吉林大学学报(医学版) ›› 2026, Vol. 52 ›› Issue (3): 703-718.doi: 10.13481/j.1671-587X.20260313

• 基础研究 • 上一篇    下一篇

基于桃红四物汤治疗牙周炎作用机制的网络药理学分析及其体外实验验证

韩爽1,黄靖雯1,石岳1,黄莘越2,郭梦茹2,郑义1(),马宁1()   

  1. 1.吉林大学口腔医院牙周科,吉林 长春 130021
    2.吉林大学口腔医院口腔急诊与黏膜病科,吉林 长春 130021
  • 收稿日期:2025-11-10 接受日期:2025-12-19 出版日期:2026-05-28 发布日期:2026-06-08
  • 通讯作者: 郑义,马宁 E-mail:zhengyi8304@jlu.edu.cn;man@jlu.edu.cn
  • 作者简介:韩 爽(1999-),女,辽宁省葫芦岛市人,在读硕士研究生,主要从事牙周炎治疗和机制方面的研究。
  • 基金资助:
    吉林省教育厅科学研究重点项目(JJKH20250205KJ)

Network pharmacology analysis of mechanism of Taohong Siwu Decoction in treating periodontitis and its in vitro experimental validation

Shuang HAN1,Jingwen HUANG1,Yue SHI1,Xinyue HUANG2,Mengru GUO2,Yi ZHENG1(),Ning MA1()   

  1. 1.Department of Periodontics,Stomatology Hospital,Jilin University,Changchun,130021,China
    2.Department of Oral Emergency & Oral Mucosal Diseases,Stomatology Hospital,Jilin University,Changchun 130021,China
  • Received:2025-11-10 Accepted:2025-12-19 Online:2026-05-28 Published:2026-06-08
  • Contact: Yi ZHENG,Ning MA E-mail:zhengyi8304@jlu.edu.cn;man@jlu.edu.cn

摘要:

目的 采用网络药理学和分子对接技术,分析桃红四物汤(THSWD)活性成分-靶点-信号通路调控网络,并通过体外实验验证其在牙周炎治疗中的作用,阐明其作用靶点及相关调控机制。 方法 使用中药系统药理学数据库与分析平台(TCMSP)获取THSWD的活性成分及潜在靶点,通过人类在线孟德尔遗传数据库(OMIM)、人类基因数据库(GeneCards)和疗效药靶数据库(TTD)筛选牙周炎相关靶点,采用STRING平台将THSWD与牙周炎的交集靶点构建蛋白质-蛋白质相互作用(PPI)网络,并筛选核心成分及靶点。通过Metascape数据库进行基因本体论(GO)功能富集分析和京都基因与基因组百科全书(KEGG)信号通路富集分析,利用分子对接技术验证核心成分与靶点的结合能力。体外实验以牙龈卟啉单胞菌脂多糖(P.g-LPS)诱导RAW264.7细胞,建立牙周炎体外模型,通过细胞计数试剂盒8(CCK-8)法检测各组THSWD的细胞毒性,实时荧光定量PCR(RT-qPCR)法检测各组炎症因子mRNA表达水平,2',7'-二氯二氢荧光素二乙酸酯(DCFH-DA)探针法检测细胞中活性氧(ROS)水平,Western blotting 法检测各组细胞中信号通路相关蛋白表达水平。 结果 网络药理学共筛选出THSWD的45个潜在活性成分(槲皮素、山柰酚和木犀草素等),与牙周炎有81个交集基因,其中核心靶点包括前列腺素内过氧化物合酶2(PTGS2)、热休克蛋白90α家族A类成员1(HSP90AA1)、B细胞淋巴瘤2(Bcl-2)、蛋白激酶B1(AKT1)、丝裂原活化蛋白激酶1(MAPK1)和v-Rel网状内皮增生病毒癌基因同源物A(RELA)。KEGG信号通路富集分析,THSWD可能通过调控Janus激酶/信号转导及转录激活因子(JAK/STAT)等信号通路影响牙周炎的炎症及免疫过程。分子对接技术,THSWD核心成分与牙周炎关键靶点具有较强结合能力。体外实验选择0.2、0.4、0.8和1.6 g·L-1 THSWD为给药浓度,药物的半数抑制浓度(IC??)为41.72 g·L-1。RT-qPCR法,与对照组比较,脂多糖(LPS)组细胞中肿瘤坏死因子α(TNF-α)、白细胞介素1β(IL-)、白细胞介素6(IL-6)和白细胞介素10(IL-10) mRNA表达水平明显升高(P<0.01);与LPS组比较,0.2、0.4、0.8和1.6 g·L-1 THSWD组细胞中TNF-αIL-IL-6 mRNA表达水平明显降低(P<0.01),IL-10 mRNA表达水平明显升高(P<0.05或P<0.01)。DCFH-DA探针法,与对照组比较,LPS组细胞中ROS水平明显升高(P<0.01);与LPS组比较,0.2、0.4和0.8 g·L-1 THSWD组细胞中ROS水平明显降低(P<0.01)。Western blotting法,与对照组比较,LPS组细胞中TNF-α、IL-1β、IL-6和磷酸化Janus激酶1(p-JAK1)蛋白表达水平明显升高(P<0.01);与LPS组比较,0.2、0.4和0.8 g·L-1 THSWD组和芦可替尼组细胞中TNF-α、IL-1β、IL-6和p-JAK1蛋白表达水平均明显降低(P<0.05或P<0.01)。 结论 THSWD能够通过多成分、多靶点和多通路的方式治疗牙周炎,体外实验证实THSWD能够抑制JAK/STAT信号通路的激活,并且具有体外抗炎和抗氧化作用。

