食品科学 ›› 2023, Vol. 44 ›› Issue (6): 17-24.doi: 10.7506/spkx1002-6630-20220710-098

• 食品化学 • 上一篇    下一篇

蓝靛果硒多糖的理化性质、结构表征及红细胞氧化损伤保护活性

徐雅琴,邵春天,耿莹,郑秀雯,王茹娟,杨昱   

  1. (东北农业大学文理学院,黑龙江 哈尔滨 150030)
  • 出版日期:2023-03-27 发布日期:2023-03-27
  • 基金资助:
    国家自然科学基金面上项目(32172916);东北农业大学大学生创新创业计划项目(SIPT); 黑龙江省自然科学基金项目(LH2021C044)

Physicochemical Properties, Structural Characterization and Protective Effect on Erythrocyte Oxidative Damage of Selenized Lonicera caerulea L. Polysaccharide

XU Yaqin, SHAO Chuntian, GENG Ying, ZHENG Xiuwen, WANG Rujuan, YANG Yu   

  1. (College of Arts and Sciences, Northeast Agricultural University, Harbin 150030, China)
  • Online:2023-03-27 Published:2023-03-27

摘要: 以蓝靛果果实多糖为原料,采用微波辅助HNO3-Na2SeO3法制备蓝靛果硒多糖,后经柱色谱分离后得到高含量蓝靛果硒多糖。高含量蓝靛果硒多糖中硒含量为(0.184±0.03) mg/g,重均分子质量为58 828.3 kDa,由半乳糖醛酸、鼠李糖、阿拉伯糖、甘露糖、葡萄糖、半乳糖6 种单糖组成,其物质的量比为1∶3.06∶6.18∶0.29∶1.78∶13.01。核磁分析表明高含量硒多糖中存在6 种糖苷键,分别为:→3)-β-D-半乳糖(1→、→4)-β-D-甘露糖-(1→、→6)-α-D-葡萄糖-(1→、→4)-α-D-半乳糖醛酸-(1→、→2,4)-α-L-鼠李糖-(1→、α-L-阿拉伯糖-(1→。红细胞氧化损伤保护实验结果表明:同H2O2处理红细胞损伤组相比,保护组高含量蓝靛果硒多糖质量浓度为10.0 mg/mL时,H2O2诱导的红细胞氧化溶血率降低了32.52%;活性氧水平降低了44.93%;丙二醛含量减少了17.04 nmol/mL;超氧化物歧化酶、过氧化氢酶和谷胱甘肽过氧化物酶分别降低了163.93、9.95 U/mg和20.07 mU/mg。可见高含量蓝靛果硒多糖对红细胞氧化损伤具有一定保护作用。

关键词: 蓝靛果;硒化多糖;理化性质;结构特征;红细胞损伤保护

Abstract: Selenized Lonicera caerulea L. polysaccharide was obtained by microwave-assisted HNO3-Na2SeO3 method and purified by column chromatography. The selenium content of the selenized polysaccharide was (0.184 ± 0.03) mg/g with an average molecular mass of 58 828.3 kDa, and the polysaccharide was composed of galacturonic acid, rhamnose, arabinose, mannose, glucose and galactose with a molar ratio of 1:3.06:6.18:0.29:1.78:13.01. Nuclear magnetic resonance analysis showed six glycosidic bonds to be present in the selenized polysaccharide, namely →3)-β-D-galactose-(1→; →4)-β-D-mannose-(1→; →6)-α-D-glucose-(1→; →4)-α-D-galacturonic acid-(1→; →2,4)-α-L-rhamnose-(1→; and α-L-arabinose-(1→. The selenized polysaccharide at a concentration of 10.0 mg/mL reduced the oxidative hemolysis of erythrocytes induced by H2O2 by 32.52%, reactive oxygen species (ROS) level by 44.93%, and malondialdehyde (MDA) content by 17.04 nmol/mL, and decreased the activity of superoxide dismutase (SOD), catalase (CAT) and glutathione peroxidase (GSH-Px) by 163.93, 9.95 U/mg and 20.07 mU/mg protein, respectively. Therefore, the selenized polysaccharide from L. caerulea L. fruit can protect erythrocyte against oxidative damage.

Key words: Lonicera caerulea L.; selenized polysaccharide; physicochemical properties; structure features; protection against erythrocyte damage

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