Article(id=1304414966468071744, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414955046985824, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.07.012, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1765555200000, receivedDateStr=2025-12-13, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788926362863, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788926362863, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788926362863, creator=13701087609, updateTime=1788926362863, updator=13701087609, issue=Issue{id=1304414955046985824, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='7', pageStart='2445', pageEnd='2876', issueExtLink='null', onlineDate='null', pubDate='1775923200000', pubDateStr='2026-04-12', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788926360140, creator='13701087609', updateTime=1788926711174, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304416427457409395, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414955046985824, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304416427457409396, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304414955046985824, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=2558, endPage=2568, ext={EN=ArticleExt(id=1304414966849753410, articleId=1304414966468071744, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Metabolomic study on reshaping of metabolic homeostasis in hyperlipidemic rats by gypenosides, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective To investigate the hypolipidemic effects of gypenosides based on serum, liver and fecal metabolomics techniques. Methods A high-fat diet was used to establish a hyperlipidemia model in rats, with 32 male SD rats randomly divided into control group, model group, atorvastatin (10 mg/kg) group and gypenosides (150 mg/kg) group. After eight weeks of continuous administration, body weight and blood lipid levels were measured. Metabolites in serum, liver and feces were analyzed using ultra-high-performance liquid chromatography-quadrupole-time-of-flight mass spectrometry, and differential metabolites were screened through multivariate statistical analysis. Results Gypenosides significantly reduced levels of total cholesterol, triglycerides and low-density lipoprotein cholesterol in serum of hyperlipidemic rats (P < 0.05, 0.01). Metabolomics analysis revealed that gypenosides effectively normalized the endogenous metabolic profile of model rats, identifying 30, 27, 19 differential metabolites in serum, liver and feces, respectively, primarily including lysophosphatidylcholine, unsaturated fatty acids and derivatives, bile acids, and amino acids and derivatives, linked to glycerophospholipid, linoleic/arachidonic acid, unsaturated fatty acid, primary bile acid biosynthesis, and tryptophan metabolism. Except for glycoursodeoxycholic acid and glycylglycoursodeoxycholic acid in liver, which still showed an increasing trend after gypenosides intervention, all other differential metabolites returned to near-normal levels. Conclusion Gypenosides modulate blood lipids by regulating the lipid metabolism network through multiple