JOURNAL OF LIGHT INDUSTRY

CN 41-1437/TS  ISSN 2096-1553

淀粉老化的影响因素及其检测技术研究进展

王宏伟 许可 张艳艳 刘兴丽 张华

王宏伟, 许可, 张艳艳, 等. 淀粉老化的影响因素及其检测技术研究进展[J]. 轻工学报, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
引用本文: 王宏伟, 许可, 张艳艳, 等. 淀粉老化的影响因素及其检测技术研究进展[J]. 轻工学报, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
WANG Hongwei, XU Ke, ZHANG Yanyan, et al. An review on the factors affecting starch retrogradation and progress in detecting techniques[J]. Journal of Light Industry, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
Citation: WANG Hongwei, XU Ke, ZHANG Yanyan, et al. An review on the factors affecting starch retrogradation and progress in detecting techniques[J]. Journal of Light Industry, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003

淀粉老化的影响因素及其检测技术研究进展

    作者简介: 王宏伟(1988-),男,河南省周口市人,郑州轻工业大学讲师,博士,主要研究方向为淀粉多层次结构解析与物性修饰.;
  • 基金项目: 国家自然科学基金青年科学基金项目(31801578);河南省科技攻关项目(212102110083,202102110301)

  • 中图分类号: TS210.1

An review on the factors affecting starch retrogradation and progress in detecting techniques

  • Received Date: 2020-09-22

    CLC number: TS210.1

  • 摘要: 基于淀粉结构和老化机制,阐述了外源性组分对淀粉老化的影响;同时,从宏观和分子水平上对检测淀粉老化的热分析、光谱分析、显微成像等技术进行了综述.指出:淀粉的老化过程受非淀粉类碳水化合物、盐、蛋白质、脂质等外源性组分的影响,但由于淀粉类食品构成成分复杂,各组分在储存过程中均可能与淀粉分子发生相互作用,且简单的模型体系无法替代实际的食品体系,因而有必要更深入地探讨复杂模型下淀粉老化特性的变化,从根本上有效延缓或抑制淀粉的老化;另外,由于目前研究者多采用较为单一的分析技术揭示淀粉的老化机制,且常用分析技术尚存在分析指标单一、操作难度较大等局限,故在实际应用中,应根据淀粉样品的信息将多种检测技术相结合,更全面地分析淀粉老化特性的变化情况,以延缓淀粉类食品老化,延长产品货架期.
    1. [1]

      WANG S,LI C,COPELAND L,et al.Starch retrogradation:A comprehensive review[J].Comprehensive Reviews in Food Science and Food Safety,2015,14(5):568.

    2. [2]

      ZHU F,LIU P Z.Starch gelatinization,retrogradation,and enzyme susceptibility of retrograded starch:Effect of amylopectin internal molecular structure[J/OL].Food Chemistry,2020,316[2020-06-30].https://schlr.cnki.net/Detail/index/SJES_03/SJESCD086C4EC3B469-C0532EA87983F8D53F.

    3. [3]

      DOBOSZ A,SIKORA M,KRYSTYJAN M,et al.Short-and long-term retrogradation of potato starches with varying amylose content[J].Journal of the Science of Food and Agriculture,2019,99(5):2393.

    4. [4]

      LIU J,XU B.A comparative study on texture,gelatinisation,retrogradation and potential food application of binary gels made from selected starches and edible gums[J].Food Chemistry,2019,296:100.

    5. [5]

      GAO J F,KREFT I,CHAO G M,et al.Tartary buckwheat (Fagopyrum tataricum Gaertn.) starch,a side product in functional food production,as a potential source of retrograded starch[J].Food Chemistry,2016,190:552.

    6. [6]

      CHEN Y F,SINGH J,MIDGLEY J,et al.Influence of time-temperature cycles on potato starch retrogradation in tuber and starch digestion in vitro[J].Food Hydrocolloids,2020,98:105240.

    7. [7]

      YURIS A,MATIA-MERINO L,HARDACRE A K,et al.Molecular interactions in composite wheat starch-Mesona chinensis polysaccharide gels:Rheological,textural,microstructural and retrogradation properties[J].Food Hydrocolloids,2018,79:1.

    8. [8]

      LIAN X,WANG C,ZHANG K,et al.The retrogradation properties of glutinous rice and buckwheat starches as observed with FT-IR,13C NMR and DSC[J].International Journal of Biological Macrolecules,2014,64:288.