关键词: 牙周炎, 桃红四物汤, 网络药理学, 分子对接技术, 抗炎机制

Abstract:

Objective To analyze the active ingredient-target-signaling pathway regulatory network of Taohong Siwu Decoction (THSWD) by network pharmacology and molecular docking technology, and to verify its role in the treatment of periodontitis through in vitro experiments, and to clarify its action targets and related regulatory mechanisms. Methods The Traditional Chinese Medicine Systems Pharmacology Database and Analysis Platform (TCMSP) was used to obtain the active ingredients and potential targets of THSWD; the Online Mendelian Inheritance in Man (OMIM), Human Gene Database (GeneCards), and Therapeutic Target Database (TTD) were used to screen the periodontitis-related targets; the STRING platform was used to construct a protein-protein interaction (PPI) network of the intersecting targets of THSWD and periodontitis, and to screen the core components and targets; the Metascape database was used for Gene Ontology (GO) functional enrichment analysis and Kyoto Encyclopedia of Genes and Genomes (KEGG) signaling pathway enrichment analysis; molecular docking technology was used to verify the binding ability of the core components to the targets. In the in vitro experiments, the RAW264.7 cells were induced by Porphyromonas gingivalis lipopolysaccharide (P.g-LPS) to establish the in vitro model of periodontitis; cell counting kit-8 (CCK-8) method was used to detect the cytotoxicities of THSWD in various groups; real-time fluorescence quantitative PCR (RT-qPCR) was used to detect the mRNA expression levels of inflammatory factors in various groups; 2',7'-dichlorodihydrofluorescein diacetate (DCFH-DA) probe method was used to detect the levels of reactive oxygen species (ROS) in the cells; Western blotting method was used to detect the expression levels of pathway-related proteins in various groups. Results Network pharmacology screening identified 45 potential active ingredients (quercetin, kaempferol, luteolin, etc.) of THSWD, and 81 intersecting genes with periodontitis, among which the core targets included prostaglandin-endoperoxide synthase 2 (PTGS2), heat shock protein 90 alpha family class A member 1 (HSP90AA1), B-cell lymphoma 2 (Bcl-2), protein kinase B1 (AKT1), mitogen-activated protein kinase 1 (MAPK1), and v-rel reticuloendotheliosis viral oncogene homolog A (RELA). The KEGG signaling pathway enrichment analysis results showed that THSWD might affect the inflammatory and immune processes of periodontitis by regulating signaling pathways such as the Janus kinase/signal transducer and activator of transcription (JAK/STAT) signaling pathway. The molecular docking technology results showed that the core components of THSWD had strong binding ability to the key targets of periodontitis. In the in vitro experiments, 0.2, 0.4, 0.8, and 1.6 g·L-1 THSWD were selected as the administration concentrations, and the half-maximal inhibitory concentration (IC??) of the drug was 41.72 g·L-1. The RT-qPCR results showed that compared with control group, the expression levels of tumor necrosis factor-α (TNF-α), interleukin-1β (IL-), interleukin-6 (IL-6), and interleukin-10 (IL-10) mRNA in the cells in lipopolysaccharide (LPS) group were significantly increased (P<0.01); compared with LPS group, the expression levels of TNF-αIL-, and IL-6 mRNA in the cells in 0.2, 0.4, 0.8, and 1.6 g·L-1 THSWD groups were significantly decreased (P<0.01), and the expression level of IL-10 mRNA was significantly increased (P<0.05 or P<0.01). The DCFH-DA probe method results showed that compared with control group, the ROS level in the cells in LPS group was significantly increased (P<0.01); compared with LPS group, the ROS levels in the cells in 0.2, 0.4, and 0.8 g·L-1 THSWD groups were significantly decreased (P<0.01). The Western blotting method results showed that compared with control group, the expression levels of TNF-α, IL-1β, IL-6, and phosphorylated Janus kinase 1 (p-JAK1) proteins in the cells in LPS group were significantly increased (P<0.01); compared with LPS group, the expression levels of TNF-α, IL-1β, IL-6, and p-JAK1 proteins in the cells in 0.2, 0.4, and 0.8 g·L-1 THSWD group and ruxolitinib group were significantly decreased (P<0.05 or P<0.01). Conclusion THSWD can treat periodontitis through multi-component, multi-target, and multi-pathway approaches.The in vitro experiments confirm that THSWD can inhibit the activation of JAK/STAT signaling pathway and has anti-inflammatory and antioxidant effects in vitro.

Key words: Periodontitis, Taohong Siwu Decoction, Network pharmacology, Molecular docking technology, Anti-inflammatory mechanism

中图分类号: 

  • R78