Metabolic Fate and Expectation of Health Benefits of [U-14C]-Sucrose Inhibited from Digestion Using Morus alba Leaf Extract.
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[1] Kenichi Tanabe,et al. Effects of 1,5-anhydroglucitol on postprandial blood glucose and insulin levels and hydrogen excretion in rats and healthy humans , 2017, British Journal of Nutrition.
[2] T. Oku,et al. fructooligosaccharide metabolism through gut microbiota and prebiotic effect , 2017 .
[3] Kenichi Tanabe,et al. Metabolism and bioavailability of newly developed dietary fiber materials, resistant glucan and hydrogenated resistant glucan, in rats and humans , 2016, Nutrition & Metabolism.
[4] Jing Li,et al. Acarbose treatment affects the serum levels of inflammatory cytokines and the gut content of bifidobacteria in Chinese patients with type 2 diabetes mellitus , 2015, Journal of diabetes.
[5] T. Oku,et al. Evaluation of the relative available energy of several dietary fiber preparations using breath hydrogen evolution in healthy humans. , 2014, Journal of nutritional science and vitaminology.
[6] H. Rex Gaskins,et al. Contributions of the microbial hydrogen economy to colonic homeostasis , 2012, Nature Reviews Gastroenterology &Hepatology.
[7] T. Oku,et al. Utilization of orally administered D-[14C]mannitol via fermentation by intestinal microbes in rats. , 2010, Journal of nutritional science and vitaminology.
[8] T. Oku,et al. Suppressive response of confections containing the extractive from leaves of Morus Alba on postprandial blood glucose and insulin in healthy human subjects , 2009, Nutrition & metabolism.
[9] Y. Kojima,et al. Food-grade mulberry powder enriched with 1-deoxynojirimycin suppresses the elevation of postprandial blood glucose in humans. , 2007, Journal of agricultural and food chemistry.
[10] K. Ingkaninan,et al. Quantitative determination of 1-deoxynojirimycin in mulberry leaves using liquid chromatography-tandem mass spectrometry. , 2006, Journal of pharmaceutical and biomedical analysis.
[11] T. Oku,et al. Inhibitory effects of extractives from leaves of Morus alba on human and rat small intestinal disaccharidase activity , 2006, British Journal of Nutrition.
[12] T. Oku,et al. Evaluation of available energy of several dietary fiber materials based on the fermentability from breath hydrogen excretion in healthy human subjects , 2005 .
[13] S. Mizusaki,et al. Inhibitory effects of mulberry leaf extract on postprandial hyperglycemia in normal rats. , 2004, Journal of nutritional science and vitaminology.
[14] T. Oku,et al. Comparison of digestibility and breath hydrogen gas excretion of fructo-oligosaccharide, galactosyl-sucrose, and isomalto-oligosaccharide in healthy human subjects , 2003, European Journal of Clinical Nutrition.
[15] Shuji Satoh,et al. [Ninety-day dietary toxicity study of mulberry leaf extract in rats]. , 2003, Shokuhin eiseigaku zasshi. Journal of the Food Hygienic Society of Japan.
[16] M. Drent,et al. Dose-dependent efficacy of miglitol, an alpha-glucosidase inhibitor, in type 2 diabetic patients on diet alone: results of a 24-week double-blind placebo-controlled study. , 2002, Diabetes, nutrition & metabolism.
[17] T. Oku,et al. Digestion, absorption, fermentation, and metabolism of functional sugar substitutes and their available energy , 2002 .
[18] M. Kieny,et al. The alpha-glucosidase inhibitor 1-deoxynojirimycin blocks human immunodeficiency virus envelope glycoprotein-mediated membrane fusion at the CXCR4 binding step. , 2002, Molecular pharmacology.
[19] M. Huijberts,et al. Miglitol, a new alpha-glucosidase inhibitor. , 1999, Expert opinion on pharmacotherapy.
[20] Y. Seino,et al. Effect of acarbose (alpha-glucosidase inhibitor) on disaccharase activity in small intestine in KK-Ay and ddY mice. , 1998, Journal of nutritional science and vitaminology.
[21] T. Kondo,et al. Carbohydrate malabsorption following acarbose administration , 1998, Diabetic medicine : a journal of the British Diabetic Association.
[22] J. Vasselli,et al. Positive Effects of Acarbose in the Diabetic Rat Are Not Altered by Feeding Schedule , 1998, Physiology & Behavior.
[23] J. Lupton,et al. Effects of acarbose on fecal nutrients, colonic pH, and short-chain fatty acids and rectal proliferative indices. , 1996, Metabolism: clinical and experimental.
[24] K. Matsui,et al. N-containing sugars from Morus alba and their glycosidase inhibitory activities. , 1994, Carbohydrate research.
[25] P. G. Reeves,et al. AIN-93 purified diets for laboratory rodents: final report of the American Institute of Nutrition ad hoc writing committee on the reformulation of the AIN-76A rodent diet. , 1993, The Journal of nutrition.
[26] G. Macfarlane,et al. The control and consequences of bacterial fermentation in the human colon. , 1991, The Journal of applied bacteriology.
[27] T. Oku,et al. Utilization and excretion of a new sweetener, fructooligosaccharide (Neosugar), in rats. , 1989, The Journal of nutrition.
[28] Y. Konishi,et al. FORMATION OF GLYCOGENOSOMES IN RAT LIVER INDUCED BY INJECTION OF ACARBOSE, AN α-GLUCOSIDASE INHIBITOR , 1989 .
[29] M Elia,et al. Estimation of energy expenditure, net carbohydrate utilization, and net fat oxidation and synthesis by indirect calorimetry: evaluation of errors with special reference to the detailed composition of fuels. , 1988, The American journal of clinical nutrition.
[30] O. Koldovský,et al. Inhibitory mechanism of acarbose and 1-deoxynojirimycin derivatives on carbohydrases in rat small intestine. , 1987, Drugs under experimental and clinical research.
[31] T. Oku,et al. Nondigestibility of a new sweetener, "Neosugar," in the rat. , 1984, The Journal of nutrition.
[32] N. Mcneil. The contribution of the large intestine to energy supplies in man. , 1984, The American journal of clinical nutrition.
[33] T. Oku,et al. Binding proteins for 1,25-dihydroxycholecalciferol and 25-hydroxycholecalciferol. , 1974, Journal of nutritional science and vitaminology.
[34] P. Trinder,et al. Determination of blood glucose using an oxidase-peroxidase system with a non-carcinogenic chromogen , 1969, Journal of clinical pathology.