食品科学 ›› 2026, Vol. 47 ›› Issue (13): 185-197.doi: 10.7506/spkx1002-6630-20251105-026

• 营养卫生 • 上一篇    下一篇

葛根素缓解2型糖尿病小鼠血管平滑肌细胞成骨表型转化的作用及机制

关文龙,袁漪,羡晓萌,吴晓智,李夫奥,郭伟,崔佳文,王嫚,杜雨萌,张佳静,韩静雯,刘艺斐,佟苗苗,赵丽丽   

  1. (1.河北医科大学药学院,河北 石家庄 050017;2.河北省人民医院,河北 石家庄 050051)
  • 出版日期:2026-07-15 发布日期:2026-07-17
  • 基金资助:
    国家自然科学基金青年科学基金项目(31800975);河北省自然科学基金面上项目(H2024206532); 河北省中医药管理局项目(2023131)

Effect and Mechanism of Puerarin on Alleviating Osteogenic Phenotype Transformation of Vascular Smooth Muscle Cells in Type 2 Diabetic Mellitus Mice

GUAN Wenlong, YUAN Yi, XIAN Xiaomeng, WU Xiaozhi, LI Fu’ao, GUO Wei, CUI Jiawen, WANG Man, DU Yumeng, ZHANG Jiajing, HAN Jingwen, LIU Yifei, TONG Miaomiao, ZHAO Lili   

  1. (1. College of Pharmacy, Hebei Medical University, Shijiazhuang 050017, China; 2. Hebei Provincial People’s Hospital, Shijiazhuang 050051, China)
  • Online:2026-07-15 Published:2026-07-17

摘要: 目的:阐明葛根素缓解2型糖尿病(type 2 diabetes mellitus,T2DM)小鼠血管平滑肌细胞(vascular smooth muscle cells,VSMCs)成骨表型转化的作用及机制。方法:以高脂饮食联合链脲佐菌素建立小鼠T2DM模型,通过组织免疫荧光染色观察葛根素对T2DM小鼠胸主动脉成骨转化蛋白表达的影响,通过茜素红S染色检测动脉钙化情况;取大鼠胸腹主动脉,制备VSMCs,以高糖或高糖钙化培养基诱导VSMCs发生成骨表型转化和钙化,通过Western blot法检测成骨转化标志蛋白表达,偶氮偶联法检测碱性磷酸酶活性,茜素红S染色检测细胞钙沉积量,明确葛根素对VSMCs成骨表型转化和钙化的影响。在此基础上,利用网络药理学结合基因表达综合(Gene Expression Omnibus,GEO)数据库探究葛根素调节糖尿病及高糖诱导的VSMCs成骨表型转化的关键靶点。结果:葛根素对T2DM小鼠胸主动脉形态有一定的改善作用,可显著抑制T2DM小鼠主动脉的Runt相关转录因子2(Runt-related transcription factor 2,RUNX2)、骨形态发生蛋白2(bone morphogenetic protein 2,BMP2)表达,抑制模型小鼠细胞的钙沉积;细胞水平上,1、10 μmol/L葛根素均可显著降低VSMCs的RUNX2和BMP2表达,同时促进VSMCs平滑肌22α表达,抑制细胞碱性磷酸酶活性,以及高糖钙化诱导的细胞钙沉积。网络药理学分析结果显示,葛根素通过多靶点协同调节发挥抑制T2DM诱导VSMCs成骨表型转化的作用。进一步结合GEO数据库筛选得到葛根素调节高糖诱导的VSMCs成骨表型转化的9 个关键靶点。利用分子对接对关键靶点进行初步筛选,其中葛根素与溶质载体家族7成员11(solute carrier family 7 member 11,SLC7A11)的结合能最低(-40.735 kJ/mol)。细胞热位移分析结果显示,葛根素可与靶蛋白SLC7A11结合。进一步利用分子动力学模拟对二者的结合模式、关键相互作用氨基酸、结合稳定性进行分析。细胞实验证实,葛根素可促进SLC7A11的表达并调节其介导的细胞谷胱甘肽相对含量和活性氧水平,棕榈酰化参与葛根素对SLC7A11表达的调节。结论:葛根素可抑制T2DM诱导的VSMCs成骨表型转化和钙化,其抑制作用是多靶点协同调节的结果,对SLC7A11表达的调节是其机制之一。

关键词: 葛根素;2型糖尿病小鼠主动脉钙化;血管平滑肌细胞成骨表型转化;网络药理学;溶质载体家族7成员11

Abstract: Our aim was to elucidate the effect and mechanism of puerarin on alleviating the osteogenic phenotypic transformation of vascular smooth muscle cells (VSMCs) in mice with type 2 diabetes mellitus (T2DM). A mouse model of T2DM was established using a high-fat diet combined with streptozotocin, and immunofluorescence staining was used to investigate the expression of osteogenic transformation proteins in the thoracic aorta of T2DM mice. Arterial calcification was detected by alizarin red S staining. VSMCs were harvested from the thoracic aorta and were induced to undergo osteogenic phenotype transformation and calcification by high glucose and high glucose calcifying medium. Western blot was used to detect the expression of osteogenic transformation marker proteins, azo coupling was used to detect alkaline phosphatase activity, and alizarin red S staining was used to detect the amount of calcium deposition. On this basis, network pharmacology and the Gene Expression Omnibus (GEO) database were used to explore the key targets of puerarin in regulating the osteogenic phenotype transformation of VSMCs induced by diabetes and high glucose. The results showed that puerarin ameliorated morphological alterations in the thoracic aorta of T2DM mice. Notably, it suppressed the expression of Runt-related transcription factor 2 (RUNX2) and bone morphogenetic protein 2 (BMP2) in the aortic tissue, thereby attenuating vascular calcium deposition in this animal model. At the cellular level, puerarin at concentrations of 1 and 10 μmol/L significantly reduced the expression of RUNX2 and BMP2 in VSMCs, while promoting the expression of smooth muscle α22. Additionally, it inhibited cellular alkaline phosphatase activity and prevented calcium deposition induced by high glucose and calcification. Network pharmacology analysis showed that puerarin inhibits T2DM-induced osteogenic phenotype transformation of VSMCs via synergistic regulation of multiple targets. Further, using the GEO database, we selected nine key targets of puerarin in regulating the osteogenic transformation of VSMCs induced by high glucose. The key targets were screened using molecular docking, and it was found that the binding energy between puerarin and the solute carrier family 7 member 11 (SLC7A11) was the lowest (–40.735 kJ/mol). Cellular thermal shift assay showed the binding of puerarin to the target protein SLC7A11. Further analysis using molecular dynamics simulation elucidated the binding mode, key interacting amino acids, and binding stability between puerarin and SLC7A11. Cell-based experiments confirmed that puerarin promoted the protein expression of SLC7A11 and regulated SLC7A11-mediated glutathione content and reactive oxygen species (ROS) levels. Additionally, palmitoylation was involved in the regulation of SLC7A11 expression by puerarin. In conclusion, puerarin can inhibit T2DM-induced osteogenic phenotypic transformation and calcification of VSMCs, which is attributed to synergistic regulation of multiple targets. Modulation of SLC7A11 expression is one of the underlying mechanisms.

Key words: puerarin; aortic calcification in type 2 diabetic mellitus mice; osteogenic phenotype transformation of vascular smooth muscle cells; network pharmacology; solute carrier family 7 member 11

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