[Mechanism of Colquhounia Root Tablets against diabetic kidney disease via RAGE-ROS-PI3K-AKT-NF-κB-NLRP3 signaling axis].

Q3 Pharmacology, Toxicology and Pharmaceutics
Ming-Zhu Xu, Zhao-Chen Ma, Zi-Qing Xiao, Shuang-Rong Gao, Yi-Xin Yang, Jia-Yun Shen, Chu Zhang, Feng Huang, Jiang-Rui Wang, Bei-Lei Cai, Na Lin, Yan-Qiong Zhang
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引用次数: 0

Abstract

This study aimed to explore the therapeutic mechanisms of Colquhounia Root Tablets(CRT) in treating diabetic kidney disease(DKD) by integrating biomolecular network mining with animal model verification. By analyzing clinical transcriptomics data, an interaction network was constructed between candidate targets of CRT and DKD-related genes. Based on the topological eigenvalues of network nodes, 101 core network targets of CRT against DKD were identified. These targets were found to be closely related to multiple pathways associated with type 2 diabetes, immune response, and metabolic reprogramming. Given that immune-inflammatory imbalance driven by metabolic reprogramming is one of the key pathogenic mechanisms of DKD, and that many core network targets of CRT are involved in this pathological process, receptor for advanced glycation end products(RAGE)-reactive oxygen species(ROS)-phosphatidylinositol 3-kinase(PI3K)-protein kinase B(AKT)-nuclear factor-κB(NF-κB)-NOD-like receptor family pyrin domain containing 3(NLRP3) signaling axis was selected as a candidate target for in-depth research. Further, a rat model of DKD induced by a high-sugar, high-fat diet and streptozotocin was established to evaluate the pharmacological effects of CRT and verify the expression of related targets. The experimental results showed that CRT could effectively correct metabolic disturbances in DKD, restore immune-inflammatory balance, and improve renal function and its pathological changes by inhibiting the activation of the RAGE-ROS-PI3K-AKT-NF-κB-NLRP3 signaling axis. In conclusion, this study reveals that CRT alleviates the progression of DKD through dual regulation of metabolic reprogramming and immune-inflammatory responses, providing strong experimental evidence for its clinical application in DKD.

[通过RAGE-ROS-PI3K-AKT-NF-κB-NLRP3信号轴抗糖尿病肾病的机制]。
本研究旨在通过生物分子网络挖掘和动物模型验证相结合的方法,探讨秋黄根片(CRT)治疗糖尿病肾病(DKD)的作用机制。通过分析临床转录组学数据,构建了CRT候选靶点与dkd相关基因之间的相互作用网络。基于网络节点的拓扑特征值,确定了101个CRT对抗DKD的核心网络目标。这些靶点被发现与2型糖尿病、免疫反应和代谢重编程相关的多种途径密切相关。鉴于代谢重编程驱动的免疫-炎症失衡是DKD的关键致病机制之一,CRT的许多核心网络靶点参与了这一病理过程,选择晚期糖基化终产物受体(RAGE)-活性氧(ROS)-磷脂酰肌醇3-激酶(PI3K)-蛋白激酶B(AKT)-核因子-κB(NF-κB)- nod样受体家族pyrin domain containing 3(NLRP3)信号轴作为深入研究的候选靶点。建立高糖高脂饮食和链脲佐菌素诱导大鼠DKD模型,评价CRT的药理作用,验证相关靶点的表达。实验结果表明,CRT可通过抑制RAGE-ROS-PI3K-AKT-NF-κB-NLRP3信号轴的激活,有效纠正DKD代谢紊乱,恢复免疫-炎症平衡,改善肾功能及其病理改变。综上所述,本研究揭示了CRT通过双重调节代谢重编程和免疫炎症反应来缓解DKD的进展,为其在DKD中的临床应用提供了强有力的实验证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Zhongguo Zhongyao Zazhi
Zhongguo Zhongyao Zazhi Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (all)
CiteScore
1.50
自引率
0.00%
发文量
581
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