    9. [9]

      KIM J O,KIM W S,SHIN M S.A comparative study on retrogradation of rice starch gels by DSC,X-ray and α-amylase methods[J].Starch-Stärke,1997,49(2):71.

    10. [10]

      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,2020,63:104868.

    11. [11]

      WANG H,XU K,LIU X,et al.Understanding the structural,pasting and digestion properties of starch isolated from frozen wheat dough[J].Food Hydrocolloids,2021,111:106168.

    12. [12]

      HAWORTH W N.Molecular structure of cellulose and of amylose[J].Nature,1932,129(3253):365.

    13. [13]

      NIKUNI Z.Studies on starch granules[J].Starch-Stärke,1978,30(4):105.

    14. [14]

      DEXTER F.Fine structure of starch and its relationship to the organization of starch granules[J].Journal of Applied Glycoence,1972,19(1):8.

    15. [15]

      ROBIN J P,MERCIER C,CHARBONN R,et al.Lintnerized starches gel-filtration and enzymatic studies of insoluble residues from prolonged acid treatment of potato starch[J].Cereal Chemistry,1974,51:389.

    16. [16]

      HIZUKURI S.Relationship between the distribution of the chain length of amylopectin and the crystalline structure of starch granules[J].Carbohydrate Research,1985,141(2):295.

    17. [17]

      PEREZ S,BERTOFT E.The molecular structures of starch components and their contribution to the architecture of starch granules:A comprehensive review[J].Starch-Stärke,2010,62(8):389.

    18. [18]

      FU Z Q,WANG L J,LI D,et al.The effect of partial gelatinization of corn starch on its retrogradation[J].Carbohydrate Polymers,2013,97(2):512.

    19. [19]

      TAKO M,TAMAKI Y,KONISHI T,et al.Gelatinization and retrogradation characteristics of wheat (Rosella) starch[J].Food Research International,2008,41(8):797.

    20. [20]

      WANG S,COPELAND L.Molecular disassembly of starch granules during gelatinization and its effect on starch digestibility:A review[J].Food & Function,2013,4(11):1564.

    21. [21]

      GONG B,CHENG L,GILBERT R G,et al.Distribution of short to medium amylose chains are major controllers of in vitro digestion of retrograded rice starch[J].Food Hydrocolloids,2019,96:634.

    22. [22]

      LI C,HU Y,LI E.Effects of amylose and amylopectin chain-length distribution on the kinetics of long-term rice starch retrogradation[J].Food Hydrocolloids,2021,111:106239.

    23. [23]

      KLUCINEC J D,THOMPSON D B.Amylose and amylopectin interact in retrogradation of dispersed high-amylose starches[J].Cereal Chemistry,1999,76(2):282.

    24. [24]

      MILES M J,MORRIS V J,ORFORD P D,et al.The roles of amylose and amylopectin in the gelation and retrogradation of starch[J].Carbohydrate Research,1985,135(2):271.

    25. [25]

      FREDRIKSSON H,SILVERIO J,ANDERSSON R,et al.The influence of amylose and amylopectin characteristics on gelatinization and retrogradation properties of different starches[J].Carbohydrate Polymers,1998,35(3):119.

    26. [26]

      WU Y,CHEN Z,LI X,et al.Retrogradation properties of high amylose rice flour and rice starch by physical modification[J].LWT-Food Science and Technology,2010,43(3):492.

    27. [27]

      ZHANG Y,LI D,YANG N,et al.Comparison of dextran molecular weight on wheat bread quality and their performance in dough rheology and starch retrogradation[J].LWT-Food Science and Technology,2018,98:39.

    28. [28]

      HIBI Y.Effect of retrograded waxy corn starch on bread staling[J].Starch-Stärke,2001,53(5):227.

    29. [29]

      DING L,ZHANG B,TAN C P,et al.Effects of limited moisture content and storing temperature on retrogradation of rice starch[J].International Journal of Biological Macromolecules,2019,137:1068.

    30. [30]

      NAM S M,KIM H R,CHOI S J,et al.Effects of temperature-cycled retrogradation on properties of amylosucrase-treated waxy corn starch[J].Cereal Chemistry,2018,95(4):555.

