[1] CAROÇO R F, KIM B, SANTACOLOMA P A, et al.Analysis and model-based optimization of a pectin extraction process[J].Journal of Food Engineering, 2019, 244:159-169.
[2] ADETUNJI L R, ADEKUNLE A, ORSAT V, et al.Advances in the pectin production process using novel extraction techniques:A review[J].Food Hydrocolloids, 2017, 62:239-250.
[3] CHAN S Y, CHOO W S, YOUNG D J, et al.Pectin as a rheology modifier:Origin, structure, commercial production and rheology[J].Carbohydrate Polymers, 2017, 161:118-139.
[4] ZHU K, MAO G Z, WU D M, et al.Highly branched RG-I domain enrichment is indispensable for pectin mitigating against high-fat diet-induced obesity[J].Journal of Agricultural and Food Chemistry, 2020, 68(32):8 688-8 701.
[5] WANG G L, ZHANG Y L, ZHANG R G, et al.The protective effects of walnut green husk polysaccharide on liver injury, vascular endothelial dysfunction and disorder of gut microbiota in high fructose-induced mice[J].International Journal of Biological Macromolecules, 2020, 162:92-106.
[6] NAQASH F, MASOODI F A, RATHER S A, et al.Emerging concepts in the nutraceutical and functional properties of pectin-A Review[J].Carbohydrate Polymers, 2017, 168:227-239.
[7] ZHANG W, XU P B, ZHANG H.Pectin in cancer therapy:A review[J].Trends in Food Science & Technology, 2015, 44(2):258-271.
[8] YANG X, NISAR T, HOU Y J, et al.Pomegranate peel pectin can be used as an effective emulsifier[J].Food Hydrocolloids, 2018, 85:30-38.
[9] O'NEILL M, ALBERSHEIM P, DARVILL A. The Pectic Polysaccharides of Primary Cell Walls[M]. Amsterdam: Elsevier, 1990:415-441.
[10] CAMERON R G, KIM Y, GALANT A L, et al.Pectin homogalacturonans:Nanostructural characterization of methylesterified domains[J].Food Hydrocolloids, 2015, 47:184-190.
[11] CHRISTIAENS S, UWIBAMBE D, UYTTEBROEK M, et al.Pectin characterisation in vegetable waste streams:A starting point for waste valorisation in the food industry[J].LWT-Food Science and Technology, 2015, 61(2):275-282.
[12] XU S Y, LIU J P, HUANG X S, et al.Ultrasonic-microwave assisted extraction, characterization and biological activity of pectin from jackfruit peel[J].LWT-Food Science and Technology, 2018, 90:577-582.
[13] SABATER C, CORZO N, OLANO A, et al.Enzymatic extraction of pectin from artichoke (Cynara scolymus L.) by-products using CelluclastR 1.5L[J].Carbohydrate Polymers, 2018, 190:43-49.
[14] MORALES-CONTRERAS B E, ROSAS-FLORES W, CONTRERAS-ESQUIVEL J C, et al.Pectin from Husk Tomato (Physalis ixocarpa Brot.):Rheological behavior at different extraction conditions[J].Carbohydrate Polymers, 2018, 179:282-289.
[15] 刘新新,刘钟栋.低酯果胶的提取与制备技术研究进展[J].食品与发酵工业, 2019, 45(24):278-284.
LIU X X, LIU Z D.Research progress on extraction and manufacture technique of low methoxyl pectin[J].Food and Fermentation Industries, 2019, 45(24):278-284.
[16] EZZATI S, AYASEH A, GHANBARZADEH B, et al.Pectin from sunflower by-product:Optimization of ultrasound-assisted extraction, characterization, and functional analysis[J].International Journal of Biological Macromolecules, 2020, 165:776-786.
[17] WAN L, WANG H Y, ZHU Y, et al.Comparative study on gelling properties of low methoxyl pectin prepared by high hydrostatic pressure-assisted enzymatic, atmospheric enzymatic, and alkaline de-esterification[J].Carbohydrate Polymers, 2019, 226:115285.
[18] TALEKAR S, VIJAYRAGHAVAN R, ARORA A, et al.Greener production of low methoxyl pectin via recyclable enzymatic de-esterification using pectin methylesterase cross-linked enzyme aggregates captured from citrus peels[J].Food Hydrocolloids, 2020, 108:105786.
[19] 苏东林,李培骏,张丽萍,等.柑橘果胶高效提取及其酰胺化改性制备[J].中国食品学报, 2020, 20(10):84-95.
SU D L, LI P J, ZHANG L P, et al. High efficient extraction of Citrus pectin and its modified preparation by amidation reaction[J]. Journal of Chinese Institute of Food Science and Technology, 2020, 20(10):84-95.
[20] CAO L Q, LU W, MATA A, et al.Egg-box model-based gelation of alginate and pectin:A review[J].Carbohydrate Polymers, 2020, 242:116389.
