为黄芩苷减轻脓毒症肾损伤的机制提供了新的见解,提示其作为SA-AKI治疗药物的潜力。
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来源期刊
Renal Failure
Renal Failure 医学-泌尿学与肾脏学
CiteScore
3.90
自引率
13.30%
发文量
374
审稿时长
1 months
期刊介绍: Renal Failure primarily concentrates on acute renal injury and its consequence, but also addresses advances in the fields of chronic renal failure, hypertension, and renal transplantation. Bringing together both clinical and experimental aspects of renal failure, this publication presents timely, practical information on pathology and pathophysiology of acute renal failure; nephrotoxicity of drugs and other substances; prevention, treatment, and therapy of renal failure; renal failure in association with transplantation, hypertension, and diabetes mellitus.
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