研究报告

超声波改性淀粉及其耦合酶解反应的生物学效应

  • 王宝石 ,
  • 谭凤玲 ,
  • 李光耀 ,
  • 陈艳艳 ,
  • 马世航 ,
  • 张明霞 ,
  • 孟丽 ,
  • 邱立友
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  • 1(河南科技学院 生命科技学院,现代生物育种河南省协同创新中心,河南 新乡,453003);
    2(河南农业大学 生命科技学院,河南 郑州,450002)
博士,讲师(张明霞教授和王宝石讲师为共同通讯作者,E-mail:zhangmingx@163.com,wangbaoshifsd@126.com)

收稿日期: 2020-06-09

  修回日期: 2020-06-19

  网络出版日期: 2020-12-30

基金资助

河南省博士后基金项目(1902043);河南省科技计划项目(202102110291);糖化学与生物技术教育部重点实验室开放课题(KLCCB-KF202005)

Application of ultrasound treatment in starch modification and its biological effect on enzymatic hydrolysis

  • WANG Baoshi ,
  • TAN Fengling ,
  • LI Guangyao ,
  • Chen Yanyan ,
  • MA Shihang ,
  • ZHANG Mingxia ,
  • MENG Li ,
  • QIU Liyou
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  • 1(School of Life Science and Technology,Henan Collaborative Innovation Center in Modern Biological Breeding,Henan Institute of Science and Technology,Xinxiang 453003,China);
    2(College of Life Sciences,Henan Agricultural University,Zhengzhou 450002,China)

Received date: 2020-06-09

  Revised date: 2020-06-19

  Online published: 2020-12-30

摘要

淀粉是天然的高分子聚合物,是人体的主要能源物质和重要的工业原料之一。但传统高温酶解方式仍面临着一些瓶颈问题,其中淀粉-糖平台的预处理及其酶解问题尤为突出。作为非热加工技术,超声波具有绿色节能、传质高效等优点,逐渐成为淀粉改性领域的研究热点。文章综述了超声波应用于淀粉改性、多尺度结构变化及其作用机理的最新研究进展,并指出超声波耦合酶解方式为未来淀粉绿色深加工的重要途径。探究超声波耦合酶解反应的作用机理,构建淀粉的新型酶解反应体系,并开发面向工业化生产的超声波酶解设备,对于实现淀粉加工的绿色制造和智能制造具有重要意义。

本文引用格式

王宝石 , 谭凤玲 , 李光耀 , 陈艳艳 , 马世航 , 张明霞 , 孟丽 , 邱立友 . 超声波改性淀粉及其耦合酶解反应的生物学效应[J]. 食品与发酵工业, 2020 , 46(23) : 81 -85 . DOI: 10.13995/j.cnki.11-1802/ts.024690

Abstract

Starch is a natural macromolecule polymer,which is the main energy material for human and one of the most important industrial raw materials.However,there are still bottlenecks for its traditional enzymatic hydrolysis at high temperature,especially the pretreatment and enzymatic hydrolysis of starch-sugar platform.As a non-thermal processing technology,ultrasound has the advantages of energy saving and high efficiency in mass transfer,hence has become a hotspot in starch modification.In this paper,the application of ultrasound in starch modification,multi-scale structure change and its mode of action are reviewed.For environment friendly and intelligent manufacturing of starch,it is of great significance to explore the mode of action in ultrasound assisted enzymatic hydrolysis reaction,establish novel enzymatic hydrolysis reaction system of starch,and develop novel equipment for ultrasound assisted enzymatic hydrolysis at industrial scale.