targets, with mechanisms related to intervention in lysophosphatidylcholine metabolism, linoleic acid and arachidonic acid metabolism, bile acid metabolism and tryptophan metabolism pathways, systematically revealing the overall regulatory effect of gypenosides on endogenous metabolism of hyperlipidemic rats., authors=XU Rui, FANG Xixing, HU Zehua, YANG Xiao, ZHOU Changyuan, LIU Shixian, YUAN Xiaolu, YANG Bao, authorsList=XU Rui, FANG Xixing, HU Zehua, YANG Xiao, ZHOU Changyuan, LIU Shixian, YUAN Xiaolu, YANG Bao, authorCompany=null, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1304414966749090113, articleId=1304414966468071744, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=绞股蓝总苷重塑高脂血症大鼠代谢稳态的代谢组学研究, columnId=1304140191707456168, journalTitle=中草药, columnName=药理与临床, runingTitle=null, highlight=null, articleAbstract=目的 基于血清、肝脏及粪便代谢组学技术,探讨绞股蓝总苷调血脂的代谢调节机制。方法 采用高脂饮食建立大鼠高脂血症模型,将32只雄性SD大鼠随机分为对照组、模型组、阿托伐他汀(10 mg/kg)组和绞股蓝总苷(150 mg/kg)组。连续给药8周后检测大鼠体质量、血脂水平。利用超高效液相色谱-四极杆-飞行时间质谱技术分析血清、肝脏和粪便中的代谢物,并结合多元统计分析筛选差异代谢物。结果 绞股蓝总苷可显著降低高脂血症大鼠血清中总胆固醇、三酰甘油、低密度脂蛋白胆固醇水平(P<0.05、0.01)。代谢组学分析显示,绞股蓝总苷能够显著回调模型大鼠的内源性代谢谱,从血清、肝脏和粪便中分别筛选出30、27、19个差异代谢物,主要包括溶血磷脂酰胆碱、不饱和脂肪酸及其衍生物、胆汁酸、氨基酸及其衍生物等,涉及甘油磷脂代谢、亚油酸与花生四烯酸代谢、不饱和脂肪酸生物合成、初级胆汁酸代谢及色氨酸代谢等通路。除肝脏中甘氨胆酸和甘氨熊去氧胆酸在绞股蓝总苷干预后仍呈升高趋势外,其余差异代谢物均恢复至接近正常水平。结论 绞股蓝总苷可通过多靶点调控脂质代谢网络发挥调血脂作用,其机制与干预溶血磷脂酰胆碱代谢、亚油酸与花生四烯酸代谢、胆汁酸代谢及色氨酸代谢等通路有关,系统揭示了绞股蓝总苷对高脂血症大鼠内源性代谢的整体调节作用。, authors=徐睿1,2, 方熙星2, 胡泽华1,2, 杨潇2, 周昌园2, 刘诗娴2, 袁小鹿2, 杨宝1,2, authorsList=徐睿, 方熙星, 胡泽华, 杨潇, 周昌园, 刘诗娴, 袁小鹿, 杨宝, authorCompany=1 湖北民族大学 湖北省肾脏病临床医学研究中心, 湖北 恩施 445000;
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Xie P,Xie J B,Xiao M Y,et al.Liver lipidomics analysis reveals the anti-obesity and lipid-lowering effects of gypnosides from heat-processed Gynostemma pentaphyllum in high-fat diet fed mice[J].Phytomedicine,2023,115:154834.
Li H S,Xi Y F,Xin X,et al.Gypenosides regulate farnesoid X receptor-mediated bile acid and lipid metabolism in a mouse model of non-alcoholic steatohepatitis[J].Nutr Metab,2020,17:34.
Li H S,Xi Y F,Liu H L,et al.Gypenosides ameliorate high-fat diet-induced non-alcoholic steatohepatitis via farnesoid X receptor activation[J].Front Nutr,2022,9:914079.
Li L,Guan Y Y,Du Y J,et al.Exploiting omic-based approaches to decipher traditional Chinese medicine[J].JEthnopharmacol,2025,337(Pt 3):118936.
杨柳,陈庆学,马新明,等.乳脂肪球膜的结构特性及其体内代谢研究进展[J].食品科学,2024,45(8):292-302.
张世明,齐冬梅,曹艺明,等.钩藤干预自发性高血压大鼠肝脏代谢紊乱的脂质组学研究[J].药学学报,2019,54(9):1636-1644.
Tan S T,Ramesh T,Toh X R,et al.Emerging roles of lysophospholipids in health and disease[J].Prog Lipid Res,2020,80:101068.
Schmitz G,Ruebsaamen K.Metabolism and atherogenic disease association of lysophosphatidylcholine[J].Atherosclerosis,2010,208(1):10-18.
Law S H,Chan M L,Marathe G K,et al.An updated review of lysophosphatidylcholine metabolism in human diseases[J].Int J Mol Sci,2019,20(5):1149.
王芳,陈曦.溶血磷脂酸信号在心血管疾病中的作用及潜在临床应用价值[J].中华心血管病杂志,2023,51(7):782-789.
Yang B,Xuan S X,Ruan Q F,et al.UPLC/Q-TOF-MS/MS-based metabolomics revealed the lipid-lowering effect of Ilicis Rotundae Cortex on high-fat diet induced hyperlipidemia rats[J].J Ethnopharmacol,2020,256:112784.
