数字农科院2.0

Profiling the Differential Distribution of Ginsenosides Across Ginseng Tissues Using High-Resolution Mass Spectrometry

文献类型: 外文期刊

作者: Hang Xu;Zheng Li;Chong Liu;Yukun Wang;Siwei Qiao;Hao Zhang

作者机构:

关键词: ginseng;ginsenosides;LC-MS;malonyl-ginsenosides

期刊名称: Separations

ISSN: 2297-8739

年卷期: 2025 年 12 卷 7 期

页码:

收录情况: SCIE(2025版)

摘要: This study investigates the compositional characteristics and quantitative differences of ginsenosides across various ginseng tissues, with a particular focus on the specific accumulation patterns of malonyl ginsenosides. Five tissue samples—ginseng fruit (F), leaf (L), taproot (TR), lateral root (LR), and fibrous root (FR)—were analyzed using Orbitrap Fusion high-resolution liquid chromatography–mass spectrometry. A total of 413 ginsenosides, including 33 standards, were identified, encompassing 172 protopanaxadiol (PPD)-type, 188 protopanaxatriol (PPT)-type, 14 oleanolic acid (OA)-type, and 12 ocotillol (OT)-type ginsenosides, of which 160 were malonyl ginsenosides. Statistical analysis revealed significant variations in the relative content per unit mass of malonyl ginsenosides across tissues, with the highest levels in fibrous roots, followed by fruits, lateral roots, leaves, and taproots. Distinct tissue-specific differences in malonyl ginsenoside types and quantities were observed: fruits exhibited 51 malonyl ginsenosides with significantly higher levels, compared to 8, 14, and 17 in lateral roots, fibrous roots, and leaves, whereas TR showed no significant enrichment. This study elucidates the diversity and unique distribution of malonyl ginsenosides in ginseng roots, leaves, and fruits, providing a valuable basis for the targeted selection of tissues with high malonyl ginsenoside content and the development of functional food and medicinal products.

分类号:

  • 相关文献

[1]Intercropping Between Panax ginseng and Arisaema amurense Improves Ginseng Quality by Improving Soil Properties and Microbial Communities. Bochen Lv,Hai Sun,Weiyu Cao,Jiapeng Zhu,Hao Liang,Hongjie Long,Yanmei Cui,Cai Shao,Yayu Zhang. 2025

[2]控水处理对紫花苜蓿抗寒性影响的代谢组学分析. 徐洪雨,李向林. 2020

[3]基于分子印迹技术与液相色谱-质谱联用的抗病毒中药有效成分筛选方法学研究. 杨亚军,刘希望,刘玉荣,李冰,张继瑜,李剑勇. 2015

[4]二恶英暴露下奶牛血液代谢组学研究. 胡晓旭,许彤,陈旸升,谢群慧,郝艳芬,王楚,程劼,王璞,张庆华,徐丽,赵斌. 2022

[5]High-Performance Liquid Chromatography with Diode Array Detector and Electrospray Ionization Ion Trap Time-of-Flight Tandem Mass Spectrometry to Evaluate Ginseng Roots and Rhizomes from Different Regions. Wang, Hong-Ping,Zhang, You-Bo,Yang, Xiu-Wei,Yang, Xin-Bao,Xu, Wei,Xu, Feng,Cai, Shao-Qing,Wang, Ying-Ping,Xu, Yong-Hua,Zhang, Lian-Xue.

