Influence pathways of nanocrystalline cellulose on the digestibility of corn starch: Gelatinization, structural properties, and α-amylase activity perspective.
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Hu Xu | Yingnan Liu | Yaqing Xiao | Jinglei Zhang | Zhenyu Yu | Zong Hao | Changyue Deng | Mingming Zheng | Yibin Zhou | Huixia Liu
[1] Zhipeng Qiu,et al. Starch-guar gum-ferulic acid molecular interactions alter the ordered structure and ultimate retrogradation properties and in vitro digestibility of chestnut starch under extrusion treatment. , 2023, Food chemistry.
[2] F. Barba,et al. Effects of Laminaria japonica polysaccharides on gelatinization properties and long-term retrogradation of wheat starch , 2022, Food Hydrocolloids.
[3] Zhipeng Qiu,et al. Effect of starch-catechin interaction on regulation of starch digestibility during hot-extrusion 3D printing: Structural analysis and simulation study. , 2022, Food chemistry.
[4] BeiBei Ding,et al. Study on inhibition effects and mechanism of wheat starch retrogradation by polyols , 2021 .
[5] B. Duncan,et al. IDF diabetes Atlas: Global, regional and country-level diabetes prevalence estimates for 2021 and projections for 2045 , 2021, Diabetes Research and Clinical Practice.
[6] Hang Liu,et al. Effect of inulin on pasting, thermal, rheological properties and in vitro digestibility of pea starch gel. , 2021, International journal of biological macromolecules.
[7] Yuan Luo,et al. Effects of carboxymethyl chitosan on physicochemical, rheological properties and in vitro digestibility of yam starch. , 2021, International journal of biological macromolecules.
[8] Jinwang Li,et al. Effects of different hydrocolloids on gelatinization and gels structure of chestnut starch , 2021 .
[9] Yiming Zhou,et al. Effect of quercetin on the in vitro Tartary buckwheat starch digestibility. , 2021, International journal of biological macromolecules.
[10] Jiu‐liang Zhang,et al. Inhibition mechanism of diacylated anthocyanins from purple sweet potato (Ipomoea batatas L.) against α-amylase and α-glucosidase. , 2021, Food chemistry.
[11] Xiaoxi Li,et al. Basic principles in starch multi-scale structuration to mitigate digestibility: A review , 2021 .
[12] Yingnan Liu,et al. Effect and mechanism of calcium ions on the gelation properties of cellulose nanocrystals-whey protein isolate composite gels , 2021 .
[13] Huijuan Jing,et al. Three flavanols delay starch digestion by inhibiting α-amylase and binding with starch. , 2021, International journal of biological macromolecules.
[14] Lun Ma,et al. Comparative study of inhibition mechanisms of structurally different flavonoid compounds on α-glucosidase and synergistic effect with acarbose. , 2021, Food chemistry.
[15] Jianhua Xie,et al. Interaction between rice starch and Mesona chinensis Benth polysaccharide gels: Pasting and gelling properties. , 2020, Carbohydrate polymers.
[16] Donghong Liu,et al. In vitro inhibitory effects of Chinese bayberry (Myrica rubra Sieb. et Zucc.) leaves proanthocyanidins on pancreatic α-amylase and their interaction. , 2020, Bioorganic chemistry.
[17] Xiaoxi Li,et al. Improving the in vitro digestibility of rice starch by thermomechanically assisted complexation with guar gum , 2020, Food Hydrocolloids.
[18] Bo Cui,et al. Effects of konjac glucomannan on the rheological, microstructure and digestibility properties of debranched corn starch , 2020 .
[19] Yudi Liu,et al. Heat-induced whey protein isolate gels improved by cellulose nanocrystals: Gelling properties and microstructure. , 2020, Carbohydrate polymers.
[20] L. Jiang,et al. Effect of different Mesona chinensis polysaccharides on pasting, gelation, structural properties and in vitro digestibility of tapioca starch-Mesona chinensis polysaccharides gels , 2020 .
[21] Yingnan Liu,et al. Cellulose nanocrystals prepared from wheat bran: Characterization and cytotoxicity assessment. , 2019, International journal of biological macromolecules.
[22] Zhengyu Jin,et al. Effect of dietary fibers on the structure and digestibility of fried potato starch: A comparison of pullulan and pectin. , 2019, Carbohydrate polymers.
[23] Md Nazmus Saqib,et al. Inhibition of α-amylase and amyloglucosidase by nanocrystalline cellulose and spectroscopic analysis of their binding interaction mechanism , 2019, Food Hydrocolloids.
[24] Shiguo Chen,et al. Inhibitory mechanism of novel allosteric inhibitor, Chinese bayberry (Myrica rubra Sieb. et Zucc.) leaves proanthocyanidins against α-glucosidase , 2019, Journal of Functional Foods.
