色谱 ›› 2026, Vol. 44 ›› Issue (8): 900-910.DOI: 10.3724/SP.J.1123.2025.08021

• 专论与综述 • 上一篇    下一篇

生物亲和垂钓技术在天然产物活性成分发现中的研究进展

曲清莉1,2, 王小芳3, 邸多隆1, 裴栋1,2,*()   

  1. 1.中国科学院兰州化学物理研究所,中国科学院西北特色植物资源化学重点实验室和甘肃省天然药物重点 实验室,甘肃 兰州 730000
    2.青岛市资源化学与新材料研究中心,山东 青岛 266000
    3.甘肃药业集团科技创新研究院有限公司,甘肃 兰州 730000
  • 收稿日期:2025-08-27 出版日期:2026-08-08 发布日期:2026-07-30
  • 通讯作者: *E-mail:dongpei@licp.cas.cn.
  • 基金资助:
    国家青年科学基金项目(22404169);甘肃省基础研究创新群体项目(25JRRA469);甘肃省科技重大专项(24ZD17FA003);青岛市关键技术攻关及产业化示范类项目(24-1-4-xxgg-17-nsh)

Recent advances on bioaffinity fishing technology for discovery of active components from natural products

QU Qingli1,2, WANG Xiaofang3, DI Duolong1, PEI Dong1,2,*()   

  1. 1.CAS Key Laboratory of Chemistry of Northwestern Plant Resources and Key Laboratory for Natural Medicine of Gansu Province,Lanzhou Institute of Chemical Physics,Chinese Academy of Sciences,Lanzhou 730000,China
    2.Qingdao Center of Resource Chemistry and New Materials,Qingdao 266000,China
    3.Gansu Pharmaceutical Group Technology Innovation Research Institute Co. ,Ltd. ,Lanzhou 730000,China
  • Received:2025-08-27 Online:2026-08-08 Published:2026-07-30
  • Supported by:
    Young Scientists Fund of the National Natural Sciences Foundation of China(22404169);Gansu Science Fund for Basic Creative Research Groups(25JRRA469);Gansu Science and Technology Major Project(24ZD17FA003);Key Technology Research and Industrialization Demonstration Projects of Qingdao(24-1-4-xxgg-17-nsh)

摘要:

天然产物是创新药物发现的重要源泉,其活性成分的高效、精准筛选是推动天然药物研发的关键。传统筛选方法步骤烦琐、周期长,而基于表型的高通量技术又存在作用机制不明确的局限性。近年来,以生物亲和垂钓为代表的靶向筛选技术因其能够将复杂体系中的分离与活性筛选相结合,实现了从天然产物中直接、快速“垂钓”特定靶标的配体分子,而受到广泛关注。本综述聚焦于生物亲和垂钓技术的核心——垂钓材料,从载体材料和固定化方法两个维度系统梳理了近3年的研究进展。在载体材料方面,文章详尽阐述了从无载体(如亲和超滤、交联酶聚集体)到有载体材料体系,后者包括磁珠、金属有机框架、硅基材料、凝胶、微通道、荧光材料等各类新兴材料的设计、优势及其应用实例。在固定化方法方面,文章对比分析了物理吸附、物理包埋与化学交联3种策略的特点与挑战,并重点探讨了基于生物正交反应和非天然氨基酸插入等定向固定化策略在保持靶标活性与结构完整性、提高固定效率与色谱性能方面的突破性进展。文章最后展望了该领域的未来发展方向,指出开发兼具高亲和性、高稳定性及低非特异性吸附的多功能复合材料,优化定向固定化策略以适用于内源性靶标,以及整合实时活性监测功能(如荧光材料)是实现更高效、可靠的一站式筛选平台的关键。生物亲和垂钓技术作为一种强大的工具,将继续在阐明天然药物药效物质基础及加速创新药物发现进程中发挥不可或缺的作用。

关键词: 天然产物, 生物亲和垂钓技术, 固定化, 载体

Abstract:

Natural products have consistently served as an invaluable source for novel drug development, and the efficient and targeted screening of bioactive constituents from these complex mixtures is crucial for advancing drug discovery. Bioaffinity fishing techniques exploit the highly specific interactions between ligands and their biological targets—such as antigen-antibody, enzyme-substrate, and hormone-receptor interactions—to simultaneously separate and identify active compounds from complex natural product extracts. When coupled with liquid chromatography-mass spectrometry, bioaffinity fishing enables the integrated separation, screening, and analysis of bioactive molecules in a single step. This comprehensive review focuses specifically on bioaffinity fishing materials, which are fundamental to the effectiveness and reproducibility of the fishing process. The review systematically explores recent advances over the past three years, categorizing the discussion along two primary dimensions: carrier materials and immobilization methods. In terms of carrier materials, the article provides a comprehensive review of both carrier-free and carrier-based systems. Carrier-free approaches, including affinity ultrafiltration and size exclusion chromatography, utilize free targets in solution, while carrier-based systems immobilize the target onto a solid support. The review details a wide spectrum of innovative supports such as magnetic beads, which facilitate easy separation; metal-organic frameworks, known for their high surface area and tunable porosity; silica-based materials (e.g., mesoporous silica and silica chromatographic stationary phases), prized for their stability and versatility; gel-based materials like agarose and synthetic polymers, which offer superior biocompatibility; microchannel-based systems, including capillary columns and microfluidic chips that enable high-throughput screening with minimal sample consumption; fluorescent materials that integrate fishing with real-time activity monitoring and imaging; and other emerging materials such as graphene, carbon nanotubes, and paper-based substrates. Each material system is evaluated regarding its preparation, advantages, limitations, and representative applications in fishing active ingredients from natural products. Regarding immobilization strategies, the review compares three principal methodologies: physical adsorption, which is simple but often prone to leakage and low efficiency; physical encapsulation, which protects the target yet may incur mass transfer limitations and potential activity loss; and chemical cross-linking, which enhances stability but risks altering the target’s conformation and activity. A significant portion of the discussion is devoted to advanced directional immobilization techniques designed to preserve biological activity and improve efficiency. These include various bioorthogonal reactions such as Halo-tag/alkyl chloride, His-tag/Ni-NTA, SpyTag/SpyCatcher, SNAP-tag/benzylguanine, and the use of unnatural amino acid incorporation combined with click chemistry (e.g., azide-alkyne cycloaddition, thiol-ene addition). These strategies allow for precise orientation and covalent attachment of proteins, leading to improved stability, reduced nonspecific binding, enhanced chromatographic performance, and higher binding affinity. Notably, these methods enable the one-step immobilization of even low-abundance or endogenous targets without the need for prior purification, greatly expanding the technique’s applicability. Finally, the review outlines current challenges and prospective directions for the field. Key challenges include the lack of clear selection criteria for carrier materials, potential detrimental effects of immobilization on target structure and function, and the need to balance generality with cost-effectiveness. Future efforts should focus on developing more efficient and targeted immobilization protocols, creating multifunctional composite materials that combine separation, detection, and screening capabilities, fostering interdisciplinary collaborations integrating nanotechnology and bioinformatics, and adhering to green chemistry principles to ensure sustainability. As technological progress continues, bioaffinity fishing is poised to play an increasingly vital role in elucidating the material basis of natural medicine efficacy and accelerating the discovery of new therapeutic agents.

Key words: natural products, bioaffinity fishing technology, immobilization, carriers

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