基于UHPLC-Q-TOF-MS和网络药理学探究健脑通络胶囊治疗脑梗死的作用机制

    Investigation on Mechanism of Jiannao Tongluo Capsule in Treating Cerebral Infarction Based on UHPLC-Q-TOF-MS and Network Pharmacology

    • 摘要:
      目的  采用UHPLC-Q-TOF-MS联用分子网络技术快速解析健脑通络胶囊(Jiannao Tongluo capsule,JNTL)的化学成分;并结合网络药理学和体外实验验证JNTL治疗脑梗死(cerebral infarction,CI)的潜在作用机制。
      方法 采用正负离子模式质谱扫描获取JNTL二级质谱数据,并基于MS/MS碎片模式相似性构建全球天然产物社会分子网络,结合该网络中结构相似的分子簇、一/二级质谱数据和相关参考文献快速鉴定JNTL成分;通过网络药理学分析JNTL治疗CI的核心靶点和潜在作用机制,并建立可视化网络;最后通过体外建立HT22小鼠海马神经元细胞氧糖剥夺/复氧(oxygen-glucose deprivation/reoxygenation,OGD/R)模型进行验证。
      结果 在JNTL中鉴定出51个化学成分,包括有机酸类化合物11个、黄酮及其苷类化合物7个、三萜皂苷类化合物6个、环烯醚萜苷类化合物2个及其他类化合物25个。经网络药理学分析成分靶点与CI疾病靶点共有105个交集靶点,基因本体论功能富集分析得到608种生物过程、85种细胞组分、159种分子功能;京都基因与基因组百科全书通路富集分析得到146条通路(P<0.05);蛋白质-蛋白质相互作用网络分析得到白细胞介素-6(interleukin-6,IL-6)、肿瘤坏死因子-α(tumor necrosis factor-α,TNF-α)、蛋白激酶B α(protein kinase B alpha,AKT1)等核心靶点;分子对接结果表明,黄芪甲苷、隐丹参酮和丹酚酸B与AKT1、TNF-α及IL-6具有良好的结合活性。体外实验结果显示,当JNTL血清浓度≤20%时,对正常HT22细胞未产生明显毒性作用。在OGD/R模型中,JNTL可浓度依赖性地提高细胞存活率,显著减轻神经元损伤(P<0.01)。进一步通过ELISA检测发现,JNTL能显著抑制OGD/R诱导的炎症因子TNF-α、IL-6和IL-1β的释放(P<0.05)。Western blotting分析显示,JNTL可激活PI3K-Akt信号通路,表现为p-PI3K/PI3K和p-Akt/Akt比值显著上升,并有效抑制HIF-1α蛋白的异常积累(P<0.01)。
      结论 本研究首次从JNTL中鉴定出51个化学成分,明确了其化学物质基础;并首次揭示JNTL可能通过激活PI3K-Akt信号通路、抑制炎症因子(TNF-α、IL-6、IL-1β)释放及下调HIF-1α蛋白表达,从而在OGD/R模型中发挥神经保护作用,并为阐明JNTL治疗CI的药效物质基础及分子机制提供了关键科学依据。

       

      Abstract:
      OBJECTIVE  To rapidly identify the chemical constituents of Jiannao Tongluo capsule(JNTL) using UHPLC-Q-TOF-MS combined with molecular networking technology, and to further validate the potential mechanism of JNTL in treating cerebral infarction(CI) by integrating network pharmacology and in vitro experimental verification.
      METHODS MS/MS spectral data of JNTL were acquired using both positive and negative ion modes mass spectrometry. A global natural products social molecular networking was constructed based on MS/MS fragmentation pattern similarity. Components of JNTL were rapidly identified by analyzing clusters of structurally similar molecules within the network, along with MS/MS data and relevant literature. Network pharmacology was applied to predict the core targets and potential mechanisms of JNTL in the treatment of CI, and visualization networks were generated. Finally, an in vitro oxygen-glucose deprivation/reoxygenation(OGD/R) model was established using HT22 mouse hippocampal neuronal cells for experimental validation.
      RESULTS A total of 51 chemical constituents were identified in JNTL, including 11 organic acids, 7 flavonoids and their glycosides, 6 triterpenoid saponins, 2 iridoid glycosides, and 25 other compounds. Network pharmacology analysis revealed 105 overlapping targets between the component targets of JNTL and the disease targets of CI. Gene Ontology functional enrichment analysis identified 608 biological processes, 85 cellular components, and 159 molecular functions. Kyoto Encyclopedia of Genes and Genomes pathway enrichment analysis indicated 146 pathways(P<0.05). Protein-protein interaction network analysis identified core targets such as interleukin-6(IL-6), tumor necrosis factor-α(TNF-α), and protein kinase B alpha(AKT1); molecular docking results indicated that astragaloside Ⅳ, cryptotanshinone and salvianolic acid B exhibited favorable binding activities with AKT1, TNF-α and IL-6. In vitro experimental results showed that JNTL-containing serum at concentrations up to 20% did not exhibit significant toxicity toward normal HT22 cells. In the OGD/R model, JNTL concentration-dependently increased cell viability and significantly alleviated neuronal injury(P<0.01). Furthermore, ELISA results demonstrated that JNTL significantly inhibited the release of the inflammatory factors TNF-α, IL-6, and IL-1β induced by OGD/R(P<0.05). Western blotting analysis indicated that JNTL activated the PI3K-Akt signaling pathway, as evidenced by significantly increased ratios of p-PI3K/PI3K and p-Akt/Akt, and effectively suppressed the abnormal accumulation of HIF-1α protein(P<0.01).
      CONCLUSION For the first time, this study identified 51 chemical constituents from JNTL, thereby elucidating its chemical foundation. Furthermore, it demonstrate that JNTL may exert neuroprotective effects in the OGD/R model by activating the PI3K-Akt signaling pathway, inhibiting the release of inflammatory factors(TNF-α, IL-6, IL-1β), and downregulating HIF-1α protein expression. Additionally, it provides key scientific evidence for elucidating the pharmacodynamic material basis and molecular mechanisms underlying JNTL’s therapeutic effects on CI.

       

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