    31. [31]

      WANG L,ZHANG L,WANG H,et al.Insight into protein-starch ratio on the gelatinization and retrogradation characteristics of reconstituted rice flour[J].International Journal of Biological Macromolecules,2020,146:524.

    32. [32]

      FU Z,CHEN J,LUO S J,et al.Effect of food additives on starch retrogradation:A review[J].Starch-Stärke,2015,67(1/2):69.

    33. [33]

      FUNAMI T,KATAOKA Y,OMOTO T,et al.Food hydrocolloids control the gelatinization and retrogradation behavior of starch.2b.Functions of guar gums with different molecular weights on the retrogradation behavior of corn starch[J].Food Hydrocolloids,2005,19(1):25.

    34. [34]

      ZHOU Y,WANG D,ZHANG L,et al.Effect of polysaccharides on gelatinization and retrogradation of wheat starch[J].Food Hydrocolloids,2008,22(4):505.

    35. [35]

      HE H,ZHANG Y,HONG Y,et al.Effects of hydrocolloids on corn starch retrogradation[J].Starch-Stärke,2015,67(3/4):348.

    36. [36]

      WU N N,QIAO C C,TIAN X H,et al.Retrogradation inhibition of rice starch with dietary fiber from extruded and unextruded rice bran[J/OL].Food Hydrocolloids,2020:106488[2020-11-25].https://schlr.cnki.net/Detail/index/SJESLAST/SJESBA0C948EF1B71724A27-21A3381056C3B.

    37. [37]

      YANG X,FENG M Q,SUN J,et al.The influence of flaxseed gum on the retrogradation of maize starch[J].International Journal of Food Science & Technology,2017,52(12):2654.

    38. [38]

      HIBI Y.Roles of water-soluble and water-insoluble carbohydrates in the gelatinization and retrogradation of rice starch[J].Starch-Stärke,1998,50(11):474.

    39. [39]

      LI X,LI J,YIN X,et al.Effect of Artemisia sphaerocephala Krasch polysaccharide on the gelatinization and retrogradation of wheat starch[J].Food Science & Nutrition,2019,7(12):4076.

    40. [40]

      BARANOWSKA H M,SIKORA M,KRYSTYJAN M,et al.Analysis of the retrogradation processes in potato starches blended with non-starchy polysaccharide hydrocolloids by LF-NMR[J].Food Biophysics,2020,15(1):64.

    41. [41]

      PENG B,LI Y Q,DING S Y,et al.Characterization of textural,rheological,thermal,microstructural,and water mobility in wheat flour dough and bread affected by trehalose[J].Food Chemistry,2017,233:369.

    42. [42]

      PERRY P A,DONALD A M.The effect of sugars on the gelatinisation of starch[J].Carbohydrate Polymers,2002,49(2):155.

    43. [43]

      孟祥艳.淀粉老化机理及影响因素的研究[J].食品工程,2007(2):60.

    44. [44]

      FEKETE E,BELLA É,CSISZAR E,et al.Improving physical properties and retrogradation of thermoplastic starch by incorporating agar[J].International Journal of Biological Macromolecules,2019,136:1026.

    45. [45]

      MUADKLAY J,CHAROENREIN S.Effects of hydrocolloids and freezing rates on freeze-thaw stability of tapioca starch gels[J].Food Hydrocolloids,2008,22(7):1268.

    46. [46]

      DOBOSZ A,SIKORA M,KRYSTYJAN M,et al.Influence of xanthan gum on the short-and long-term retrogradation of potato starches of various amylose content[J/OL].Food Hydrocolloids,2020,102[2020-05-18].https://schlr.cnki.net/Detail/index/SJES_03/SJES2F3B269-BBF1CED9C3E2B3907364D7332.

    47. [47]

      WANG W,ZHOU H,YANG H,et al.Effects of salts on the gelatinization and retrogradation properties of maize starch and waxy maize starch[J].Food Chemistry,2017,214:319.

    48. [48]

      BECK M,JEKLE M,BECKER T.Starch recrystallization kinetics as a function of various cations[J].Starch-Starke,2011,63(12):792.

    49. [49]

      周虹先.盐对淀粉糊化及老化特性的影响[D].武汉:华中农业大学,2014.

    50. [50]

      HU Y,HE C,ZHANG M,et al.Inhibition from whey protein hydrolysate on the retrogradation of gelatinized rice starch[J].Food Hydrocolloids,2020,108:105840.