Wang Y Q,Li S J,Man Y H,et al.Serum metabonomics coupled with HPLC-LTQ/orbitrap MS and multivariate data analysis on the ameliorative effects of Bidens bipinnata L.in hyperlipidemic rats[J].J Ethnopharmacol,2020,262:113196.
Pandey N R,Renwick J,Misquith A,et al.Linoleic acidenriched phospholipids act through peroxisome proliferator-activated receptors α to stimulate hepatic apolipoprotein A-I secretion[J].Biochemistry,2008,47(6):1579-1587.
Sonnweber T,Pizzini A,Nairz M,et al.Arachidonic acid metabolites in cardiovascular and metabolic diseases[J].Int J Mol Sci,2018,19(11):3285.
Francés D E,Motiño O,AgráN,et al.Hepatic cyclooxygenase-2 expression protects against diet-induced steatosis,obesity,and insulin resistance[J].Diabetes,2015,64(5):1522-1531.
Jia W,Xie G X,Jia W P.Bile acid-microbiota crosstalk in gastrointestinal inflammation and carcinogenesis[J].Nat Rev Gastroenterol Hepatol,2018,15(2):111-128.
Huang F J,Zheng X J,Ma X H,et al.Theabrownin from Pu-erh tea attenuates hypercholesterolemia via modulation of gut microbiota and bile acid metabolism[J].Nat Commun,2019,10(1):4971.
Ding L L,Yang Q L,Zhang E Y,et al.Notoginsenoside Ft1 acts as a TGR5 agonist but FXR antagonist to alleviate high fat diet-induced obesity and insulin resistance in mice[J].Acta Pharm Sin B,2021,11(6):1541-1554.
Li L,Yang S Y,Liang X Y,et al.Saikosaponin D improves non-alcoholic fatty liver disease via gut microbiota-bile acid metabolism pathway[J].Food Sci Hum Wellness,2024,13(5):2703-2717.
Zhai Y Y,Zhou W L,Yan X,et al.Astragaloside IVameliorates diet-induced hepatic steatosis in obese mice by inhibiting intestinal FXR via intestinal flora remodeling[J].Phytomedicine,2022,107:154444.
Xie Z F,Jiang H W,Liu W,et al.The triterpenoid sapogenin (2α-OH-protopanoxadiol) ameliorates metabolic syndrome via the intestinal FXR/GLP-1 axis through gut microbiota remodelling[J].Cell Death Dis,2020,11(9):770.
Agus A,Planchais J,Sokol H.Gut microbiota regulation of tryptophan metabolism in health and disease[J].Cell Host Microbe,2018,23(6):716-724.
钟方为,李庚喜,曾立.基于肠道菌群和短链脂肪酸代谢探讨绞股蓝总皂苷改善大鼠非酒精性脂肪肝病的实验研究[J].中国中药杂志,2022,47(9):2500-2508.
Roager H M,Licht T R.Microbial tryptophan catabolites in health and disease[J].Nat Commun,2018,9(1):3294.)
