何首乌多糖通过抑制HMGB1/RAGE/TLR4途径减轻糖尿病小鼠的肾脏炎症浸润和纤维化。

Experimental and therapeutic medicine Pub Date : 2023-09-06 eCollection Date: 2023-10-01 DOI:10.3892/etm.2023.12192
Changqing Xu, Yanxu Chen, Zongmei Liu, Xiaoyan Fu
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引用次数: 0

摘要

糖尿病肾病(DKD)是导致肾功能衰竭的主要原因。先前的研究证明了黄芪多糖治疗糖尿病肾病的潜力。黄芪和红旗都来自豆科植物黄芪,但它们的种属不同,属于中药植物的同科不同属。然而,来自红旗的多糖化合物——多糖多糖(HPS)对DKD的影响,包括其成分和功效,仍然难以捉摸。本研究使用db/db小鼠作为DKD动物模型,除了格列本脲(7.2 mg/kg)外,还给予低剂量(30 mg/kg)和高剂量(60 mg/kg)的HPS。采集小鼠的血液和尿液样本,测量血糖、血清肌酐、尿白蛋白排泄量和尿β2-微球蛋白。此外,分别用TUNEL和HE染色观察肾组织中的细胞凋亡和组织学变化,并用EILSA和逆转录定量PCR检测肾组织中炎症因子的分泌和表达。此外,我们使用蛋白质印迹分析来测定纤维化相关蛋白和NF-κB信号通路蛋白的表达。HPS可降低血糖浓度、血清肌酐水平、尿白蛋白排泄率和尿β2-微球蛋白,且呈剂量依赖性。此外,HPS治疗减轻了DKD小鼠肾组织的细胞凋亡和病理损伤。HPS治疗后,DKD小鼠肾组织中纤维化相关蛋白纤连蛋白、α-平滑肌肌动蛋白和TGF-β1的表达水平降低。肾组织中炎症因子(IL-6、TNF-α和IL-1β)的分泌水平也降低,高剂量HPS治疗被发现更有效,类似于格列本脲介导的效果。进一步的机制分析表明,HPS对DKD小鼠的治疗作用可能是通过抑制高迁移率组box 1/晚期糖基化终产物受体/toll样受体4途径介导的。总之,目前的研究结果可以为DKD的治疗提供见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hedysarum polybotrys polysaccharide attenuates renal inflammatory infiltration and fibrosis in diabetic mice by inhibiting the HMGB1/RAGE/TLR4 pathway.

Diabetic kidney disease (DKD) is a leading cause of kidney failure. Previous studies demonstrated the therapeutic potential of Astragalus polysaccharide in treating diabetic nephropathy. Astragalus and Hongqi both come from the leguminous plant Astragalus, but their species and genera are different, belonging to the same family and different genera of traditional Chinese medicinal plants. However, the effects of Hedysarum polybotrys polysaccharide (HPS), a polysaccharide compound from Hongqi, on DKD, including its components and efficacy, have remained elusive. The present study utilized db/db mice as a DKD animal model administered with low (30 mg/kg) and high doses (60 mg/kg) of HPS, in addition to glyburide (7.2 mg/kg). Blood and urine samples were collected from mice and blood glucose, serum creatinine, urinary albumin excretion and urinary β2-microglobulin were measured. In addition, apoptosis and histological changes in kidney tissue were observed using TUNEL and HE staining, respectively, and the secretion and expression of inflammatory factors in kidney tissue were detected using EILSA and reverse transcription-quantitative PCR. Furthermore, we the expression of fibrosis-related proteins and NF-κB signaling pathway proteins was determined using western blot analysis. HPS was found to reduce the blood glucose concentration, serum creatinine levels, urinary albumin excretion rates and urinary β2-microglobulin in a dose-dependent manner. In addition, HPS treatment mitigated apoptosis and pathological damage in the kidney tissues of DKD mice. The expression levels of fibrosis-related proteins fibronectin, α-smooth muscle actin and TGF-β1 were observed to be decreased in kidney tissues of DKD mice following HPS treatment. The secretion levels of inflammatory factors (IL-6, TNF-α and IL-1β) were also reduced in kidney tissues, with high-dose HPS treatment found to be more effective, similar to the effects mediated by the glyburide. Further mechanistic analysis revealed that the therapeutic effects of HPS on DKD mice may be mediated by inhibiting the high mobility group box 1/receptor for advanced glycation end-products/toll-like receptor 4 pathway. In conclusion, the present findings could provide insight for the treatment of DKD.

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