    51. [51]

      王玉珠.即食米饭的食用品质改良及抑制回生现象的研究[D].广州:华南理工大学,2012.

    52. [52]

      LIAN X J,ZHU W,WEN Y,et al.Effects of soy protein hydrolysates on maize starch retrogradation studied by IR spectra and ESI-MS analysis[J].International Journal of Biological Macromolecules,2013,59:143.

    53. [53]

      牛海力,孔保华,刘骞,等.猪血浆蛋白水解物对玉米淀粉老化和糊化特性的影响[J].中国食品学报,2016,16(12):50.

    54. [54]

      GOEL P K,SINGHAL R S,KULKARNI P R.Studies on interactions of corn starch with casein and casein hydrolysates[J].Food Chemistry,1999,64:383.

    55. [55]

      MATSUNAGA A,KAINUMA K.Studies on the retrogradation of starch in starchy foods.Part 3.effect of the addition of sucrose fatty acid ester on the retrogradation of corn starch[J].Starch-Stärke,1986,38(1):1.

    56. [56]

      YU Z,WANG Y S,CHEN H H,et al.The gelatinization and retrogradation properties of wheat starch with the addition of stearic acid and sodium alginate[J].Food Hydrocolloids,2018,81:77.

    57. [57]

      ZHU T W,ZHANG X,LI B,et al.Effect of interesterified blend-based fast-frozen special fat on the physical properties and microstructure of frozen dough[J].Food Chemistry,2019,272:76.

    58. [58]

      PUTSEYS J A,LAMBERTS L,DELCOUR J A.Amylose-inclusion complexes:Formation,identity and physico-chemical properties[J].Journal of Cereal Science,2010,51(3):238.

    59. [59]

      NAKAZAWA Y,WANG Y J.Effect of annealing on starch-palmitic acid interaction[J].Carbohydrate Polymers,2004,57(3):327.

    60. [60]

      HYANG A L,NAM H K,NISHIINARI K.DSC and rheological studies of the effects of sucrose on the gelatinization and retrogradation of acorn starch[J].Thermochimica Acta,1998,322(1):39.

    61. [61]

      LIN Y S,YEH A I,LII C Y.Correlation between starch retrogradation and water mobility as determined by differential scanning calorimetry (DSC) and nuclear magnetic resonance (NMR)[J].Cereal Chemistry,2001,78(6):647.

    62. [62]

      赵思明,熊善柏,张声华.淀粉老化动力学研究述评[J].农业机械学报,2000(6):114.

    63. [63]

      田耀旗.淀粉回生及其控制研究[D].无锡:江南大学,2011.

    64. [64]

      FLORES-MORALES A,JIMENEZ-ESTRADA M,MORA-ESCOBEDO R.Determination of the structural changes by FT-IR,Raman,and CP/MAS 13C NMR spectroscopy on retrograded starch of maize tortillas[J].Carbohydrate Polymers,2012,87(1):61.

    65. [65]

      TIAN Y Q,XU X M,XIE Z J,et al.Starch retrogradation determined by differential thermal analysis (DTA)[J].Food Hydrocolloids,2011,25(6):1637.

    66. [66]

      吴跃,陈正行,林亲录,等.FT-IR光谱法测定籼米淀粉回生[J].江苏大学学报(自然科学版),2011(5):545.

    67. [67]

      PICCININI M,FOIS S,SECCHI N,et al.The application of NIR FT-Raman spectroscopy to monitor starch retrogradation and crumb firmness in semolina bread[J].Food Analytical Methods,2012,5(5):1145.

    68. [68]

      ZHU F.NMR spectroscopy of starch systems[J].Food Hydrocolloids,2017,63:611.

    69. [69]

      CHOI S G,KERR W L.Effect of hydroxypropylation on retrogradation and water dynamics in wheat starch gels using 1H NMR[J].Cereal Chemistry,2003,80(3):290.

    70. [70]

      ZIEGLER G R,MACMILLAN B,BALCOM B J.Moisture migration in starch molding operations as observed by magnetic resonance imaging[J].Food Research International,2003,36(4):331.

    71. [71]

      李资玲,刘成梅,万婕,等.核磁共振研究膳食纤维面包制作过程的水分迁移行为[J].食品科学,2007,28(10):127.