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绞股蓝总苷重塑高脂血症大鼠代谢稳态的代谢组学研究
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中草药 |药理与临床 2026 , 57 (7) : 2558 -2568
绞股蓝总苷重塑高脂血症大鼠代谢稳态的代谢组学研究
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徐睿1,2, 方熙星2, 胡泽华1,2, 杨潇2, 周昌园2, 刘诗娴2, 袁小鹿2, 杨宝1,2
作者信息
    1 湖北民族大学 湖北省肾脏病临床医学研究中心, 湖北 恩施 445000;
    2 湖北民族大学 武陵山中药材检验检测中心, 湖北 恩施 445000
通讯作者:
杨宝
作者简介:
徐睿: 徐睿,本科生,研究方向为食品营养与毒理。E-mail:1429740789@qq.com
Metabolomic study on reshaping of metabolic homeostasis in hyperlipidemic rats by gypenosides
  • XU Rui, FANG Xixing, HU Zehua, YANG Xiao, ZHOU Changyuan, LIU Shixian, YUAN Xiaolu, YANG Bao
  • Affiliations
    doi: 10.7501/j.issn.0253-2670.2026.07.012
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    目的 基于血清、肝脏及粪便代谢组学技术,探讨绞股蓝总苷调血脂的代谢调节机制。方法 采用高脂饮食建立大鼠高脂血症模型,将32只雄性SD大鼠随机分为对照组、模型组、阿托伐他汀(10 mg/kg)组和绞股蓝总苷(150 mg/kg)组。连续给药8周后检测大鼠体质量、血脂水平。利用超高效液相色谱-四极杆-飞行时间质谱技术分析血清、肝脏和粪便中的代谢物,并结合多元统计分析筛选差异代谢物。结果 绞股蓝总苷可显著降低高脂血症大鼠血清中总胆固醇、三酰甘油、低密度脂蛋白胆固醇水平(P<0.05、0.01)。代谢组学分析显示,绞股蓝总苷能够显著回调模型大鼠的内源性代谢谱,从血清、肝脏和粪便中分别筛选出30、27、19个差异代谢物,主要包括溶血磷脂酰胆碱、不饱和脂肪酸及其衍生物、胆汁酸、氨基酸及其衍生物等,涉及甘油磷脂代谢、亚油酸与花生四烯酸代谢、不饱和脂肪酸生物合成、初级胆汁酸代谢及色氨酸代谢等通路。除肝脏中甘氨胆酸和甘氨熊去氧胆酸在绞股蓝总苷干预后仍呈升高趋势外,其余差异代谢物均恢复至接近正常水平。结论 绞股蓝总苷可通过多靶点调控脂质代谢网络发挥调血脂作用,其机制与干预溶血磷脂酰胆碱代谢、亚油酸与花生四烯酸代谢、胆汁酸代谢及色氨酸代谢等通路有关,系统揭示了绞股蓝总苷对高脂血症大鼠内源性代谢的整体调节作用。
    绞股蓝总苷  /  高脂血症  /  代谢组学  /  溶血磷脂酰胆碱  /  胆汁酸  /  绞股蓝皂苷A
    Objective To investigate the hypolipidemic effects of gypenosides based on serum, liver and fecal metabolomics techniques. Methods A high-fat diet was used to establish a hyperlipidemia model in rats, with 32 male SD rats randomly divided into control group, model group, atorvastatin (10 mg/kg) group and gypenosides (150 mg/kg) group. After eight weeks of continuous administration, body weight and blood lipid levels were measured. Metabolites in serum, liver and feces were analyzed using ultra-high-performance liquid chromatography-quadrupole-time-of-flight mass spectrometry, and differential metabolites were screened through multivariate statistical analysis. Results Gypenosides significantly reduced levels of total cholesterol, triglycerides and low-density lipoprotein cholesterol in serum of hyperlipidemic rats (P < 0.05, 0.01). Metabolomics analysis revealed that gypenosides effectively normalized the endogenous metabolic profile of model rats, identifying 30, 27, 19 differential metabolites in serum, liver and feces, respectively, primarily including lysophosphatidylcholine, unsaturated fatty acids and derivatives, bile acids, and amino acids and derivatives, linked to glycerophospholipid, linoleic/arachidonic acid, unsaturated fatty acid, primary bile acid biosynthesis, and tryptophan metabolism. Except for glycoursodeoxycholic acid and glycylglycoursodeoxycholic acid in liver, which still showed an increasing trend after gypenosides intervention, all other differential metabolites returned to near-normal levels. Conclusion Gypenosides modulate blood lipids by regulating the lipid metabolism network through multiple targets, with mechanisms related to intervention in lysophosphatidylcholine metabolism, linoleic acid and arachidonic acid metabolism, bile acid metabolism and tryptophan metabolism pathways, systematically revealing the overall regulatory effect of gypenosides on endogenous metabolism of hyperlipidemic rats.
