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中国精品科技期刊2020
向欣龙,葛乾慧,张志钰,等. 凝结魏茨曼氏菌P-L1硒胞外多糖的制备及体外降血糖活性分析J. 食品工业科技,2026,47(6):1−8. doi: 10.13386/j.issn1002-0306.2025040149.
引用本文: 向欣龙,葛乾慧,张志钰,等. 凝结魏茨曼氏菌P-L1硒胞外多糖的制备及体外降血糖活性分析J. 食品工业科技,2026,47(6):1−8. doi: 10.13386/j.issn1002-0306.2025040149.
XIANG Xinlong, GE Qianhui, ZHANG Zhiyu, et al. Preparation and in Vitro Hypoglycemic Activity Analysis of Selenoexopolysaccharides from Weizmannia coagulans P-L1J. Science and Technology of Food Industry, 2026, 47(6): 1−8. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025040149.
Citation: XIANG Xinlong, GE Qianhui, ZHANG Zhiyu, et al. Preparation and in Vitro Hypoglycemic Activity Analysis of Selenoexopolysaccharides from Weizmannia coagulans P-L1J. Science and Technology of Food Industry, 2026, 47(6): 1−8. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025040149.

凝结魏茨曼氏菌P-L1硒胞外多糖的制备及体外降血糖活性分析

Preparation and in Vitro Hypoglycemic Activity Analysis of Selenoexopolysaccharides from Weizmannia coagulans P-L1

  • 摘要: 为了开发一种硒胞外多糖(Selenium exopolysaccharide,Se-EPS)的高产量制备方法,本文选择耐高温的凝结魏茨曼氏菌P-L1在阴离子交换树脂的辅助下,以20 mg/L的比例添加亚硒酸钠进行发酵以制备Se-EPS。同时,使用红外光谱对其结构进行分析,并探究了其体外降血糖活性。结果显示:初始细菌浓度、阴离子交换树脂的使用及发酵时间均对Se-EPS的产量有显著影响。初始细菌浓度1×106 CFU/mL、发酵8 d时,Se-EPS的产量高达19.1 g/L,是初始细菌浓度1×105 CFU/mL下Se-EPS产量的5.4倍;是常规发酵(无阴离子交换树脂辅助)胞外多糖(Exopolysaccharide,EPS)产量的19.5倍。Se-EPS中的硒含量最高可达213 μg/g。红外光谱分析显示硒元素可能以Se-O与Se=O键的形式结合在EPS上。凝结魏茨曼氏菌P-L1 EPS和Se-EPS均具有较高的体外降血糖活性。而Se-EPS的体外降血糖活性显著高于EPS,在1 mg/mL时Se-EPS对α-葡萄糖苷酶和α-淀粉酶活性的抑制率较EPS分别提高了28%和16%。本研究为凝结维茨曼氏菌Se-EPS产品的开发和应用提供理论支持与技术参考。

     

    Abstract: To develop a method for the preparation of selenium exopolysaccharide (Se-EPS) with high yield, the heat-resistant Weizmannia coagulans P-L1 was selected to produce Se-EPS through fermentation, with the addition of sodium selenite at a concentration of 20 mg/L, using anion exchange resins. In addition, Se-EPS was characterized using infrared spectroscopy, and in vitro hypoglycemic activity of Se-EPS was investigated. The results showed that the initial bacterial concentration, the employment of anion exchange resins and the fermentation time all had a significant impact on the yield of Se-EPS. With an initial bacterial concentration of 1×106 CFU/mL, the yield of Se-EPS achieved up to 19.1 g/L after 8 days of fermentation, which was increased by 5.4-fold as compared to the yield of Se-EPS obtained with an initial bacterial concentration of 1×105 CFU/mL, and was increased by 19.5-fold as compared to the yield of exopolysaccharide (EPS) obtained by conventional fermentation (without using anion-exchange resin). The selenium content of the Se-EPS reached up to 213 μg/g. Infrared spectroscopy analysis revealed that selenium was probably incorporated into the EPS via Se-O and Se=O bonds. Both EPS and Se-EPS derived from Weizmannia coagulans P-L1 exhibited good in vitro hypoglycemic activity, with Se-EPS showing significantly higher activity than EPS. At a concentration of 1 mg/mL, the inhibition of Se-EPS against α-glucosidase and α-amylase were 28% and 16% higher than those of EPS, respectively. The study provides theoretical support and technical references for the development and application of Se-EPS products derived from Weizmannia coagulans.

     

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