食品科学 ›› 2026, Vol. 47 ›› Issue (7): 362-372.doi: 10.7506/spkx1002-6630-20250930-251

• 专题论述 • 上一篇    下一篇

天然辐射防护剂的研究进展、挑战与未来展望

高航,刘永奇,赵世宇,伊娟娟,朱家庆,刘鑫,时彦玲,宋景新,郝利民,鲁吉珂   

  1. (1.郑州大学生命科学学院,河南 郑州 450001;2.军事科学院系统工程研究院军需工程技术研究所,北京 100010)
  • 出版日期:2026-04-15 发布日期:2026-05-08
  • 基金资助:
    国家自然科学基金面上项目(32172211;32572557);中原科技创新人才领军计划项目(254200510040); 河南省高校科技创新团队支持计划项目(26IRTSTHN030)

Natural Radioprotective Agents: Research Progress, Challenges and Future Prospects

GAO Hang, LIU Yongqi, ZHAO Shiyu, YI Juanjuan, ZHU Jiaqing, LIU Xin, SHI Yanling, SONG Jingxin, HAO Limin, LU Jike   

  1. (1. School of Life Sciences, Zhengzhou University, Zhengzhou 450001, China; 2. Quartermaster Engineering Technology Research Institute, Systems Engineering Research Institute, Academy of Military Sciences, Beijing 100010, China)
  • Online:2026-04-15 Published:2026-05-08

摘要: 辐射技术在工业、医疗及军事等领域广泛应用,但高剂量辐射可对人体造成损害。电离辐射可通过改变动物组织的多种表观遗传修饰进而影响表型并可代际和跨代传递,这使得辐射防护变得尤为重要。研发辐射防护剂是辐射防护领域的重要方向,天然辐射防护剂具有作用时效长和安全性高等优势。天然辐射防护剂包括多酚类、多糖类、生物碱类和皂苷类等传统类型,还包括近年发现或研制的食源外泌体样囊泡类、纳米技术改良类和辐射诱导微生物类等新型天然辐射防护剂。虽然部分天然辐射防护剂已成功应用于保健食品领域,但其开发仍面临作用机理未充分阐明、筛选效率低、生产成本高、生物利用度低和稳定性不足等挑战。为突破这些限制,未来的研究将聚焦在阐明辐射防护作用机制、高效筛选功能基料以及高效递送功能因子等方面。未来可通过联用转录组、代谢组和表观遗传组等多组学技术并耦合人工智能技术,阐明天然辐射防护剂的作用机理,并提高辐射防护功能基料的筛选效率;采用酶工程、发酵工程、合成生物学等生物技术高效制备辐射防护功能基料;同时,以天然产物为核心设计包括环境响应型制剂在内的具有更高生物利用度和稳定性的天然辐射防护剂;此外,还需扩展天然辐射防护剂在不同类别辐射防护中的应用。通过建立高效的天然辐射防护剂筛选、制备及递送系统,推动其深度研发与广泛应用。

关键词: 辐射防护;天然辐射防护剂;表观遗传修饰;多组学技术;研究进展

Abstract: Radiation technology is widely utilized in the industrial, medical, and military fields. However, high-dose radiation causes significant harm to the human body. Ionizing radiation can alter various epigenetic modifications in animal tissues, thereby influencing phenotypic outcomes, and these effects are transmitted inter- and trans-generationally, making radiation protection particularly important. The development of radioprotective agents represents a major research direction in the field of radiation protection, with natural radioprotective agents offering advantages such as prolonged efficacy and favorable safety profiles. Conventional natural radioprotective agents include polyphenols, polysaccharides, alkaloids, and saponins. In recent years, novel categories have also been identified or developed, such as food-derived exosome-like vesicles, nanotechnology-enabled formulations, and radiation-induced microorganisms. Although some natural radioprotective agents have been successfully applied in the health food industry, their broader development faces several challenges, including incompletely elucidated mechanisms of action, low screening efficiency, high production costs, low bioavailability, and insufficient stability. Future research should address these limitations through three key areas: clarifying the mechanisms underlying radioprotective effects, efficiently screening for functional ingredients, and developing effective delivery systems for active components. Integrated multi-omics approaches, such as transcriptomics, metabolomics and epigenomics, coupled with artificial intelligence are expected to elucidate the mechanisms of action of natural radioprotective agents and enhance the efficiency of screening for functional radioprotective ingredients. Furthermore, biotechnological tools including enzyme engineering, fermentation engineering and synthetic biology enable efficient production of these functional ingredients. Concurrently, natural product-derived formulations, particularly environmentally responsive delivery systems, exhibit improved bioavailability and stability. Additionally, the application scope of natural radioprotective agents across different categories of radiation protection should be expanded. By establishing efficient screening, production, and delivery systems for natural radioprotective agents, their in-depth development and broad application can be promoted.

Key words: radiation protection; natural radioprotective agents; epigenetic modifications; multi-omics technologies; research progress

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