[21] VRIESMANN L C, DE OLIVEIRA PETKOWICZ C L.Cacao pod husks as a source of low-methoxyl, highly acetylated pectins able to gel in acidic media[J].International Journal of Biological Macromolecules, 2017, 101:146-152.
[22] GUIMARÃES J T, BALTHAZAR C F, SILVA R, et al.Impact of probiotics and prebiotics on food texture[J].Current Opinion in Food Science, 2020, 33:38-44.
[23] KYOMUGASHO C, CHRISTIAENS S, VAN DE WALLE D, et al.Evaluation of cation-facilitated pectin-gel properties:Cryo-SEM visualisation and rheological properties[J].Food Hydrocolloids, 2016, 61:172-182.
[24] LÖFGREN C, GUILLOTIN S, EVENBRATT H, et al.Effects of calcium, pH, and blockiness on kinetic rheological behavior and microstructure of HM pectin gels[J].Biomacromolecules, 2005, 6(2):646-652.
[25] CELUS M, KYOMUGASHO C, SALVIA-TRUJILLO L, et al.Interactions between Citrus pectin and Zn2+ or Ca2+ and associated in vitro Zn2+ bioaccessibility as affected by degree of methylesterification and blockiness[J].Food Hydrocolloids, 2018, 79:319-330.
[26] NGOUÉMAZONG D E, TENGWEH F F, FRAEYE I, et al.Effect of de-methylesterification on network development and nature of Ca2+-pectin gels:Towards understanding structure-function relations of pectin[J].Food Hydrocolloids, 2012, 26(1):89-98.
[27] CHEN S G, ZHENG J Q, ZHANG L M, et al.Synergistic gelling mechanism of RG-I rich citrus pectic polysaccharide at different esterification degree in calcium-induced gelation[J].Food Chemistry, 2021, 350:129177.
[28] GÜNTER E A, POPEYKO O V.Calcium pectinate gel beads obtained from callus cultures pectins as promising systems for colon-targeted drug delivery[J].Carbohydrate Polymers, 2016, 147:490-499.
[29] KYOMUGASHO C, MUNYENSANGA C, CELUS M, et al.Molar mass influence on pectin-Ca2+ adsorption capacity, interaction energy and associated functionality:Gel microstructure and stiffness[J].Food Hydrocolloids, 2018, 85:331-342.
[30] GROULT S, BUDTOVA T.Thermal conductivity/structure correlations in thermal super-insulating pectin aerogels[J].Carbohydrate Polymers, 2018, 196:73-81.
[31] YULIARTI O, HOON A L S, CHONG S Y.Influence of pH, pectin and Ca2+ concentration on gelation properties of low-methoxyl pectin extracted from Cyclea barbata Miers[J].Food Structure, 2017, 11:16-23.
[32] FENG L Y, ZHOU Y, ASHAOLU T J, et al.Physicochemical and rheological characterization of pectin-rich fraction from blueberry (Vaccinium ashei) wine pomace[J].International Journal of Biological Macromolecules, 2019, 128:629-637.
[33] VENTURA I, JAMMAL J, BIANCO-PELED H.Insights into the nanostructure of low-methoxyl pectin-calcium gels[J].Carbohydrate Polymers, 2013, 97(2):650-658.
[34] STROM A, SCHUSTER E, GOH S M.Rheological characterization of acid pectin samples in the absence and presence of monovalent ions[J].Carbohydrate Polymers, 2014, 113:336-343.
[35] PAN M K, ZHOU F F, LIU Y, et al.Na+-induced gelation of a low-methoxyl pectin extracted from Premna microphylla Turcz[J].Food Hydrocolloids, 2021, 110:106153.
[36] KYOMUGASHO C, GWALA S, CHRISTIAENS S, et al.Pectin nanostructure influences pectin-cation interactions and in vitro -bioaccessibility of Ca2+, Zn2+, Fe2+ and Mg2+ -ions in model systems[J].Food Hydrocolloids, 2017, 62:299-310.
[37] PENG X Y, MU T H, ZHANG M, et al.Effects of pH and high hydrostatic pressure on the structural and rheological properties of sugar beet pectin[J].Food Hydrocolloids, 2016, 60:161-169.
[38] BALDINO N, MILETI O, LUPI F R, et al.Rheological surface properties of commercial Citrus pectins at different pH and concentration[J].LWT, 2018, 93:124-130.
[39] YANG X, NISAR T, LIANG D, et al.Low methoxyl pectin gelation under alkaline conditions and its rheological properties:Using NaOH as a pH regulator[J].Food Hydrocolloids, 2018, 79:560-571.
[40] HAN W Y, MENG Y H, HU C, et al.Mathematical model of Ca2+ concentration, pH, pectin concentration and soluble solids (sucrose) on the gelation of low methoxyl pectin[J].Food Hydrocolloids, 2017, 66:37-48.
[41] YANG X, LI A Q, LI X X, et al.An overview of classifications, properties of food polysaccharides and their links to applications in improving food textures[J].Trends in Food Science & Technology, 2020, 102:1-15.
