YANG Yiwen, LI Dajing, BAO Yihong, et al. Effect of Ultrasonic Treatment on Vitis vinifera L. Cell Wall Pectin Components[J]. Science and Technology of Food Industry, 2023, 44(22): 92−101. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2023020249.
Citation: YANG Yiwen, LI Dajing, BAO Yihong, et al. Effect of Ultrasonic Treatment on Vitis vinifera L. Cell Wall Pectin Components[J]. Science and Technology of Food Industry, 2023, 44(22): 92−101. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2023020249.

Effect of Ultrasonic Treatment on Vitis vinifera L. Cell Wall Pectin Components

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  • Received Date: February 22, 2023
  • Available Online: September 16, 2023
  • In order to clarify the content and structural changes of different pectin fractions in grape cell walls under ultrasonic treatment, the grapes were treated with different ultrasonic time and ultrasonic power in this study, and the content of pectin fractions, composition of monosaccharides and structural changes of grape cell walls were analyzed by means of carbazole sulfuric acid method, PMP pre-column derivatization, high-performance liquid gel chromatography , scanning electron microscopy, Fourier transform infrared spectroscopy and circular dichroism. Results showed that the highest and the lowest contents in fresh grape cell walls were alkali-soluble pectin (NSP) and chelate pectin (CSP), respectively, and they were 27.41 mg/g AIR and 8.25 mg/g AIR. The total pectin decreased after ultrasonic treatments, in which the water-soluble pectin (WSP) increased and the CSP and NSP decreased. A total of six monosaccharides were detected in three pectins, and the monosaccharides of different pectin were not the same. The galactose and arabinose were high in WSP, the glucuronic acid was the most abundant of CSP and the rhamnose were the highest in NSP. After ultrasonic treatment, the contents of monosaccharides decreased, while the composition did not change, and the main chain structure of pectin was no change, but the linear structure and the degree of branch chain were changed. With the increase of ultrasonic times and powers, the molecular weight of different pectins declined gradually. And in the microstructure showed a more loose morphology. In addition, ultrasonic treatment had an effect on the structure and chain conformation of CSP and NSP, which made their maximum response values shift, and the effect of ultrasonic power was more significant. In conclusion, ultrasonic treatment could reduce the pectin and monosaccharide contents in grape cell walls, and affect the molecular linear structure and molecular chain conformation of pectin. These results can provide theoretical basis for the quality change of grape products under ultrasonic treatment.
  • [1]
    ARNOUS A, MEYER A S. Comparison of methods for compositional characterization of grape ( Vitis vinifera L.) and apple ( Malus domestica) skins[J]. Food and Bioproducts Processing,2008,86(2):79−86. doi: 10.1016/j.fbp.2008.03.004
    [2]
    RAMCHANDANI A G, CHETTIYAR R S, PAKHALE S S. Evaluation of antioxidant and anti-initiating activities of crude polyphenolic extracts from seedless and seeded Indian grapes[J]. Food Chemistry,2010,119(1):298−305. doi: 10.1016/j.foodchem.2009.06.032
    [3]
    王凤昭, 吕健, 毕金峰, 等. 去皮方式对黄桃渗透脱水组合干燥特性及理化品质的影响[J]. 中国食品学报,2021,21(9):121−129 doi: 10.16429/j.1009-7848.2021.09.013

