研究报告

大果沙枣多糖的理化性质及复合乳液体系构建研究

  • 陈璐 ,
  • 孙妍 ,
  • 高尚 ,
  • 刘营飞 ,
  • 程乐琴 ,
  • 张锐利 ,
  • 廖兵武
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  • 1(塔里木大学 食品科学与工程学院,新疆 阿拉尔,843300)
    2(石河子大学 药学院,新疆 石河子,832003)
    3(南疆特色农产品深加工兵团重点实验室,新疆 阿拉尔,843300)
    4(新疆植物药资源利用教育部重点实验室,新疆 石河子,832003)
第一作者:硕士研究生(张锐利教授和廖兵武副教授为共同通信作者,E-mail:zrl_p@sina.com;Lbwcy2021@163.com)

收稿日期: 2024-01-27

  修回日期: 2024-02-29

  网络出版日期: 2025-02-14

基金资助

新疆植物药资源利用教育部重点实验室主任基金(2021QDJF002);石河子大学创新发展专项(CXFZ202219);新疆维吾尔自治区天池英才青年博士项目(CZ000904)

Physicochemical properties and constructing composite emulsion system of polysaccharide from Elaeagnus moorcroftii Wall.

  • CHEN Lu ,
  • SUN Yan ,
  • GAO Shang ,
  • LIU Yingfei ,
  • CHENG Leqin ,
  • ZHANG Ruili ,
  • LIAO Bingwu
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  • 1(College of Food Science and Engineering, Tarim University, Alar 843300, China)
    2(School of Pharmacy, Shihezi University, Shihezi 832003, China)
    3(Key Laboratory of Special Agricultural Products Further Processing in Southern Xinjiang, Production & Construction Group, Alar 843300, China)
    4(Key Laboratory of Xinjiang Phytomedicine Resource and Utilization, Ministry of Education, Shihezi 832003, China)

Received date: 2024-01-27

  Revised date: 2024-02-29

  Online published: 2025-02-14

摘要

该文采用水提醇沉法制备大果沙枣多糖(Elaeagnus moorcroftii Wall.polysaccharide from Kashgar, EMP-K),基于现代分析技术对多糖进行理化性质分析,继而构建蛋白-多酚-多糖三元复合乳液体系并探讨其贮存稳定性。结果表明,EMP-K是一种平均分子质量为7 491 Da的杂多糖,主要由甘露糖、盐酸氨基葡萄糖、鼠李糖、葡萄糖醛酸、半乳糖醛酸、葡萄糖、半乳糖和阿拉伯糖等组成;红外光谱结果表明,样品呈现出C=O和C—O的振动吸收峰;扫描电镜结果表明,EMP-K 的表观呈现出清晰的颗粒状结构,微表面较为光滑;粒度和Zeta 电位测量结果表明,多糖的溶剂体系相对稳定;乳铁蛋白与表没食子儿茶素没食子酸酯在二元复合物中发生共价反应,多糖主要通过氢键和疏水作用与二元复合物结合;此外,多糖参与形成的双层乳液可有效防止液滴聚集,以提高体系的贮存稳定性。该研究为深入开发大果沙枣多糖的乳化功能,提升新疆地区大果沙枣的综合效益及开发新式乳液递送系统提供重要的科学依据。

本文引用格式

陈璐 , 孙妍 , 高尚 , 刘营飞 , 程乐琴 , 张锐利 , 廖兵武 . 大果沙枣多糖的理化性质及复合乳液体系构建研究[J]. 食品与发酵工业, 2025 , 51(2) : 210 -217 . DOI: 10.13995/j.cnki.11-1802/ts.038729

