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中国精品科技期刊2020
王猛,胡金梅,游凤珍,等. 益智仁低聚糖的结构特征、体外活性及其对肠道菌群的调控机制J. 食品工业科技,2026,47(10):1−11. doi: 10.13386/j.issn1002-0306.2025060074.
引用本文: 王猛,胡金梅,游凤珍,等. 益智仁低聚糖的结构特征、体外活性及其对肠道菌群的调控机制J. 食品工业科技,2026,47(10):1−11. doi: 10.13386/j.issn1002-0306.2025060074.
WANG Meng, HU Jinmei, YOU Fengzhen, et al. Structural Characteristics of Oligosaccharides from Alpinia oxyphylla and Their Regulatory Mechanisms on Gut MicrobiotaJ. Science and Technology of Food Industry, 2026, 47(10): 1−11. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025060074.
Citation: WANG Meng, HU Jinmei, YOU Fengzhen, et al. Structural Characteristics of Oligosaccharides from Alpinia oxyphylla and Their Regulatory Mechanisms on Gut MicrobiotaJ. Science and Technology of Food Industry, 2026, 47(10): 1−11. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025060074.

益智仁低聚糖的结构特征、体外活性及其对肠道菌群的调控机制

Structural Characteristics of Oligosaccharides from Alpinia oxyphylla and Their Regulatory Mechanisms on Gut Microbiota

  • 摘要: 为研究益智仁低聚糖(Alpinia oxyphylla Miq. Oligosaccharides,MC)的结构及其对人肠道粪便菌群的影响,本研究通过超声辅助高压脉冲电场对益智仁低聚糖进行提取、纯化,采用傅里叶变换红外光谱仪(Fourier transform infrared spectroscopy,FT-IR)、X射线衍射(X-ray diffractometer,XRD)与扫描电镜(scanning electron microscope,SEM)分析其结构,并探究其体外抗氧化活性与降糖活性及其对肠道菌群的调控机制。结果表明,提取获得的MC为分子量为2461 Da的葡萄糖均聚物(单糖组成100%为葡萄糖),FT-IR光谱证实MC具有β-糖苷键构型(特征峰1656 cm−1和1623 cm−1),XRD与SEM分析揭示其β-葡聚糖主链的结晶区与非晶域共存层级结构,为靶向肠道菌群提供了结构基础。体外活性实验结果表明,MC几乎没有抗氧化活性而具有较好的降糖活性;体外粪便发酵实验结果表明,MC显著提升芽孢杆菌门丰度,抑制拟杆菌门,并富集联合乳杆菌属(Ligilactobacillus)和魏斯氏菌属(Weissella),可能通过β-糖苷键稳定性延长肠道滞留时间,非晶区孔隙增强菌群结合效率重塑菌群平衡。本研究为益智仁低聚糖作为益生元开发提供了理论依据。

     

    Abstract: To investigate the structure of Alpinia oxyphylla Miq. oligosaccharides (MC) and their impact on human gut microbiota, MC was extracted and purified using ultrasound-assisted high-voltage pulsed electric fields. Its structural characteristics were analyzed using Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), and scanning electron microscopy (SEM). Its in vitro antioxidant and hypoglycemic activities, as well as its regulatory mechanism on the intestinal flora were investigated. Results showed that the extracted MC was a glucose homopolymer (100% glucose monosaccharide composition) with a molecular weight of 2461 Da. The β-glycosidic bond configuration of MC was confirmed by FT-IR spectroscopy, with characteristic peaks observed at 1656 cm−1 and 1623 cm−1. A hierarchical structure characterized by coexisting crystalline and amorphous domains within the β-glucan backbone was demonstrated through XRD and SEM analyses. These structural features constitute a structural basis for targeting gut microbiota. In vitro activity assays indicated that MC exhibited negligible antioxidant activity but demonstrated notable hypoglycemic activity. Fecal fermentation experiments demonstrated that MC markedly increased the abundance of Firmicutes, reduced Bacteroidetes, and enriched the genera Ligilactobacillus and Weissella. These effects are potentially mediated by β-glycosidic bond stability prolonging intestinal retention time, and amorphous region porosity enhancing bacterial adhesion efficiency to remodel microbial balance. This study provides a theoretical foundation for developing Alpinia oxyphylla Miq. oligosaccharides as prebiotics.

     

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