网络药理学揭示山楂煎剂治疗老年痴呆症合并糖尿病的机制

IF 2.7 3区 生物学 Hereditas Pub Date : 2024-01-03 DOI:10.1186/s41065-023-00301-z
Tao Chen, Yining Lei, Manqin Li, Xinran Liu, Lu Zhang, Fei Cai, Xiaoming Gong, Ruyi Zhang
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引用次数: 0

摘要

川芎煎剂(SZRD)是一种传统中药名方,已被证明具有合理的认知效果,同时还能放松和缓解失眠。多项研究表明,川芎嗪对糖尿病和阿尔茨海默病(AD)有明显的治疗效果。然而,SZRD 治疗糖尿病阿尔茨海默病的有效成分和可能过程尚不清楚。本研究旨在初步阐明 SZRD 治疗糖尿病阿尔茨海默病的潜在机制和潜在活性成分。研究人员在TCMSP数据库中检索了SZRD的主要成分和相应的蛋白靶点。利用基因表达总库数据库对糖尿病和阿尔茨海默病的差异基因表达进行了分析,并从 OMIM 和 genecards 数据库中对差异表达基因进行了补充。药物-化合物-靶点-疾病网络使用 Cytoscape 3.8.0 构建。疾病和深部靶标被导入 STRING 数据库,以构建蛋白质-蛋白质相互作用网络。此外,还对基因交叉点进行了基因本体和京都基因与基因组百科全书分析。对中枢基因和活性化合物进行了分子对接和分子动力学模拟。为进一步分析关键基因,还进行了基因组富集分析(Gene Set Enrichment Analysis)。通过基因表达总库(Gene Expression Omnibus)数据库,我们获得了1977个糖尿病相关基因和622个AD相关基因。在药物、糖尿病和AD中,我们发现了97个基因。药物-化合物-靶标-疾病网络显示,槲皮素、山柰醇、甘草查耳酮 a、异鼠李素、甲萘素和柚皮素可能是发挥效应的核心成分。PPI 网络分析确定了 IL6、TNF、IL1B、CXCL8、IL10、CCL2、ICAM1、STAT3 和 IL4 等枢纽基因。基因本体和京都基因和基因组百科全书分析表明,SZRD在治疗阿尔茨海默氏症合并糖尿病中主要参与药物反应、衰老、异生物反应和酶结合等生物过程,以及癌症通路、化学致癌-受体激活、流体剪切应力和动脉粥样硬化等信号通路。分子对接结果表明,甘草查耳酮 a、异鼠李素、山柰醇、槲皮素和福莫西汀与 CXCL8、IL1B 和 CCL2 具有很高的亲和力。分子动力学模拟也证实了 CXCL8 与甘草查耳酮 a、异鼠李素和山奈果醇之间存在很强的相互作用。基因组富集分析(Gene Set Enrichment Analysis)显示,CXCL8、IL1B 和 CCL2 在糖尿病中具有重要的潜在作用。这项研究首次揭示了SZRD治疗阿尔茨海默氏症合并糖尿病的有效成分和潜在分子机制,为今后的基础研究奠定了理论基础。- SZRD可能通过潜在的活性成分和枢纽基因改善糖尿病阿尔茨海默氏症。- 甘草查耳酮 a、异鼠李素、山柰醇、槲皮素和福莫西汀是 SZRD 治疗糖尿病阿尔茨海默氏症的潜在活性成分。- IL6、TNF、IL1B、CXCL8、IL10、CCL2、ICAM1、STAT3 和 IL4 是枢纽基因,与潜在的活性成分有很强的结合能力。
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Network pharmacology to unveil the mechanism of suanzaoren decoction in the treatment of alzheimer’s with diabetes
Suanzaoren Decoction (SZRD), a well-known formula from traditional Chinese medicine, has been shown to have reasonable cognitive effects while relaxing and alleviating insomnia. Several studies have demonstrated significant therapeutic effects of SZRD on diabetes and Alzheimer’s disease (AD). However, the active ingredients and probable processes of SZRD in treating Alzheimer’s with diabetes are unknown. This study aims to preliminarily elucidate the potential mechanisms and potential active ingredients of SZRD in the treatment of Alzheimer’s with diabetes. The main components and corresponding protein targets of SZRD were searched on the TCMSP database. Differential gene expression analysis for diabetes and Alzheimer’s disease was conducted using the Gene Expression Omnibus database, with supplementation from OMIM and genecards databases for differentially expressed genes. The drug-compound-target-disease network was constructed using Cytoscape 3.8.0. Disease and SZRD targets were imported into the STRING database to construct a protein-protein interaction network. Further, Gene Ontology and Kyoto Encyclopedia of Genes and Genomes analyses were performed on the intersection of genes. Molecular docking and molecular dynamics simulations were conducted on the Hub gene and active compounds. Gene Set Enrichment Analysis was performed to further analyze key genes. Through the Gene Expression Omnibus database, we obtained 1977 diabetes related genes and 622 AD related genes. Among drugs, diabetes and AD, 97 genes were identified. The drug-compound-target-disease network revealed that quercetin, kaempferol, licochalcone a, isorhamnetin, formononetin, and naringenin may be the core components exerting effects. PPI network analysis identified hub genes such as IL6, TNF, IL1B, CXCL8, IL10, CCL2, ICAM1, STAT3, and IL4. Gene Ontology and Kyoto Encyclopedia of Genes and Genomes analyses showed that SZRD in the treatment of Alzheimer’s with diabetes is mainly involved in biological processes such as response to drug, aging, response to xenobiotic, and enzyme binding; as well as signaling pathways such as Pathways in cancer, Chemical carcinogenesis - receptor activation, and Fluid shear stress and atherosclerosis. Molecular docking results showed that licochalcone a, isorhamnetin, kaempferol, quercetin, and formononetin have high affinity with CXCL8, IL1B, and CCL2. Molecular dynamics simulations also confirmed a strong interaction between CXCL8 and licochalcone a, isorhamnetin, and kaempferol. Gene Set Enrichment Analysis revealed that CXCL8, IL1B, and CCL2 have significant potential in diabetes. This study provides, for the first time, insights into the active ingredients and potential molecular mechanisms of SZRD in the treatment of Alzheimer’s with diabetes, laying a theoretical foundation for future basic research. • SZRD may improve Alzheimer’s with diabetes through potential active ingredients and hub genes. • licochalcone a, isorhamnetin, kaempferol, quercetin, and formononetin are potential active ingredients of SZRD for the treatment of Alzheimer’s with diabetes. • IL6, TNF, IL1B, CXCL8, IL10, CCL2, ICAM1, STAT3 and IL4 are hub genes and have a strong binding capacity to potential active ingredients.
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来源期刊
Hereditas
Hereditas Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.80
自引率
3.70%
发文量
0
期刊介绍: For almost a century, Hereditas has published original cutting-edge research and reviews. As the Official journal of the Mendelian Society of Lund, the journal welcomes research from across all areas of genetics and genomics. Topics of interest include human and medical genetics, animal and plant genetics, microbial genetics, agriculture and bioinformatics.
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