[25] Geng Zhong,et al. Effect of soybean soluble polysaccharide on the pasting, gels, and rheological properties of kudzu and lotus starches , 2019, Food Hydrocolloids.
[26] J. Kenny,et al. Valorization and extraction of cellulose nanocrystals from North African grass: Ampelodesmos mauritanicus (Diss). , 2019, Carbohydrate polymers.
[27] Y. Ogawa,et al. The microstructure of starchy food modulates its digestibility , 2018, Critical reviews in food science and nutrition.
[28] Taotao Dai,et al. Investigation the interaction between procyanidin dimer and α-amylase: Spectroscopic analyses and molecular docking simulation. , 2018, International journal of biological macromolecules.
[29] L. Matia-Merino,et al. Molecular interactions in composite wheat starch-Mesona chinensis polysaccharide gels: Rheological, textural, microstructural and retrogradation properties , 2018, Food Hydrocolloids.
[30] J. Boye,et al. Research advances on structural characterization of resistant starch and its structure-physiological function relationship: A review , 2018, Critical reviews in food science and nutrition.
[31] Chengzhen Liu,et al. Interaction of cellulose nanocrystals and amylase: Its influence on enzyme activity and resistant starch content. , 2018, Food chemistry.
[32] Hongwei Wang,et al. Insights into the multi-scale structure and digestibility of heat-moisture treated rice starch. , 2018, Food chemistry.
[33] Xiao‐Na Guo,et al. The enhanced inhibition of water extract of black tea under baking treatment on α-amylase and α-glucosidase. , 2018, International journal of biological macromolecules.
[34] Subair Naduparambath,et al. Isolation and characterisation of cellulose nanocrystals from sago seed shells. , 2018, Carbohydrate polymers.
[35] H. Joyner,et al. Rheological behavior and antioxidant activity of a highly acidic gum from Althaea officinalis flower , 2017 .
[36] M. Gidley,et al. Mechanisms of starch digestion by α-amylase—Structural basis for kinetic properties , 2017, Critical reviews in food science and nutrition.
[37] Y. S. Negi,et al. Studies on cellulose nanocrystals isolated from groundnut shells. , 2017, Carbohydrate polymers.
[38] D. Lourdin,et al. Shape-memory effect in amorphous potato starch: The influence of local orders and paracrystallinity. , 2016, Carbohydrate polymers.
[39] Jinglin Yu,et al. Molecular order and functional properties of starches from three waxy wheat varieties grown in China. , 2015, Food chemistry.
[40] H. A. Silvério,et al. Cellulose nanocrystals from pineapple leaf, a new approach for the reuse of this agro-waste , 2013 .
[41] Hyun-Seok Kim,et al. Effects of hydrocolloids on the pasting and paste properties of commercial pea starch , 2012 .
[42] Tian Lu,et al. Multiwfn: A multifunctional wavefunction analyzer , 2012, J. Comput. Chem..
[43] J. Bemiller,et al. Pasting, paste, and gel properties of starch–hydrocolloid combinations , 2011 .
[44] Arthur J. Olson,et al. AutoDock Vina: Improving the speed and accuracy of docking with a new scoring function, efficient optimization, and multithreading , 2009, J. Comput. Chem..
[45] F. Saura-calixto,et al. A starch hydrolysis procedure to estimate glycemic index , 1997 .
[46] D. D. Wit,et al. Short-range structure in (partially) crystalline potato starch determined with attenuated total reflectance Fourier-transform IR spectroscopy , 1995 .
[47] R. Furneaux,et al. Observation by solid-state 3C CP MAS NMR spectroscopy of the transformations of wheat starch associated with the making and staling of bread , 1992 .
[48] H. Englyst,et al. Classification and measurement of nutritionally important starch fractions. , 1992, European journal of clinical nutrition.
[49] Michael J. Gidley,et al. 13C CP/MAS NMR studies of amylose inclusion complexes, cyclodextrins, and the amorphous phase of starch granules: Relationships between glycosidic linkage conformation and solid-state 13C chemical shifts , 1988 .
[50] P. Ross,et al. Thermodynamics of protein association reactions: forces contributing to stability. , 1981, Biochemistry.
[51] C. Tan,et al. Effect of Rosa Roxburghii juice on starch digestibility: a focus on the binding of polyphenols to amylose and porcine pancreatic α-amylase by molecular modeling , 2021, Food Hydrocolloids.
[52] Wuyang Huang,et al. Green preparation of holocellulose nanocrystals from burdock and their inhibitory effects against α-Amylase and α-Glucosidase , 2021, Food & Function.