Mechanistic insights into targeting caspase-3 activation and alveolar macrophage pyroptosis by Ephedra and bitter almond compounds for treating pediatric pneumonia via network pharmacology and bioinformatics

IF 3.2 4区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Lei Wang, Yinan Guo, Xiaozhou Sun, Dan Wang, Tianlong Xie, Liang Liu, Liping Sun, Lina Wei
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Abstract

This study investigates the molecular mechanism of Ma Huang-Ku Xing Ren, a traditional Chinese medicine formula, in treating pediatric pneumonia. The focus is on the regulation of caspase-3 activation and reduction of alveolar macrophage necrosis through network pharmacology and bioinformatics analyses of Ephedra and bitter almond components. Active compounds and targets from ephedrine and bitter almond were obtained using TCMSP, TCMID, and GeneCards databases, identifying pediatric pneumonia-related genes. A protein–protein interaction (PPI) network was constructed, and core targets were screened. GO and KEGG pathway enrichment analyses identified relevant genes and pathways. An acute pneumonia mouse model was created using the lipopolysaccharide (LPS) inhalation method, with caspase-3 overexpression induced by a lentivirus. The mice were treated with Ephedra and bitter almond through gastric lavage. Lung tissue damage, inflammatory markers (IL-18 and IL-1β), and cell death-related gene activation were assessed through H&E staining, ELISA, western blot, flow cytometry, and immunofluorescence. The study identified 128 active compounds and 121 gene targets from Ephedra and bitter almond. The PPI network revealed 13 core proteins, and pathway analysis indicated involvement in inflammation, apoptosis, and cell necrosis, particularly the caspase-3 pathway. In vivo results showed that Ephedra and bitter almond treatment significantly mitigated LPS-induced lung injury in mice, reducing lung injury scores and inflammatory marker levels. It also decreased caspase-3 activity and cell death in alveolar macrophages. In conclusion, the active ingredients of Ma Huang-Ku Xing Ren, particularly targeting caspase-3, may effectively treat pediatric pneumonia by reducing apoptosis in alveolar macrophages, as demonstrated by both network pharmacology, bioinformatics analyses, and experimental data.

Abstract Image

Abstract Image

通过网络药理学和生物信息学揭示麻黄和苦杏仁化合物靶向 Caspase-3 激活和肺泡巨噬细胞热解的机制,以治疗小儿肺炎
本研究探讨了中药配方麻黄苦杏仁治疗小儿肺炎的分子机制。通过对麻黄和苦杏仁成分的网络药理学和生物信息学分析,重点研究其对caspase-3活化的调控作用以及减少肺泡巨噬细胞坏死的作用。利用 TCMSP、TCMID 和 GeneCards 数据库获得了麻黄碱和苦杏仁的活性化合物和靶标,确定了小儿肺炎相关基因。构建了蛋白质-蛋白质相互作用(PPI)网络,并筛选了核心靶标。GO和KEGG通路富集分析确定了相关基因和通路。利用吸入脂多糖(LPS)的方法建立了急性肺炎小鼠模型,并通过慢病毒诱导 Caspase-3 过表达。小鼠通过洗胃接受麻黄和苦杏仁治疗。通过 H&E 染色法、ELISA、Western 印迹法、流式细胞术和免疫荧光法对肺组织损伤、炎症标志物(IL-18 和 IL-1β)和细胞死亡相关基因活化进行了评估。研究从麻黄和苦杏仁中发现了 128 种活性化合物和 121 个基因靶点。PPI网络显示了13个核心蛋白,通路分析表明它们参与了炎症、细胞凋亡和细胞坏死,尤其是参与了caspase-3通路。体内研究结果表明,麻黄和苦杏仁能显著减轻 LPS 诱导的小鼠肺损伤,降低肺损伤评分和炎症标志物水平。它还降低了 Caspase-3 活性和肺泡巨噬细胞的细胞死亡。总之,通过网络药理学、生物信息学分析和实验数据,麻黄苦杏仁的有效成分,特别是针对caspase-3的有效成分,可以通过减少肺泡巨噬细胞的凋亡来有效治疗小儿肺炎。
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
Chemical Biology & Drug Design
Chemical Biology & Drug Design 医学-生化与分子生物学
CiteScore
5.10
自引率
3.30%
发文量
164
审稿时长
4.4 months
期刊介绍: Chemical Biology & Drug Design is a peer-reviewed scientific journal that is dedicated to the advancement of innovative science, technology and medicine with a focus on the multidisciplinary fields of chemical biology and drug design. It is the aim of Chemical Biology & Drug Design to capture significant research and drug discovery that highlights new concepts, insight and new findings within the scope of chemical biology and drug design.
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