1.云南中医药大学中药学院(云南 昆明 650500)
2.昆明医科大学生物医药工程研究中心(云南 昆明 650500)
陶雅婷,女,在读硕士生,主要从事黄精古方的机理研究
俞捷,教授,硕士生导师;E-mail:cz.yujie@gmail.com
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陶雅婷, 李凤娇, 杨敏, 等. 基于网络药理学的黄精丸干预糖脂代谢紊乱机制研究[J]. 上海中医药大学学报, 2021,35(1):83-92.
TAO Yating, LI Fengjiao, YANG Min, et al. MechanismofHuangjingPillonimprovingdisorderofglycolipidmetabolismbasedon network pharmacology[J]. Academic Journal of Shanghai University of Traditional Chinese Medicine, 2021,35(1):83-92.
陶雅婷, 李凤娇, 杨敏, 等. 基于网络药理学的黄精丸干预糖脂代谢紊乱机制研究[J]. 上海中医药大学学报, 2021,35(1):83-92. DOI: 10.16306/j.1008-861x.2021.01.011.
TAO Yating, LI Fengjiao, YANG Min, et al. MechanismofHuangjingPillonimprovingdisorderofglycolipidmetabolismbasedon network pharmacology[J]. Academic Journal of Shanghai University of Traditional Chinese Medicine, 2021,35(1):83-92. DOI: 10.16306/j.1008-861x.2021.01.011.
目的:,2,探究黄精丸干预糖脂代谢紊乱的机制。,方法:,2,从中医药百科全书(ETCM)等数据库和相关文献搜集成分,根据胃肠吸收、P-糖蛋白底物和成药性模拟筛选活性成分,从SwissTargetPrediction等数据库搜集靶点,使用Cytoscape软件构建成分-靶点网络,并进行蛋白相互作用网络分析、GO功能富集和KEGG通路分析。,结果:,2,甾体皂苷类是黄精丸的主要活性成分,作用于由磷脂酰肌醇-3-激酶(PI3K)、信号转导和转录激活因子3(STAT3)等69个靶点构成的蛋白网络。靶点富集成蛋白质丝氨酸/苏氨酸激酶活动、PI3K-蛋白激酶B(PI3K-AKT)等通路。,结论:,2,网络药理学初步表明黄精丸调节糖脂代谢可能是通过甾体皂苷类成分,影响PI3K和STAT3等靶点,进一步影响蛋白质丝氨酸/苏氨酸活动、PI3K-AKT信号等通路。
Objective:,2,To investigate the mechanism of Huangjing Pill on improving the disorder of glycolipid metabolism.,Methods:,2,Components were obtained from databases such as ETCM and related literatures.GI-absorption, P-gp substrate and drug-likeness were employed to screen out the active components.Databases such as SwissTargetPrediction were used to predict targets.Cytoscape software was used to establish component-target network, and the protein-protein interaction network analysis, GO function enrichment and KEGG pathway analysis were performed.,Results:,2,Steroidal saponins were the main active ingredients of Huangjing Pill, acting on the protein network composed of 69 targets including phosphatidylinositol-3-kinase(PI3K), signal transducer and activator of transcription 3(STAT3) and so on.These targets were significantly enriched into protein serine/threonine kinase activity, phosphatidylinositol-3-kinase-protein kinase B(PI3K-AKT) signaling pathway and other pathways.,Conclusion:,2,Network pharmacology reveals that steroidal saponins in Huangjing Pill play a role in glycolipid metabolism by influencing PI3K, STAT3 and other targets as well as protein serine/threonine activity and PI3K-AKT signal pathway.
黄精丸黄精天冬糖脂代谢网络药理学
Huangjing PillPolygonati RhizomaAsparagi Radixglycolipid metabolismnetwork pharmacology
项磊,陈羽,朴胜华,等.糖脂代谢紊乱流行病学及糖脂代谢病分期诊治[J].广东药科大学学报,2019,35(2):159-163.