    72. [72]

      DEL NOBIE M A,MARTORIELLO T,MOCCI G,et al.Modeling the starch retrogradation kinetic of durum wheat bread[J].Journal of Food Engineering,2003,59(2/3):123.

    73. [73]

      FU Z Q,WANG L J,LI D,et al.The effect of partial gelatinization of corn starch on its retrogradation[J].Carbohydrate Polymers,2013,97(2):512.

    74. [74]

      TANG M C,COPELAND L.Investigation of starch retrogradation using atomic force microscopy[J].Carbohydrate Polymers,2007,70(1):1.

    75. [75]

      CHAROENREIN S,TATIRAT O,RENGSUTTHI K,et al.Effect of konjac glucomannan on syneresis,textural properties and the microstructure of frozen rice starch gels[J].Carbohydrate Polymers,2011,83(1):291.

    76. [76]

      UTRILLA-COELLO R G,BELLO-PEREZ L A,VERNON-CARTER E J,et al.Microstructure of retrograded starch:Quantification from lacunarity analysis of SEM micrographs[J].Journal of Food Engineering,2013,116(4):775.

    77. [77]

      WU Y,LIN Q,CHEN Z,et al.Fractal analysis of the retrogradation of rice starch by digital image processing[J].Journal of Food Engineering,2012,109(1):182.

    78. [78]

      WANG H W,XIAO N Y,WANF X T,et al.Effect of pregelatinized starch on the characteristics,microstructures,and quality attributes of glutinous rice flour and dumplings[J].Food Chemistry,2019,283:248.

    79. [79]

      AMBIGAIPALAN P,HOOVER R,DONNER E,et al.Retrogradation characteristics of pulse starches[J].Food Research International,2013,54(1):203.

    80. [80]

      LIU J H,WANG B,LIN L,et al.Functional,physicochemical properties and structure of cross-linked oxidized maize starch[J].Food Hydrocolloids,2014,36:45.

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王宏伟, 许可, 张艳艳, 等. 淀粉老化的影响因素及其检测技术研究进展[J]. 轻工学报, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
引用本文: 王宏伟, 许可, 张艳艳, 等. 淀粉老化的影响因素及其检测技术研究进展[J]. 轻工学报, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
WANG Hongwei, XU Ke, ZHANG Yanyan, et al. An review on the factors affecting starch retrogradation and progress in detecting techniques[J]. Journal of Light Industry, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003
Citation: WANG Hongwei, XU Ke, ZHANG Yanyan, et al. An review on the factors affecting starch retrogradation and progress in detecting techniques[J]. Journal of Light Industry, 2021, 36(1): 17-29. doi: 10.12187/2021.01.003

淀粉老化的影响因素及其检测技术研究进展

    作者简介:王宏伟(1988-),男,河南省周口市人,郑州轻工业大学讲师,博士,主要研究方向为淀粉多层次结构解析与物性修饰.
  • 1. 郑州轻工业大学 食品与生物工程学院, 河南 郑州 450001;
  • 2. 食品生产与安全河南省协同创新中心, 河南 郑州 450001;
  • 3. 河南省冷链食品质量安全控制重点实验室, 河南 郑州 450001
基金项目:  国家自然科学基金青年科学基金项目(31801578);河南省科技攻关项目(212102110083,202102110301)

摘要: 基于淀粉结构和老化机制,阐述了外源性组分对淀粉老化的影响;同时,从宏观和分子水平上对检测淀粉老化的热分析、光谱分析、显微成像等技术进行了综述.指出:淀粉的老化过程受非淀粉类碳水化合物、盐、蛋白质、脂质等外源性组分的影响,但由于淀粉类食品构成成分复杂,各组分在储存过程中均可能与淀粉分子发生相互作用,且简单的模型体系无法替代实际的食品体系,因而有必要更深入地探讨复杂模型下淀粉老化特性的变化,从根本上有效延缓或抑制淀粉的老化;另外,由于目前研究者多采用较为单一的分析技术揭示淀粉的老化机制,且常用分析技术尚存在分析指标单一、操作难度较大等局限,故在实际应用中,应根据淀粉样品的信息将多种检测技术相结合,更全面地分析淀粉老化特性的变化情况,以延缓淀粉类食品老化,延长产品货架期.

English Abstract

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