    WANG F Z, LÜ J, BI J F, et al. Effect of peeling methods on drying characteristics and physico-chemical properties of yellow peach prepared by combined osmotic dehydration and drying[J]. Journal of Chinese Institute of Food Science and Technology,2021,21(9):121−129. doi: 10.16429/j.1009-7848.2021.09.013
    [4]
    LIU W C, ZHANG M, MUJUMDAR A S, et al. Effects of chitosan coating on freeze-drying of blueberry enhanced by ultrasound pre-treatment in sodium bicarbonate medium[J]. International Journal of Biological Macromolecules,2021,181:631−643. doi: 10.1016/j.ijbiomac.2021.03.172
    [5]
    MCCANN M C, ROBERTS K. Architecture of the primary cell wall[J]. The Cytoskeletal Basis of Plant Growth & Form,1991,194:109−129.
    [6]
    SILA D N, VAN B S, DUVETTER T, et al. Pectins in processed fruits and vegetables:Part II—structure-function relationships[J]. Comprehensive Reviews in Food Science and Food Safety,2009,8(2):86−104. doi: 10.1111/j.1541-4337.2009.00071.x
    [7]
    XIAO M, YI J Y, BI J F, et al.Modification of cell wall polysaccharides during drying process affects texture properties of apple chips[J]. Journal of Food Quality,2018,2018:1−11.
    [8]
    BUERGY A, ROLLAND-SABATÉ A, LECA A, et al. Pectin degradation accounts for apple tissue fragmentation during thermomechanical-mediated puree production[J]. Food Hydrocolloids,2021,120:106885. doi: 10.1016/j.foodhyd.2021.106885
    [9]
    DIVYANI P, PARMJIT S P, HARISH K C. Ultrasound-assisted extraction of pectin from Citrus limetta peels:Optimization, characterization, and its comparison with commercial pectin[J]. Food Bioscience,2022,51:102231.
    [10]
    ZHANG L, YE X, DING T, et al. Ultrasound effects on the degradation kinetics, structure and rheological properties of apple pectin[J]. Ultrasonics Sonochemistry,2013,20(1):222−231. doi: 10.1016/j.ultsonch.2012.07.021
    [11]
    HUANG L L, ZHANG M, WANG L P, et al. Influence of combination drying methods on composition, texture, aroma and microstructure of apple slices[J]. LWT-Food Science and Technology,2012,47(1):183−188. doi: 10.1016/j.lwt.2011.12.009
    [12]
    YU Q T, LI X, HU J X, et al. The effect of three pectin fractions variation on the browning of different dried apple products[J]. Food Hydrocolloids,2023,134:108052. doi: 10.1016/j.foodhyd.2022.108052
    [13]
    张钟元, 聂梅梅, 肖亚冬, 等. 真空微波干燥过程中南瓜果胶性质变化与质构的关系[J]. 现代食品科技,2021,37(1):134−141 doi: 10.13982/j.mfst.1673-9078.2021.01.0730

    ZHANG Z Y, NIE M M, XIAO Y D, et al. Relationship between pectin properties and texture of pumpkin during vacuum microwave drying[J]. Modern Food Science and Technology,2021,37(1):134−141. doi: 10.13982/j.mfst.1673-9078.2021.01.0730
    [14]
    CARRILLO C, BUVE C, PANOZZO A, et al. Role of structural barriers in the in vitro bioaccessibility of anthocyanins in comparison with carotenoids[J]. Food chemistry,2017,227:271−279. doi: 10.1016/j.foodchem.2017.01.062
    [15]
    MCFEETER R F, ARMSTRONG S A. Measurement of pectin methylation in plant cell walls[J]. Analytical Biochemistry,1984,139(1):212−217. doi: 10.1016/0003-2697(84)90407-X
    [16]
    WILLEMSEN K L D D, PANOZZO A, MOELANTS K, et al. Physico-chemical and viscoelastic properties of high pressure homogenized lemon peel fiber fraction suspensions obtained after sequential pectin extraction[J]. Food Hydrocolloids,2017,72:358−371. doi: 10.1016/j.foodhyd.2017.06.020
    [17]
    RICHARDSON S J, BAIANU I C, STEINBERG M P. Relation between oxygen‐17 NMR and rheological characteristics of wheat flour suspensions[J]. Journal of Food Science,1985,50(4):1148−1151. doi: 10.1111/j.1365-2621.1985.tb13032.x
    [18]
    武忠伟, 张明霞, 陆隽雯, 等. 超滤分离蝙蝠蛾拟青霉胞外多糖工艺优化[J]. 中国食品学报,2015(12):115−121 doi: 10.16429/j.1009-7848.2015.12.016

