Mechanism underlying the interaction of malvidin-3-O-galactoside with protein tyrosine phosphatase-1B and α-glucosidase
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Ningxuan Gao | Yuehua Wang | Jinlong Tian | B. Xue | Bin Li | Xu Xie | Haotian Deng | B. Jin | Siyi Tang
[1] Ningxuan Gao,et al. Anthocyanins-loaded nanocomplexes comprising casein and carboxymethyl cellulose: stability, antioxidant capacity, and bioaccessibility , 2022 .
[2] Yi Chen,et al. Interactions of blueberry anthocyanins with whey protein isolate and bovine serum protein: Color stability, antioxidant activity, in vitro simulation, and protein functionality , 2021 .
[3] Xianjun Meng,et al. Cyanidin-3-O-glucoside and its phenolic metabolites ameliorate intestinal diseases via modulating intestinal mucosal immune system: potential mechanisms and therapeutic strategies , 2021, Critical reviews in food science and nutrition.
[4] Yuehua Wang,et al. Effects of chitooligosaccharide-functionalized graphene oxide on stability, simulated digestion, and antioxidant activity of blueberry anthocyanins. , 2021, Food chemistry.
[5] Hao Wang,et al. In vitro and in vivo inhibitory effect of anthocyanin-rich bilberry extract on α-glucosidase and α-amylase , 2021 .
[6] Ranran Fu,et al. Characteristics of the interaction mechanisms of procyanidin B1 and procyanidin B2 with protein tyrosine phosphatase-1B: Analysis by kinetics, spectroscopy methods and molecular docking. , 2021, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[7] N. Khaltaev,et al. Global trends in diabetes-related mortality with regard to lifestyle modifications, risk factors, and affordable management: A preliminary analysis , 2021, Chronic diseases and translational medicine.
[8] Yi Chen,et al. Effect of Blueberry Anthocyanin-Rich Extracts on Peripheral and Hippocampal Antioxidant Defensiveness: The Analysis of the Serum Fatty Acid Species and Gut Microbiota Profile. , 2021, Journal of agricultural and food chemistry.
[9] Zhengwu Wang,et al. Study on the interaction mechanism of purple potato anthocyanins with casein and whey protein , 2021 .
[10] Q. Zou,et al. sgRNACNN: identifying sgRNA on-target activity in four crops using ensembles of convolutional neural networks , 2021, Plant Molecular Biology.
[11] Lei Xu,et al. BP4RNAseq: a babysitter package for retrospective and newly generated RNA-seq data analyses using both alignment-based and alignment-free quantification method , 2020, Bioinform..
[12] R. Liu,et al. Effects of high hydrostatic pressure and thermal processing on anthocyanin content, polyphenol oxidase and β-glucosidase activities, color, and antioxidant activities of blueberry (Vaccinium Spp.) puree. , 2020, Food chemistry.
[13] Q. Zou,et al. An in silico approach to identification, categorization and prediction of nucleic acid binding proteins , 2020, bioRxiv.
[14] Ningxuan Gao,et al. Effect of whey protein isolate on the stability and antioxidant capacity of blueberry anthocyanins: A mechanistic and in vitro simulation study. , 2020, Food chemistry.
[15] Yunen Liu,et al. Malvidin-3-galactoside from blueberry suppresses the growth and metastasis potential of hepatocellular carcinoma cell Huh-7 by regulating apoptosis and metastases pathways , 2020 .
[16] Xianjun Meng,et al. Lonicera caerulea L. Polyphenols Alleviate Oxidative Stress-induced Intestinal environment Imbalance and Lipopolysaccharide-induced Liver Injury in HFD-fed Rats by Regulating the Nrf2/HO-1/NQO1 and MAPK Pathways. , 2020, Molecular nutrition & food research.
[17] Lianghua Xie,et al. Structure-based design of human pancreatic amylase inhibitors from the natural anthocyanin database for type 2 diabetes. , 2020, Food & function.
[18] Shiguo Chen,et al. Inhibition mechanism of ferulic acid against α-amylase and α-glucosidase. , 2020, Food chemistry.
[19] Qing-Feng Zhang,et al. α-Glucosidase inhibitory effect of anthocyanins from Cinnamomum camphora fruit: Inhibition kinetics and mechanistic insights through in vitro and in silico studies. , 2020, International journal of biological macromolecules.
[20] Jia Li,et al. Spirobiflavonoid stereoisomers from the endangered conifer Glyptostrobus pensilis and their protein tyrosine phosphatase 1B inhibitory activity. , 2019, Bioorganic & medicinal chemistry letters.
[21] Z. Fang,et al. Chemical compositions and α-glucosidase inhibitory effects of anthocyanidins from blueberry, blackcurrant and blue honeysuckle fruits. , 2019, Food chemistry.
[22] X. Liao,et al. Identification of cyanidin-3-arabinoside extracted from blueberry as selective PTP1B inhibitor. , 2019, Journal of agricultural and food chemistry.
[23] Xianjun Meng,et al. Protective effects of α-casein or β-casein on the stability and antioxidant capacity of blueberry anthocyanins and their interaction mechanism , 2019, LWT.
