色谱 ›› 2026, Vol. 44 ›› Issue (8): 864-876.DOI: 10.3724/SP.J.1123.2025.08025

• 专论与综述 • 上一篇    下一篇

2020年以来高效色谱材料的开发及其在本草物质组中的应用

丰静1,2, 夏东海1,2, 宋春颖1, 漆义1, 金高娃1, 刘艳芳1,3, 梁鑫淼1,3, 俞冬萍1,3,*(), 郭志谋1,*()   

  1. 1.中国科学院大连化学物理研究所,植物化学与天然药物全国重点实验室,辽宁 大连 116023
    2.中国科学院大学,北京 100049
    3.赣江中药创新中心,江西 南昌 330000
  • 收稿日期:2025-08-31 出版日期:2026-08-08 发布日期:2026-07-30
  • 通讯作者: *Tel:0411-84379541,E-mail:yudping@dicp.ac.cn(俞冬萍); Tel:0411-84379539,E-mail:guozhimou@dicp.ac.cn(郭志谋).
  • 基金资助:
    赣鄱俊才支持计划-主要学科学术和技术带头人培养项目(20232BCJ23104);中国科学院战略性先导科技专项课题(XDB1230103)

Development of high-performance chromatographic materials and their application in herbalome research since 2020

FENG Jing1,2, XIA Donghai1,2, SONG Chunying1, QI Yi1, JIN Gaowa1, LIU Yanfang1,3, LIANG Xinmiao1,3, YU Dongping1,3,*(), GUO Zhimou1,*()   

  1. 1.State Key Laboratory of Phytochemistry and Natural Medicines,Dalian Institute of Chemical Physics,Chinese Academy of Sciences,Dalian 116023,China
    2.University of Chinese Academy of Sciences,Beijing 100049,China
    3.Ganjiang Chinese Medicine Innovation Center,Nanchang 330000,China
  • Received:2025-08-31 Online:2026-08-08 Published:2026-07-30
  • Supported by:
    The Ganpo Talent Support Program-Leading Academic and Technical Personnel in Major Disciplines(20232BCJ23104);Strategic Priority Research Program of the Chinese Academy of Sciences, China(XDB1230103)

摘要:

中药作为中华民族的文化瑰宝,在多种疾病治疗中发挥着重要作用。由于中药化学成分极其复杂,全面解析物质基础和阐明药效机制是中药现代化研究面临的重要挑战。为了深入解析中药的物质基础,阐述中药的多组分多靶点整体调节机制,梁鑫淼等提出了本草物质组学的概念,涵盖物质基础与功能机制两大方向,包括中药化合物的定性与定量分析、活性成分分离以及其生物效应与作用机制的深入研究。在本草物质组研究中,色谱分离分析和制备纯化技术是解析中药物质基础的有效手段,而色谱分离材料的发展是提升中药复杂体系分离能力的关键驱动因素。本文系统综述了2020年以来新型高效色谱分离材料的开发及其在本草物质组研究中的应用,重点围绕反相液相色谱、亲水作用液相色谱和超临界流体色谱3种色谱模式,阐述了各类新型材料的结构和性能特点,以及在生物碱、黄酮、皂苷和萜类等关键活性成分分离分析与制备纯化中的应用。最后,文章对未来发展方向进行了展望,指出未来色谱材料的发展应聚焦于提升分离选择性与正交性、提高分离效率与制备载量、开发通用型固定相,以更好地支撑本草物质组研究的深入发展。本文旨在为中药复杂体系的物质基础解析提供材料基础和技术参考。

关键词: 色谱分离材料, 本草物质组, 分离分析, 制备色谱

Abstract:

Traditional Chinese medicine (TCM), a treasured cultural heritage of the Chinese nation, plays a significant role in treating various diseases. However, the extreme complexity of its chemical components makes the comprehensive elucidation of the material basis and pharmacological mechanisms a major challenge in modern TCM research. To deeply investigate the material basis of TCM and interpret its holistic regulation mechanism involving multiple components and targets, Liang Xinmiao and his colleagues proposed the concept of herbal materiomics, which focuses on two main research directions: the material basis (including qualitative/quantitative analysis and isolation of active compounds) and the functional mechanisms (in-depth study of biological effects and modes of action). In herbalome research, chromatographic analysis and preparative purification are powerful tools for deciphering the composition of complex TCM systems, with the development of novel chromatographic separation materials being a key driver of progress. This review systematically summarizes recent advances in the development of novel high performance chromatographic separation materials since 2020 and their applications in herbalome research. It focuses on three chromatographic modes: reversed-phase liquid chromatography (RPLC), hydrophilic interaction liquid chromatography (HILIC), and supercritical fluid chromatography (SFC). The structural and performance characteristics of these novel materials are highlighted, along with their applications in the analysis and preparative purification of key active components such as alkaloids, flavonoids, saponins and terpenoids. In RPLC, the separation selectivity and retention capacity of the stationary phases for compounds such as alkaloids and flavonoids have been effectively enhanced through two primary strategies: first, by incorporating polar groups such as fluorine atoms, amides, carboxyl groups into the traditional C18/C8/phenyl skeletons; second, by utilizing natural product derivatives like cardanol and rosin as functional ligands. Furthermore, this approach has led to the creation of novel materials possessing orthogonal separation characteristics. In HILIC, various functionalized stationary phases have been developed, including β-cyclodextrin, nitrogen-containing heterocycles, core-shell structured amides, and surface-polymerized phases. These phases significantly improve the retention and separation efficiency of strongly polar compounds (e.g., saponins, oligosaccharides) by providing abundant hydrogen bonding, electrostatic, and π-π interactions. In SFC, the development of novel stationary phases extends from modified functional skeletons (e.g., phenyl) to zwitterionic and nitrogen-containing heterocyclic hydrophilic stationary phases. Additionally, mixed-mode stationary phases have been developed to effectively ameliorate the peak tailing problems associated with basic compounds. Concurrently, the emergence of small-particle-size ordered mesoporous silica materials enables ultra-high column efficiency and rapid separation of components such as tanshinones. This review further illustrates the successful application of these novel materials in both high-performance analytical and preparative chromatography, using four important classes of TCM active ingredients—alkaloids, flavonoids, saponins, and terpenoids—as examples. These novel materials afford significant chromatographic improvements—notably in separation selectivity, peak symmetry, analysis speed, and the resolution of previously difficult-to-separate isomers. Critically, the integration of these advanced materials has facilitated the construction of highly orthogonal multidimensional chromatographic systems (e.g., RPLC×RPLC, HILIC×RPLC), thereby providing the capacity for in-depth profiling and identification of dozens to hundreds of components from complex TCM extracts. In the field of preparative chromatography, these materials enable efficient and large-scale purification of target monomers, including trace active ingredients, thereby significantly enriching compound libraries for herbalome research. This includes the implementation of sophisticated multi-dimensional and multi-mode preparative strategies, which have facilitated the discovery of novel compounds and unprecedented skeletons. Finally, the article concludes by outlining future development directions of chromatographic materials, emphasizing the need to enhance separation selectivity and orthogonality, improve separation efficiency and preparative loading capacity, and develop versatile stationary phases. These advancements are crucial to better support the in-depth development of herbalome research. This review aims to provide a material foundation and technical reference for resolving the material basis of complex TCM systems.

Key words: chromatographic separation materials, herbalome, separation and analysis, preparative chromatography

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