中华医学会肝病学分会脂肪肝和酒精性肝病学组,中国医师协会脂肪性肝病专家委员会.非酒精性脂肪性肝病防治指南(2018年更新版)[J].实用肝脏病杂志,2018,21(2):177-186
PAN L,YANG Z H,WU Y,et al. The prevalence,awareness,treatment and control of dyslipidemia among adults in China[J]. Atherosclerosis,2016,248:2-9.
马宇航,彭永德.2型糖尿病降糖药物治疗进展[J].中国临床保健杂志,2020,23(4):437-445.
杨晓云.高脂血症治疗的临床研究进展[J].海峡药学,2016,28(12):99-101.
李意平.中西医结合治疗2型糖尿病胰岛素抵抗临床观察[J].糖尿病新世界,2019,22(6):65-66.
南京中医药大学.中药大辞典[M].上海:上海科学技术出版社,2006:2828-2831.
ZHAO P,ZHAO C C,LI X,et al.The genus Polygonatum:a review of ethnopharmacology,phytochemistry and pharmacology[J]. J Ethnopharmacol,2018,214:274-291.
宫兆燕,张君利.天冬活性化合物的提取及其药理活性研究进展[J].医学综述,2018,24(24):4938-4942.
陆建美,闫鸿丽,王艳芳,等.滇黄精及其活性成分群对α-糖苷酶活性抑制作用研究[J].中国现代中药,2015,17(3):200-203.
KO J H,KWON H S,YOON J M,et al.Effects of Polygonatum sibiricum rhizome ethanol extract in high-fat diet-fed mice[J]. Pharm Biol,2015,53(4):563-570.
TAO X F,YIN L H,XU L N,et al.Dioscin:a diverse acting natural compound with therapeutic potential in metabolic diseases,cancer,inflammation and infections[J]. Pharmacol Res,2018,137:259-269
LIU Y W,HAO Y C,CHEN Y J,et al. Protective effects of sarsasapogenin against early stage of diabetic nephropathy in rats[J].Phytother Res,2019,33(9):2470.
LU J M,WANG Y F,YAN H L,et al.Antidiabetic effect of total saponins from Polygonatum kingianum in streptozotocin-induced diabetic rats[J].J Ethnopharmacol,2016,179:291-300.
YAN H L,LU JM,WANG Y F,et al.Intake of total saponins and polysaccharides from Polygonatum kingianum affects the gut microbiota in diabetic rats[J].Phytomedicine,2017,26:45-54.
王艳芳.滇黄精多糖改善大鼠脂代谢紊乱的作用研究[D].昆明:云南中医学院,2017.
ZHANG W J,HUAI Y,MIAO Z P,et al.Systems pharmacology for investigation of the mechanisms of action of traditional Chinese medicine for drug discovery[J]. Front Pharmacol,2019,10:743. doi:10.3389/fphar.2019.00743http://doi.org/10.3389/fphar.2019.00743.
YUE S J,LIU J,FENG W W,et al. System pharmacology-based dissection of the synergistic mechanism of Huangqi and Huanglian for diabetes mellitus[J]. Front Pharmacol,2017,8:694. doi:10.3389/fphar.2017.00694http://doi.org/10.3389/fphar.2017.00694.
LI J L,WANG C L,SONG L,et al.The potential mechanism of Wuwei Qingzhuo San against hyperlipidemia based on TCM network pharmacology and validation experiments in hyperlipidemia hamster[J].Evid Based Complement Alternat Med,2020,2020:5369025. doi:10.1155/2020/5369025http://doi.org/10.1155/2020/5369025.
XU H Y,ZHANG Y Q,LIU Z M,et al.ETCM:an encyclopaedia of traditional Chinese medicine[J].Nucleic Acids Res,2019,47(D1):D976-D982.
RU J L,LI P,WANG J N,et al. TCMSP:a database of systems pharmacology for drug discovery from herbal medicines[J]. J Cheminform,2014,6:13. doi:10.1186/1758-2946-6-13http://doi.org/10.1186/1758-2946-6-13.