[6]Identification of anti-inflammatory components in Panax ginseng of Sijunzi Decoction based on spectrum-effect relationship. Kan, Hong,Zhang, Dongxue,Chen, Weijia,Wang, Shihan,He, Zhongmei,Pang, Shifeng,Qu, Shuai,Wang, Yingping. 2023

[7]Progress on the efficacy and mechanism of action of panax ginseng monomer saponins treat toxicity. Xinyi Wang,Rongcan Wang,Yongfei Qiao,Yali Li. 2022

[8]Molecular Docking and Dynamics Simulation Studies of Ginsenosides with SARS-CoV-2 Host and Viral Entry Protein Targets. Pang Shifeng,Vinothini Boopathi,Mohanapriya Murugesan,Ramya Mathiyalagan,Jong Chan Ahn,Chen Xiaolin,Dong Uk Yang,Gi Young Kwak,Byoung Man Kong,Deok Chun Yang,Se Chan Kang,Zhang Hao. 2022

[9]Effect of Phosphate-Deficiency Stress on the Biological Characteristics and Transcriptomics of Panax ginseng. Hai Sun,Hao Liang,Cai Shao,Jiaqi Qian,Jiapeng Zhu,Guojia Zhang,Bochen Lv,Yayu Zhang. 2024

[10]Ginsenoside, a potential natural product against liver diseases: a comprehensive review from molecular mechanisms to application. Shang, Shiyan,Yang, Haixia,Qu, Linlin,Fan, Daidi,Deng, Jianjun. 2025

[11]Transcription factors PgWRKY21 and PgWRKY101 regulate protopanaxatriol ginsenoside biosynthesis in Panax ginseng. Ping Wang,Yihan Wang,Junmei Lian,Yan Yan,Xiao Xing,Hao Zhang,Xiangmin Piao,Yonghua Xu,Yan Sui,Peng Di,Limin Yang,Yingping Wang. 2025

[12]Structure-activity relationship of ginsenoside derivatives with different glycosides and double bond position on anti-aging bioactivities. Zhang, Juntao,Wang, Weimin,Fan, Daidi,Deng, Jianjun,Yang, Haixia. 2025

[13]Comparison of different ginsenosides with C-3 or C-6 sugar moieties on activities in alcohol-induced liver injury mice. Wang, Weimin,Zhou, Kaixuan,Fu, Zengshuai,Huang, Yucheng,Deng, Jianjun,Fan, Daidi,Yang, Haixia. 2025

[14]Dissipation, residues, and safety evaluation of trifloxystrobin and tebuconazole on ginseng and soil. Wang, Yan,Gao, Jie,Liu, Chang,Wang, Chunwei,Cui, Lili,Li, Aijun.

[15]Determination of Pentachloronitrobenzene and Its Metabolites in Ginseng by Matrix Solid-Phase Dispersion and GC-MS-MS. Li, Jing,Dong, Fengshou,Liu, Xingang,Zheng, Yongquan,Yao, Jianren,Zhang, Changpeng.

[16]Determination of Pentachloronitrobenzene and Its Metabolites in Ginseng by Gas Chromatography-Ion Trap Tandem Mass Spectrometry. Li Chong-Jiu,Dong Feng-Shou,Liu Xin-Gang,Zheng Yong-Quan,Li Jing. 2008

[17]Profiling and identification of the metabolites of ginsenoside Ro in rat faeces and urine after oral administration. Wang, Jia,Xiao, Shengyuan,Wang, Jia,Zheng, Peihe,Zheng, Siwen,Wang, Yufang,Zhu, Yanzhu,Wang, Yingping,Xiao, Shengyuan,Zhou, Hua.

[18]Iron (Fe2+)-induced toxicity produces morphological and physiological changes in roots in Panax ginseng grown in hydroponics. Zhang, Yayu,Wang, Jingkuan,Zhang, Yayu,Wang, Qiuxia,Xu, Chenglu,Sun, Hai,Li, Le.

[19]Rapid, Non-Destructive Determination Of Ginseng S.eed Moisture Content By N ear Infrared Spectroscopy Technology. Zhang, H, Xu, SQ, Piao, XM, Zheng, PH, Wang, YP. 2018

[20]Post-Planting Performance, Yield, And Ginsenoside C.ontent Of Panax Ginseng I n Relation To Initial Seedling Size. Zhang, H, Xu, SQ, Piao, CX, Zhao, XL, Tian, YQ, Cui, DH, Sun, GG, Wang, YP. 2018

作者其他论文 更多>>