    WU Z W, ZHANG M X, LU J W, et al. Process optimization of exopolysaccharides from the fermentation broth of Paecilomyces hepiali by ultrafiltration[J]. Journal of Chinese Institute of Food Science and Technology,2015(12):115−121. doi: 10.16429/j.1009-7848.2015.12.016
    [19]
    WANG M C, JIANG C X, MA L P, et al. Preparation, preliminary characterization and immunostimulatory activity of polysaccharide fractions from the peduncles of Hovenia dulcis[J]. Food Chemistry,2013,138(1):41−47. doi: 10.1016/j.foodchem.2012.09.098
    [20]
    LI J W, YANG X R, LI X, et al. Okra polysaccharides/gelatin complex coacervate as pH-responsive and intestine-targeting delivery protects isoquercitin bioactivity[J]. International Journal of Biological Macromolecules,2020,159:487−496. doi: 10.1016/j.ijbiomac.2020.05.067
    [21]
    郭怡廷. 胡萝卜片声-热协同杀青及其作用机制研究[D]. 镇江:江苏大学, 2021

    GUO Y T. Study of thermosonication blanching treatment on carrot slices and its potential mechanisms[D]. Zhenjiang:Jiangsu University, 2021.
    [22]
    仇雯漪. 超声作用过程中超声强度对果胶溶液构象的变化、机理及对功能特性的影响[D]. 镇江:江苏大学, 2019

    QIU W Y. effect of ultrasound intensity on the changes in solution conformations, mechanism and functional properties of pectin during ultrasonic processing[D]. Zhenjiang:Jiangsu University, 2019.
    [23]
    梁泳伦. 蒸汽爆破联合超声提取西番莲果皮果胶及其性能研究[D]. 海口:海南大学, 2020

    LIANG Y L. Pectin extraction from passion fruit peel by combining steam explosion with ultrasonic treatment and its properties characterization[D]. Haikou:Hainan University, 2020.
    [24]
    SENGKHAMPARN N, BAKX E J, VERHOEF R, et al. Okra pectin contains an unusual substitution of its rhamnosyl residues with acetyl and alpha-linked galactosyl groups[J]. Carbohydrate Research,2009,344(14):1842−1851. doi: 10.1016/j.carres.2008.11.022
    [25]
    KONG L S, YU L, FENG T, et al. Physicochemical characterization of the polysaccharide from Bletilla striata:Effect of drying method[J]. Carbohydrate Polymers,2015,125:1−8. doi: 10.1016/j.carbpol.2015.02.042
    [26]
    张婷. 山楂果胶改性、结构表征及抗氧化和益生活性研究[D]. 济南:山东农业大学, 2022

    ZHANG T. Modification, structural characterization and antioxidant and probiotic activities of hawthorn pectin[D]. Jinan:Shandong Agriculture University, 2022.
    [27]
    XU X, ZHANG L, YAGOUB E G, et al. Effects of ultrasound, freeze-thaw pretreatments and drying methods on structure and functional properties of pectin during the processing of okra[J]. Food Hydrocolloids,2021,120:106965. doi: 10.1016/j.foodhyd.2021.106965
    [28]
    MA X B, ZHANG L F, WANG W J, et al. Synergistic effect and mechanisms of combining ultrasound and pectinase on pectin hydrolysis[J]. Food and Bioprocess Technology,2016,9(7):1249−1257. doi: 10.1007/s11947-016-1689-y
    [29]
    WANG J, MUJUMDAR A S, DENG L Z, et al. High-humidity hot air impingement blanching alters texture, cell-wall polysaccharides, water status and distribution of seedless grape[J]. Carbohydrate Polymers,2018,194:9−17. doi: 10.1016/j.carbpol.2018.04.023
    [30]
    ZHANG L F, YE X Q, XUE S J, et al. Effect of high-intensity ultrasound on the physicochemical properties and nanostructure of citrus pectin[J]. Journal of the Science of Food and Agriculture,2013,93(8):2028−2036. doi: 10.1002/jsfa.6011
    [31]
    BAGHERIAN H, ASHTIANI F Z, FOULADITAJAR A, et al. Comparisons between conventional, microwave-and ultrasound-assisted methods for extraction of pectin from grapefruit[J]. Chemical Engineering and Processing Process Intensification,2011,50(11−12):1237−1243. doi: 10.1016/j.cep.2011.08.002
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