Abstract

Water extraction and alcohol precipitation method was used to extract the polysaccharide from Elaeagnus moorcroftii Wall.of Kashgar (EMP-K).Physicochemical properties of polysaccharides were carried out through modern analytical techniques, and then protein-polyphenol-polysaccharide ternary composite emulsion system was constructed and its storage stabilities were investigated.Results showed that the EMP-K was a heteropolysaccharide with an average molecular weight of 7 491 Da, mainly composed of Man, GlcN, Rha, GlcUA, GalUA, Glc, Gal, Ara, etc., the infrared spectra showed that the samples exhibited vibrational absorption peaks of C=O and C—O, the scanning electron microscopy results showed that the apparent appearance of EMP-K exhibited a clear granular structure with a relatively smooth microsurface, the particle size and Zeta potential measurements showed that the solvent system of polysaccharides was relatively stable, the covalent reaction between lactoferrin and epigallocatechin gallate occurred in the ternary complex, and the polysaccharides were mainly bound to the binary complex through hydrogen bonding and hydrophobic interactions. Moreover, the bilayered emulsion formed with the participation of polysaccharides could effectively prevent the aggregation of droplets to enhance the storage stability of the system.This study could provide an important scientific basis for the in-depth development of emulsifying function of Elaeagnus moorcroftii Wall.polysaccharide, the enhancement of the comprehensive benefits of Elaeagnus moorcroftii Wall.in Xinjiang and the development of a new type of emulsion delivery systems.