参考文献

[1] KUMARI S,YADAV B S,YADAV R B.Synthesis and modification approaches for starch nanoparticles for their emerging food industrial applications:A review[J].Food Research International,2020,128:108 765.
[2] JONATHAN M C,VAN BRUSSEL M,SCHEFFERS M S,et al.Different action patterns of glucoamylases on branched gluco-oligosaccharides from amylopectin[J].Carbohydrate Polymers,2016,143:198-203.
[3] WANG H,XU K,MA Y,et al.Impact of ultrasonication on the aggregation structure and physicochemical characteristics of sweet potato starch[J].Ultrasonics Sonochemistry,2020,63:104 868.
[4] LI M,LI J,ZHU C.Effect of ultrasound pretreatment on enzymolysis and physicochemical properties of corn starch[J].International Journal of Biological Macromolecules,2018,111:848-856.
[5] CHEN H-M,HUANG Q,FU X,et al.Ultrasonic effect on the octenyl succinate starch synthesis and substitution patterns in starch granules[J].Food Hydrocolloids,2014,35:636-643.
[6] CZECHOWSKA-BISKUP R,ROKITA B,LOTFY S,et al.Degradation of chitosan and starch by 360-kHz ultrasound[J].Carbohydrate Polymers,2005,60(2):175-184.
[7] TRUNG P T B,NGOC L B B,HOA P N,et al.Impact of heat-moisture and annealing treatments on physicochemical properties and digestibility of starches from different colored sweet potato varieties[J].International Journal of Biological Macromolecules,2017,105(Pt 1):1 071-1 078.
[8] JIN J,LIN H,YAGOUB A E A,et al.Effects of high power ultrasound on the enzymolysis and structures of sweet potato starch[J].Journal of the Science of Food and Agriculture,2020,100(8):3 498-3 506.
[9] PARK D J,HAN J A.Quality controlling of brown rice by ultrasound treatment and its effect on isolated starch[J].Carbohydrate Polymers,2016,137:30-38.
[10] 李薇,郑炯,陈映衡,等.超声波处理对豌豆淀粉糊化、流变及质构特性的影响[J].食品与机械,2018,34(5):32-37.
LI W,ZHENG J,CHEN Y H,et al.Effect of ultrasound treatment on pasting,rheological and textural properties of pea starch[J].Food and Machinery,2018,34(5):32-37.
[11] DUAN X,HAN H,DENG R,et al.Drying treatments on Chinese yam (Dioscoreaspp.) prior to wet milling influence starch molecular structures and physicochemical properties[J].Food Hydrocolloids,2020,102:105 599.
[12] YANG W,KONG X,ZHENG Y,et al.Controlled ultrasound treatments modify the morphology and physical properties of rice starch rather than the fine structure[J].Ultrasonics Sonochemistry,2019,59.DOI:10.1016/j.ultsonch.2019.104709.
[13] YANG Q Y,LU X X,CHEN Y Z,et al.Fine structure,crystalline and physicochemical properties of waxy corn starch treated by ultrasound irradiation[J].Ultrasonics Sonochemistry,2019,51:350-358.
[14] SUJKA M.Ultrasonic modification of starch-Impact on granules porosity[J].Ultrasonics Sonochemistry,2017,37:424-429.
[15] MONROY Y,RIVERO S,GARCIA M A.Microstructural and techno-functional properties of cassava starch modified by ultrasound[J].Ultrasonics Sonochemistry,2018,42:795-804.
[16] ZHU F.Impact of ultrasound on structure,physicochemical properties,modifications,and applications of starch[J].Trends in Food Science and Technology,2015,43(1):1-17.
[17] KAUR H,GILL B S.Effect of high-intensity ultrasound treatment on nutritional,rheological and structural properties of starches obtained from different cereals[J].International Journal of Biological Macromolecules,2019,126:367-375.
[18] MOHAMMAD AMINI A,RAZAVI S M,MORTAZAVI S A.Morphological,physicochemical,and viscoelastic properties of sonicated corn starch[J].Carbohydrate Polymers,2015,122:282-292.
[19] FALSAFI S R,MAGHSOUDLOU Y,ROSTAMABADI H,et al.Preparation of physically modified oat starch with different sonication treatments[J].Food Hydrocolloids,2019,89:311-320.
[20] 朱杰,李琳,张宾佳,等.小角X射线散射研究超声处理对淀粉结构的改变[C].广州:2010年中国农业工程学会农产品加工及贮藏工程分会学术年会暨华南地区农产品加工产学研研讨会论文集,2010:12-12.