    gypenosides  /  hypolipidemic  /  metabolomics  /  lysophosphatidylcholine  /  bile acids  /  gypenoside A
    徐睿, 方熙星, 胡泽华, 杨潇, 周昌园, 刘诗娴, 袁小鹿, 杨宝. 绞股蓝总苷重塑高脂血症大鼠代谢稳态的代谢组学研究. 中草药, 2026 , 57 (7) : 2558 -2568 . DOI: 10.7501/j.issn.0253-2670.2026.07.012
    XU Rui, FANG Xixing, HU Zehua, YANG Xiao, ZHOU Changyuan, LIU Shixian, YUAN Xiaolu, YANG Bao. Metabolomic study on reshaping of metabolic homeostasis in hyperlipidemic rats by gypenosides[J]. Chinese Traditional and Herbal Drugs, 2026 , 57 (7) : 2558 -2568 . DOI: 10.7501/j.issn.0253-2670.2026.07.012

      湖北民族大学湖北省肾脏病临床医学研究中心项目 (OIR202302Z); 国家自然科学基金资助项目 (82160804); 恩施州科技计划项目 (D20230085); 湖北民族大学创新创业项目 (202210517008); 横向科研项目 (H24013)

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    Xie P,Xie J B,Xiao M Y,et al.Liver lipidomics analysis reveals the anti-obesity and lipid-lowering effects of gypnosides from heat-processed Gynostemma pentaphyllum in high-fat diet fed mice[J].Phytomedicine,2023,115:154834.
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    Pandey N R,Renwick J,Misquith A,et al.Linoleic acidenriched phospholipids act through peroxisome proliferator-activated receptors α to stimulate hepatic apolipoprotein A-I secretion[J].Biochemistry,2008,47(6):1579-1587.
    Sonnweber T,Pizzini A,Nairz M,et al.Arachidonic acid metabolites in cardiovascular and metabolic diseases[J].Int J Mol Sci,2018,19(11):3285.
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    Jia W,Xie G X,Jia W P.Bile acid-microbiota crosstalk in gastrointestinal inflammation and carcinogenesis[J].Nat Rev Gastroenterol Hepatol,2018,15(2):111-128.
    Huang F J,Zheng X J,Ma X H,et al.Theabrownin from Pu-erh tea attenuates hypercholesterolemia via modulation of gut microbiota and bile acid metabolism[J].Nat Commun,2019,10(1):4971.
    Ding L L,Yang Q L,Zhang E Y,et al.Notoginsenoside Ft1 acts as a TGR5 agonist but FXR antagonist to alleviate high fat diet-induced obesity and insulin resistance in mice[J].Acta Pharm Sin B,2021,11(6):1541-1554.
    Li L,Yang S Y,Liang X Y,et al.Saikosaponin D improves non-alcoholic fatty liver disease via gut microbiota-bile acid metabolism pathway[J].Food Sci Hum Wellness,2024,13(5):2703-2717.
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    Xie Z F,Jiang H W,Liu W,et al.The triterpenoid sapogenin (2α-OH-protopanoxadiol) ameliorates metabolic syndrome via the intestinal FXR/GLP-1 axis through gut microbiota remodelling[J].Cell Death Dis,2020,11(9):770.
    Agus A,Planchais J,Sokol H.Gut microbiota regulation of tryptophan metabolism in health and disease[J].Cell Host Microbe,2018,23(6):716-724.
    钟方为,李庚喜,曾立.基于肠道菌群和短链脂肪酸代谢探讨绞股蓝总皂苷改善大鼠非酒精性脂肪肝病的实验研究[J].中国中药杂志,2022,47(9):2500-2508.
    Roager H M,Licht T R.Microbial tryptophan catabolites in health and disease[J].Nat Commun,2018,9(1):3294.
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    doi: 10.7501/j.issn.0253-2670.2026.07.012
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