DAINA A,MICHIELIN O,ZOETE V.SwissADME:a free web tool to evaluate pharmacokinetics,drug-likeness and medicinal chemistry friendliness of small molecules[J]. Sci Rep,2017,7:42717.doi:10.1038/srep42717http://doi.org/10.1038/srep42717.
LIU T Q,LIN Y M,WEN X,et al. BindingDB:a web-accessible database of experimentally determined protein-ligand binding affinities[J]. Nucleic Acids Res,2007,35(Database issue):D198-D201.
KUHN M,VON MERING C,CAMPILLOS M,et al. STITCH:interaction networks of chemicals and proteins[J].Nucleic Acids Res,2008,36(Database issue):D684-D688.
DAINA A,MICHIELIN O,ZOETE V,et al.SwissTargetPrediction:updated data and new features for efficient prediction of protein targets of small molecules[J].Nucleic Acids Res,2019,47(W1):W357-W364.
SHANNON P,MARKIEL A,OZIER O,et al.Cytoscape:a software environment for integrated models of biomolecular interaction networks[J].Genome Res,2003,13(11):2498-2504.
SZKLARCZYK D,GABLE A L,LYON D,et al. STRING v11:protein-protein association networks with increased coverage,supporting functional discovery in genome-wide experimental datasets[J].Nucleic Acids Res,2019,47(D1):D607-D613.
CASTILLO-ARMENGOL J,FAJAS L,LOPEZ-MEJIA I C.Inter-organ communication:a gatekeeper for metabolic health[J].EMBO Rep,2019,20(9):e47903. doi:10.15252/embr.201947903http://doi.org/10.15252/embr.201947903.
YANG Q,VIJAYAKUMAR A,KAHN B B.Metabolites as regulators of insulin sensitivity and metabolism[J].Nat Rev Mol Cell Biol,2018,19(10):654-672.
IQBAL M,BIBI Y,RAJA N I,et al.Review on therapeutic and pharmaceutically important medicinal plant Asparagus officinalis L[J].J Plant Biochem Physiol,2017,5(180):2. doi:10.4172/2329-9029.1000180http://doi.org/10.4172/2329-9029.1000180.
伍芮,刘龙飞.信号转导和转录激活因子3抑制剂的研究进展[J].广东医科大学学报,2019,37(5):513-516.
ZHANG C Y,YUE C Y,HERRMANN A,et al.STAT3 activation-induced fatty acid oxidation in CD8+ T effector cells is critical for obesity-promoted breast tumor growth[J]. Cell Metab,2020,31(1):148-161.
NELSON V L,BALLOU L M,LIN R Z.Energy balancing by fat Pik3ca[J].Adipocyte,2015,4(1):70-74.
田文敏.类固醇激素受体辅激活因子1(SRC-1)在血管紧张素Ⅱ诱导的小鼠高血压炎症反应中的作用及机制[D].厦门:厦门大学,2019.
STASHI E,YORK B,O’MALLEY B W. Steroid receptor coactivators:servants and masters for control of systems metabolism[J].Trends Endocrinol Metab,2014,25(7):337-347.
ZUEHLKE A D,BEEBE K,NECKERS L,et al. Regulation and function of the human HSP90AA1 gene[J].Gene,2015,570(1):8-16.
赵雪梅,马俊花,陆建灿,等.姜黄素对代谢综合征模型大鼠脂肪细胞因子及p38 MAPK表达影响研究[J].辽宁中医药大学学报,2019,21(7):33-37.
LAWAN A,BENNETT A M. Mitogen-activated protein kinase regulation in hepatic metabolism[J]. Trends Endocrinol Metab,2017,28(12):868-878.
HUANG X J,LIU G H,GUO J,et al.The PI3K/AKT pathway in obesity and type 2 diabetes[J].Int J Biol Sci,2018,14(11):1483-1496.
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