[24] B. Møller,et al. 2(5H)-Furanone sesquiterpenes from Eremophila bignoniiflora: High-resolution inhibition profiling and PTP1B inhibitory activity. , 2019, Phytochemistry.
[25] Xianjun Meng,et al. Protective effects of bovine serum albumin on blueberry anthocyanins under illumination conditions and their mechanism analysis. , 2019, Food research international.
[26] O. Kazakova,et al. Structural modifications of 2,3-indolobetulinic acid: Design and synthesis of highly potent α-glucosidase inhibitors. , 2019, Bioorganic chemistry.
[27] Xianjun Meng,et al. Blueberry polyphenols extract as a potential prebiotic with anti-obesity effects on C57BL/6 J mice by modulating the gut microbiota. , 2019, The Journal of nutritional biochemistry.
[28] Xinyao Jiao,et al. Blueberry Malvidin-3-galactoside Suppresses Hepatocellular Carcinoma by Regulating Apoptosis, Proliferation, and Metastasis Pathways In Vivo and In Vitro. , 2019, Journal of agricultural and food chemistry.
[29] Leilei Xu,et al. Anthocyanins from dietary black soybean potentiate glucose uptake in L6 rat skeletal muscle cells via up-regulating phosphorylated Akt and GLUT4 , 2019, Journal of Functional Foods.
[30] D. Gong,et al. Galangin inhibits α-glucosidase activity and formation of non-enzymatic glycation products. , 2019, Food chemistry.
[31] Jie Wei,et al. Analysis of the interaction mechanism of Anthocyanins (Aronia melanocarpa Elliot) with β-casein , 2018, Food Hydrocolloids.
[32] Chun-mei Li,et al. Understanding the shielding effects of whey protein on mulberry anthocyanins: Insights from multispectral and molecular modelling investigations. , 2018, International journal of biological macromolecules.
[33] A. Saboury,et al. Spectroscopic and docking studies on the interaction between caseins and β-carotene. , 2018, Food chemistry.
[34] D. Gong,et al. New Insights into the Inhibition Mechanism of Betulinic Acid on α-Glucosidase. , 2018, Journal of agricultural and food chemistry.
[35] Y. Sreerama,et al. Phenolic antioxidants of foxtail and little millet cultivars and their inhibitory effects on α-amylase and α-glucosidase activities. , 2018, Food chemistry.
[36] Jie Chen,et al. Effect of preheat treatment of milk proteins on their interactions with cyanidin-3-O-glucoside. , 2018, Food research international.
[37] Hongshun Yang,et al. Effect of ultrasonic pretreatment on whey protein hydrolysis by alcalase: Thermodynamic parameters, physicochemical properties and bioactivities , 2018 .
[38] K. Park,et al. Inhibition of protein tyrosine phosphatase 1B (PTP1B) and α-glucosidase by xanthones from Cratoxylum cochinchinense, and their kinetic characterization. , 2017, Bioorganic & medicinal chemistry.
[39] Lianghua Xie,et al. Pelargonidin-3-O-rutinoside as a novel α-glucosidase inhibitor for improving postprandial hyperglycemia. , 2018, Chemical communications.
[40] P. Jing,et al. Spectrofluorimetric and molecular docking studies on the interaction of cyanidin-3-O-glucoside with whey protein, β-lactoglobulin. , 2017, International journal of biological macromolecules.
[41] Dongyu Gu,et al. Characterization of active compounds from Gracilaria lemaneiformis inhibiting the protein tyrosine phosphatase 1B activity. , 2017, Food & function.
[42] Z. Xiu,et al. Dietary Flavonoids and Acarbose Synergistically Inhibit α-Glucosidase and Lower Postprandial Blood Glucose. , 2017, Journal of agricultural and food chemistry.
[43] Jie Chen,et al. Complexation of bovine β-lactoglobulin with malvidin-3-O-glucoside and its effect on the stability of grape skin anthocyanin extracts. , 2016, Food chemistry.
[44] Jie Chen,et al. Interactions of milk α- and β-casein with malvidin-3-O-glucoside and their effects on the stability of grape skin anthocyanin extracts. , 2016, Food chemistry.
[45] B. Li,et al. Profiling of anthocyanins from blueberries produced in China using HPLC-DAD-MS and exploratory analysis by principal component analysis , 2016 .
[46] Zhuo-Yang Cheng,et al. Secondary metabolites from the flower buds of Lonicera japonica and their in vitro anti-diabetic activities. , 2016, Fitoterapia.
[47] D. Gong,et al. Inhibitory kinetics and mechanism of kaempferol on α-glucosidase. , 2016, Food chemistry.
[48] L. Milella,et al. Inhibitors of α-amylase and α-glucosidase from Andromachia igniaria Humb. & Bonpl. , 2015 .
[49] D. Mcclements,et al. Enhanced stability of anthocyanin-based color in model beverage systems through whey protein isolate complexation. , 2015, Food research international.
[50] A. Combs. Recent advances in the discovery of competitive protein tyrosine phosphatase 1B inhibitors for the treatment of diabetes, obesity, and cancer. , 2010, Journal of medicinal chemistry.
[51] Gang Liu,et al. Potent, selective inhibitors of protein tyrosine phosphatase 1B. , 2003, Bioorganic & medicinal chemistry letters.