参考文献

[1] MINEAU M M, BAXTER C V, MARCARELLI A M.A non-native riparian tree (Elaeagnus angustifolia) changes nutrient dynamics in streams[J].Ecosystems, 2011, 14(3):353-365.
[2] ABIZOV E A, TOLKACHEV O N, MAL’TSEV S D, et al.Composition of biologically active substances isolated from the fruits of Russian olive (Elaeagnus angustifolia) introduced in the European part of Russia[J].Pharmaceutical Chemistry Journal, 2008, 42(12):696-698.
[3] HOSSEINZADEH H, RAMEZANI M, NAMJO N.Muscle relaxant activity of Elaeagnus angustifolia L.fruit seeds in mice[J].Journal of Ethnopharmacology, 2003, 84(2-3):275-278.
[4] 刘巧玲, 刘丽燕, 盛玮.新疆大果沙枣果实营养分析及开发利用[J].现代园艺, 2021, 44(9):54-56.
LIU Q L, LIU L Y, SHENG W.Nutritional analysis and development of E. moorcroftii Wall.Ex Schlecht[J].Xiandai Horticulture, 2021, 44(9):54-56.
[5] LIWO A, BARANOWSKI M, CZAPLEWSKI C, et al.A unified coarse-grained model of biological macromolecules based on mean-field multipole-multipole interactions[J].Journal of Molecular Modeling, 2014, 20(8):2306.
[6] GU Y S, DECKER E A, JULIAN MCCLEMENTS D.Application of multi-component biopolymer layers to improve the freeze-thaw stability of oil-in-water emulsions:β-lactoglobulin-ι-carrageenan-gelatin[J].Journal of Food Engineering, 2007, 80(4):1246-1254.
[7] TAHERIAN A R, BRITTEN M, SABIK H, et al.Ability of whey protein isolate and/or fish gelatin to inhibit physical separation and lipid oxidation in fish oil-in-water beverage emulsion[J].Food Hydrocolloids, 2011, 25(5):868-878.
[8] LI M, MA Y, CUI J.Whey-protein-stabilized nanoemulsions as a potential delivery system for water-insoluble curcumin[J].LWT-Food Science and Technology, 2014, 59(1):49-58.
[9] ZHAO M, HAN Y, LI J E, et al.Structural characterization and antioxidant activity of an acetylated Cyclocarya paliurus polysaccharide (Ac-CPP0.1)[J].International Journal of Biological Macromolecules, 2021, 171(28):112-122.
[10] CHEN H L, TAN H L, YANG J, et al.Inhibitory effect of polysaccharide of Sargassum weizhouense on PCV2 induced inflammation in mice by suppressing histone acetylation[J].Biomedicine & Pharmacotherapy, 2019, 112:108741.
[11] LIU W, LIU Y M, ZHU R, et al.Structure characterization, chemical and enzymatic degradation, and chain conformation of an acidic polysaccharide from Lycium barbarum L.[J].Carbohydrate Polymers, 2016, 147:114-124.
[12] YANG Y, LEI Z X, ZHAO M M, et al.Microwave-assisted extraction of an acidic polysaccharide from Ribes nigrum L.:Structural characteristics and biological activities[J].Industrial Crops and Products, 2020, 147:112249.
[13] XU Y Q, NIU X J, LIU N Y, et al.Characterization, antioxidant and hypoglycemic activities of degraded polysaccharides from blackcurrant (Ribes nigrum L.) fruits[J].Food Chemistry, 2018, 243:26-35.
[14] MA Z Y, YAO J Q, WANG Y Y, et al.Polysaccharide-based delivery system for curcumin:Fabrication and characterization of carboxymethylated corn fiber gum/chitosan biopolymer particles[J].Food Hydrocolloids, 2022,125:107367.
[15] 刘晓庆, 刘会平, 赵范, 等.沙枣多糖结构的初步研究[J].食品工业科技, 2015, 36(13):138-142;149.
LIU X Q, LIU H P, ZHAO F, et al.Purification and preliminary analysis of Elaeagnus angustifolia L.polysaccharide[J].Science and Technology of Food Industry, 2015, 36(13):138-142;149.
[16] LIN S, LI H Y, YUAN Q, et al.Structural characterization, antioxidant activity, and immunomodulatory activity of non-starch polysaccharides from Chuanminshen violaceum collected from different regions[J].International Journal of Biological Macromolecules, 2020, 143:902-912.
[17] LI X, WANG X H, DONG Y, et al.Preparation, structural analysis, antioxidant and digestive enzymes inhibitory activities of polysaccharides from Thymus quinquecostatus Celak.leaves[J].Industrial Crops and Products, 2022, 175:114288.
[18] GUO H Y, ZHANG L, WANG Y, et al.Mechanisms of HuR in regulation of epithelial cell apoptosis in rat ulcerative colitis[J].Cellular Signalling, 2021, 82:109957.
[19] YUAN J, CHEN S X, WANG L P, et al.Preparation of purified fractions for polysaccharides from Monetaria moneta Linnaeus and comparison their characteristics and antioxidant activities[J].International Journal of Biological Macromolecules, 2018, 108:342-349.
[20] LIU Y, ZHANG Y Q, MEI N J, et al.Three acidic polysaccharides derived from sour jujube seeds protect intestinal epithelial barrier function in LPS induced Caco-2 cell inflammation model[J].International Journal of Biological Macromolecules, 2023, 240:124435.
[21] GETACHEW A T, LEE H J, CHO Y J, et al.Optimization of polysaccharides extraction from Pacific oyster (Crassostrea gigas) using subcritical water:Structural characterization and biological activities[J].International Journal of Biological Macromolecules, 2019, 121:852-861.
[22] LIU X Y, YU H Y, LIU Y Z, et al.Isolation and structural characterization of cell wall polysaccharides from sesame kernel[J].LWT, 2022,163:113574.
[23] RAM MURTHY PALADUGU S & RAMA SREEKANTH P S.Review on influence of radiation, particle size and molecular weight on thermo-mechanical properties of UHMWPE composites[J].Materials Today:Proceedings, 2022, 56:1086-1090.
[24] XU E B, CAMPANELLA O H, YE X Q, et al.Advances in conversion of natural biopolymers:A reactive extrusion (REX)-enzyme-combined strategy for starch/protein-based food processing[J].Trends in Food Science & Technology, 2020, 99:167-180.
[25] MOREL J, MD ZAIN S N, ARCHER R.Comparison of drying techniques for bovine lactoferrin:Iron binding and antimicrobial properties of dried lactoferrin[J].International Dairy Journal, 2022, 124:105142.
[26] XU B M, JIA Y Y, LI B, et al.Ultrastable emulsions constructed by self-assembly of two protein-polyphenol- anionic polysaccharide ternary complexes-stablized high internal phase emulsions[J].LWT, 2023, 176:114517.
[27] HE X, YANG W S, QIN X S.Ultrasound-assisted multilayer Pickering emulsion fabricated by WPI-EGCG covalent conjugates for encapsulating probiotics in colon-targeted release[J].Ultrasonics Sonochemistry, 2023, 97:106450.
[28] KUSHWAHA P, PRABHU N P.Aromatic vs alicyclic:Hydrophobicity of the ionic liquid on protein stability and fibril formation[J].Journal of Molecular Liquids, 2024, 395:123920.
[29] 王春朋. 罗布麻茶多糖的乳化特性研究[D].武汉:湖北工业大学, 2021.
WANG C P.Emulsification properties for the Apocynum venetum L.tea polysaccharide conjugates[D].Wuhan:Hubei University of Technology, 2021.
[30] 赵玲玲. pH、Na+及萃取剂对大豆种皮多糖乳化性影响研究[D].锦州:渤海大学, 2019.
ZHAO L L.Study on the effect of pH, Na+and extractant on emulsifying properties of soy hull polysaccharide[D].Jinzhou:Bohai University, 2019.
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