ZHU J,LI L,ZHANG B J,et al.Structure changes of ultrasound treated starch with small angle X-ray scattering[C].Guangzhou:Proceedings of the 2010 annual conference of Agricultural Product Processing and Storage Engineering Branch of Chinese Agricultural Engineering Society and the Symposium on Agricultural Product Processing,Education and Research in South China,2010:12-12.
[21] 胡爱军,张志华,郑捷,等.超声波处理对淀粉结构与性质影响[J].粮食与油脂,2011(6):9-11.
HU A J,ZHANG Z H,ZHENG J,et al.Effects of ultrasound on structures and properties of starch[J].Cereals and Oils,2011(6):9-11.
[22] ABEDI E,POURMOHAMMADI K,ABBASI S.Dual-frequency ultrasound for ultrasonic-assisted esterification[J].Food Science and Nutrition,2019,7(8):2 613-2 624.
[23] GOGATE P R,PRAJAPAT A L.Depolymerization using sonochemical reactors:A critical review[J].Ultrasonics Sonochemistry,2015,27:480-494.
[24] 付陈梅,赵国华,阚健全,等.超声波对淀粉降解及其性质影响[J].粮食与油脂,2002(12):31-32.
FU C M,ZHAO G H,KAN J Q,et al.Effect on degradation of starch by ultrasonic[J].Cereals and Oils,2002(12):31-32.
[25] GOESAERT H,BIJTTEBIER A,DELCOUR J A.Hydrolysis of amylopectin by amylolytic enzymes:Level of inner chain attack as an important analytical differentiation criterion[J].Carbohydrate Research,2010,345(3):397-401.
[26] CARMONA-GARCÍA R,BELLO-PÉREZ L A,AGUIRRE-CRUZ A,et al.Effect of ultrasonic treatment on the morphological,physicochemical,functional,and rheological properties of starches with different granule size[J].Starch-Stärke,2016,68(9-10):972-979.
[27] WANG D,YAN L,MA X,et al.Ultrasound promotes enzymatic reactions by acting on different targets:Enzymes,substrates and enzymatic reaction systems[J].International Journal of Biological Macromolecules,2018,119:453-461.
[28] IIDA Y,TUZIUTI T,YASUI K,et al.Control of viscosity in starch and polysaccharide solutions with ultrasound after gelatinization[J].Innovative Food Science and Emerging Technologies,2008,9(2):140-146.
[29] HUANG G,CHEN S,DAI C,et al.Effects of ultrasound on microbial growth and enzyme activity[J].Ultrasonics Sonochemistry,2017,37:144-149.
[30] GAO X,LIU E,ZHANG J,et al.Accelerating aroma formation of raw soy sauce using low intensity sonication[J].Food Chemistry,2020.DOI:10.1016/j.foodchem.2020.127118.
[31] WANG Z,LIN X,LI P,et al.Effects of low intensity ultrasound on cellulase pretreatment[J].Bioresoure Technology,2012,117:222-227.
[32] LADOLE M R,MEVADA J S,PANDIT A B.Ultrasonic hyperactivation of cellulase immobilized on magnetic nanoparticles[J].Bioresoure Technology,2017,239:117-126.
[33] YADAV A,MAHABOOB ALI A A,INGAWALE M,et al.Enhanced co-production of pectinase,cellulase and xylanase enzymes fromBacillus subtilis ABDR01 upon ultrasonic irradiation[J].Process Biochemistry,2020,92:197-201.
[34] BHALERAO M S,KULKARNI V M,PATWARDHAN A V.Ultrasound-assisted chemoenzymatic epoxidation of soybean oil by using lipase as biocatalyst[J].Ultrasonics Sonochemistry,2018,40(Pt A):912-920.
[35] JADHAV S H,GOGATE P R.Intensification in the activity of lipase enzyme using ultrasonic irradiation and stability studies[J].Industrial and Engineering Chemistry Research,2014,53(4):1 377-1 385.
[36] MENG H,LI D,ZHU C.The effect of ultrasound on the properties and conformation of glucoamylase[J].International Journal of Biological Macromolecules,2018,113:411-417.
[37] WANG D,MA X,YAN L,et al.Ultrasound assisted enzymatic hydrolysis of starch catalyzed by glucoamylase:Investigation on starch properties and degradation kinetics[J].Carbohydrate Polymers,2017,175:47-54.
[38] WANG J,CAO Y,SUN B,et al.Effect of ultrasound on the activity of alliinase from fresh garlic[J].Ultrasonics Sonochemistry,2011,18(2):534-540.
[39] WANG D,HOU F,MA X,et al.Study on the mechanism of ultrasound-accelerated enzymatic hydrolysis of starch:Analysis of ultrasound effect on different objects[J].International Journal of Biological Macromolecules,2020,148:493-500.
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