[42] GÜNTER E A, POPEYKO O V, MARKOV P A, et al.Swelling and morphology of calcium pectinate gel beads obtained from Silene vulgaris callus modified pectins[J].Carbohydrate Polymers, 2014, 103:550-557.
[43] YULIARTI O, MARDYIAH BINTE OTHMAN R.Temperature dependence of acid and calcium-induced low-methoxyl pectin gel extracted from Cyclea barbata Miers[J].Food Hydrocolloids, 2018, 81:300-311.
[44] SURABHI A K, SENAN C, AZHAR M.Effect of temperature and calcium ion concentration on gelation and rheological properties of low methylated pectin[J].Asian Journal of Chemistry, 2018, 30(7):1 671-1 674.
[45] GIGLI J, GARNIER C, PIAZZA L.Rheological behaviour of low-methoxyl pectin gels over an extended frequency window[J].Food Hydrocolloids, 2009, 23(5):1 406-1 412.
[46] GUO C, LI X F, GONG T, et al.Gelation of Nicandra physalodes (Linn.) Gaertn.polysaccharide induced by calcium hydroxide:A novel potential pectin source[J].Food Hydrocolloids, 2021, 118:106765.
[47] ZHOU F F, PAN M K, LIU Y, et al.Effects of Na+ on the cold gelation between a low-methoxyl pectin extracted from Premna microphylla Turcz and soy protein isolate[J].Food Hydrocolloids, 2020, 104:105762.
[48] WAN L, YANG Z X, CAI R, et al.Calcium-induced-gel properties for low methoxyl pectin in the presence of different sugar alcohols[J].Food Hydrocolloids, 2021, 112.
[49] CHOI J W, SYNYTSYA A, CAPEK P, et al.Structural analysis and anti-obesity effect of a pectic polysaccharide isolated from Korean mulberry fruit Oddi (Morus alba L.)[J].Carbohydrate Polymers, 2016, 146:187-196.
[50] POPOV S V, MARKOV P A, POPOVA G Y, et al.Anti-inflammatory activity of low and high methoxylated Citrus pectins[J].Biomedicine & Preventive Nutrition, 2013, 3(1):59-63.
[51] MAXWELL E G, COLQUHOUN I J, CHAU H K, et al.Modified sugar beet pectin induces apoptosis of colon cancer cells via an interaction with the neutral sugar side-chains[J].Carbohydrate Polymers, 2016, 136:923-929.
[52] JIANG T T, GAO X J, WU C, et al.Apple-derived pectin modulates gut microbiota, improves gut barrier function, and attenuates metabolic endotoxemia in rats with diet-induced obesity[J].Nutrients, 2016, 8(3):126.
[53] GHAFFARZADEGAN T, MARUNGRUANG N, FÅK F, et al.Molecular properties of guar gum and pectin modify cecal bile acids, microbiota, and plasma lipopolysaccharide-binding protein in rats[J].PLoS One, 2016, 11(6):e0157427.
[54] ABBOUD K Y, IACOMINI M, SIMAS F F, et al.High methoxyl pectin from the soluble dietary fiber of passion fruit peel forms weak gel without the requirement of sugar addition[J].Carbohydrate Polymers, 2020, 246:116616.
[55] GHOSHAL G, NEGI P.Isolation of pectin from kinnow peels and its characterization[J].Food and Bioproducts Processing, 2020, 124:342-353.
[56] ABITBOL T, MIJLKOVIC A, MALAFRONTE L, et al.Cellulose nanocrystal/low methoxyl pectin gels produced by internal ionotropic gelation[J].Carbohydrate Polymers, 2021, 260:117345.
[57] 刘英,邱逸凡,许希贤.果胶研究和应用进展[J].现代食品, 2019(24):17-20.
LIU Y, QIU Y F, XU X X.Progress in pectin research and application[J].Modern Food, 2019(24):17-20.
[58] REICHEMBACH L H, LU'CIA DE OLIVEIRA PETKOWICZ C.Pectins from alternative sources and uses beyond sweets and jellies:An overview[J].Food Hydrocolloids, 2021, 118:106824.
[59] KHUBBER S, CHATURVEDI K, THAKUR N, et al.Low-methoxyl pectin stabilizes low-fat set yoghurt and improves their physicochemical properties, rheology, microstructure and sensory liking[J].Food Hydrocolloids, 2021, 111:106240.
[60] JIANG W X, QI J R, LIAO J S, et al.Acid/ethanol induced pectin gelling and its application in emulsion gel[J].Food Hydrocolloids, 2021, 118:106774.
[61] MUÑOZ-ALMAGRO N, MONTILLA A, VILLAMIEL M.Role of pectin in the current trends towards low-glycaemic food consumption[J].Food Research International, 2021, 140:109851.
[62] LI M Y, JIN Y X, WANG Y W, et al.Preparation of bifidobacterium breve encapsulated in low methoxyl pectin beads and its effects on yogurt quality[J].Journal of Dairy Science, 2019, 102(6):4 832-4 843.