食品科学 ›› 2026, Vol. 47 ›› Issue (15): 74-84.doi: 10.7506/spkx1002-6630-20251230-266

• 生物工程 • 上一篇    下一篇

基于金属-多酚网络封装提升长双歧杆菌胃肠道耐受性与抗氧化活性

马梁雨,温淼,于航,姜楠,孟祥晨,尚佳萃   

  1. (1.东北农业大学 乳品科学教育部重点实验室,黑龙江?哈尔滨 150030;2.哈尔滨商业大学食品工程学院,黑龙江?哈尔滨 150028)
  • 出版日期:2026-08-15 发布日期:2026-08-24
  • 基金资助:
    国家自然科学基金面上项目(32272291)

Enhancement of the Gastrointestinal Tolerance and Antioxidant Activity of Bifidobacterium longum through Metal-Polyphenol Network Encapsulation

MA Liangyu, WEN Miao, YU Hang, JIANG Nan, MENG Xiangchen, SHANG Jiacui   

  1. (1. Key Laboratory of Dairy Science, Ministry of Education, Northeast Agricultural University, Harbin 150030, China; 2. College of Food Engineering, Harbin University of Commerce, Harbin 150028, China)
  • Online:2026-08-15 Published:2026-08-24

摘要: 为提高长双歧杆菌对胃肠道的耐受性及抗氧化活性,利用金属-多酚网络(表没食子儿茶素没食子酸酯(epigallocatechin gallate,EGCG)-Fe3+)与低甲氧基果胶(low-methoxy pectin,LMP)作为包埋材料,通过逐层自组装长双歧杆菌长亚种T4,构建双层壁材的单细胞封装体系T4@EGCG-Fe3+@LMP,通过粒径、Zeta电位、紫外-可见光谱、X射线光电子能谱、扫描电子显微镜和激光共聚焦显微镜分析表征其理化性质。结果表明,菌体粒径由未封装时的1 929.33 nm增至封装后的5 705.00 nm,Zeta电位则由-20.94 mV升至-18.43 mV,显微镜观察证实包埋体系成功形成,能谱分析证实包埋体系中存在三价铁。体外模拟胃肠道消化实验结果显示,单细胞封装体系T4@EGCG-Fe3+@LMP在模拟胃液与肠液中的存活率分别为游离菌体的4.94 倍与53.68 倍。同时,T4@EGCG-Fe3+@LMP对1,1-二苯基-2-三硝基苯肼自由基、超氧阴离子自由基及羟自由基的清除率均超过70%,抗氧化活性显著高于游离菌体(P<0.05)。本研究结果不仅可为增强益生菌胃肠道耐受性与抗氧化活性提供有效的封装策略,也可为基于金属-多酚-多糖协同作用的益生菌包埋技术提供新思路。

关键词: 长双歧杆菌长亚种;金属-多酚网络;表没食子儿茶素没食子酸酯;低甲氧基果胶

Abstract: To enhance the gastrointestinal tolerance and antioxidant activity of Bifidobacterium longum subsp. longum T4, a singlecell encapsulation system designated T4@epigallocatechin gallate (EGCG)-Fe3+@LMP was constructed using a metal-phenolic network (EGCG-Fe3+) and low-methoxy pectin (LMP) as wall materials via layerbylayer selfassembly. The physicochemical properties of the system were characterized by particle size, zeta potential, ultraviolet (UV)-visible spectroscopy, X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and confocal laser scanning microscopy (CLSM). The results showed that after encapsulation, the particle size of bacterial cells increased from 1 929.33 to 5 705.00 nm, and the zeta potential from −20.94 to −18.43 mV. Microscopic observations confirmed the successful formation of the encapsulation system, and XPS analysis verified the presence of Fe3+ in the system. In simulated gastric and intestinal fluids, the survival rates of T4@EGCG-Fe3+@LMP were 4.94 and 53.68 fold higher than those of free bacterial cells, respectively. Moreover, the scavenging rates of T4@EGCG-Fe3+@LMP against 1,1-diphenyl-2-picrylhydrazyl (DPPH), superoxide anion, and hydroxyl radicals all exceeded 70%, and its antioxidant activity was significantly higher than that of free bacterial cells (P < 0.05). In summary, this study not only provides an effective encapsulation strategy to improve the gastrointestinal tolerance and antioxidant capacity of probiotics, but also offers new insights into probiotic encapsulation technology based on the synergistic effect of metal-phenolic-polysaccharide networks.

Key words: Bifidobacterium longum subsp. longum; metal-polyphenol network; epigallocatechin gallate; low-methoxy pectin

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