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동의어 포함
| 번호 | 참고문헌 | 국회도서관 소장유무 |
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| 1 | Korean Diabetes Association, Health Insurance Review & Assessment Service. Report of Task Force Team For Basic Statistical Study of Korean Diabetes Mellitus: Diabetes in Korea 2007. 1st ed. Goldfishery, Seoul, Korea (2008) | 미소장 |
| 2 | Oral antidiabetic agents in type 2 diabetes. ![]() |
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| 3 | Oral antidiabetic agents: current role in type 2 diabetes mellitus. ![]() |
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| 4 | Acarbose. A preliminary review of its pharmacodynamic and pharmacokinetic properties, and therapeutic potential. ![]() |
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| 5 | Thiazolidinediones in type 2 diabetes mellitus: current clinical evidence. ![]() |
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| 6 | Metabolic effects of metformin in non-insulin-dependent diabetes mellitus. ![]() |
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| 7 | Effect of clofibrate on glucose tolerance in maturity onset diabetes. ![]() |
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| 8 | Troglitazone-Induced Fulminant Hepatic Failure ![]() |
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| 9 | Han HK, Je HS, Kim GH. Effect of Cirsium japonicum powder on plasma glucose and lipid level in streptozotocin induced diabetic rats. Korean J. Food Sci. Technol. 42: 343-349 (2010) | 미소장 |
| 10 | Kun SN, Kang SJ. Effect of black ginseng (9 times steaming ginseng) on hypoglycemic action and changes in the composition of ginsenosides on the steaming process. Korean J. Food Sci. Technol. 41: 77-81 (2009) | 미소장 |
| 11 | Antidiabetic Effect of Folium Mori in GK Rats ![]() |
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| 12 | Antidiabetic effects of extracts from Psidium guajava ![]() |
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| 13 | Biotechnology: Promethean Science or Obsession? ![]() |
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| 14 | The effect of heating and fermenting on antioxidant properties of white cabbage ![]() |
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| 15 | Han CC, Wei H, Guo J. Anti-inflammatory effects of fermented and non-fermented sophora flavescens: a comparative study. BMC Complem. Altern. M. 11: 100-106 (2011) | 미소장 |
| 16 | Beneficial effects of green tea--a review. ![]() |
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| 17 | Xu J, Zhu SG, Yang FM, Cheg LC, Hu Y, Pan GX, Hu QH. The influence of selenium on the antioxidant activity of green tea. J. Sci. Food Agr. 83: 451–455 (2003) | 미소장 |
| 18 | Anti-Helicobacter pylori activity of Chinese tea: in vitro study. ![]() |
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| 19 | Anti-diabetic activity of green tea polyphenols and their role in reducing oxidative stress in experimental diabetes ![]() |
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| 20 | Zheng G, Sayama K, Okubo T, Juneja LR, Oguni I. Anti-obesity effects of three major components of green tea, catechins, caffeine and theanine in mice. In Vivo 18:55-62 (2004) | 미소장 |
| 21 | Chinese green tea lowers cholesterol level through an increase in fecal lipid excretion. ![]() |
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| 22 | Black tea polyphenols, theaflavins, prevent cellular DNA damage by inhibiting oxidative stress and suppressing cytochrome P450 1A1 in cell cultures. ![]() |
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| 23 | Comparative studies on the hypolipidemic and growth suppressive effects of oolong, black, pu-erh, and green tea leaves in rats. ![]() |
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| 24 | Anti-hyperglycemic effect of black tea ( Camellia sinensis) in rat ![]() |
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| 25 | Dietary Effects of Post-fermented Green Tea by Monascus pilosus on the Body Weight, Serum Lipid Profiles and the Activities of Hepatic Antioxidative Enzymes in Mouse Fed a High Fat Diet | 소장 |
| 26 | Bioactivities and sensory evaluation of Pu-erh teas made from three tea leaves in an improved pile fermentation process(BREWING AND FOOD TECHNOLOGY) ![]() |
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| 27 | Pu-erh tea, green tea, and black tea suppresses hyperlipidemia, hyperleptinemia and fatty acid synthase through activating AMPK in rats fed a high-fructose diet. ![]() |
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| 28 | Huang Q, Chen S, Chen H, Wang Y, Wang Y, Hochstetter D, Xu P. Studies on the bioactivity of aqueous extract of pu-erh tea and its fraction: in vitro antioxidant activity and α-glycosidase inhibitory property, and their effect on postprandial hyperglycemia in diabetic mice. Food Chem. Toxicol. 53: 75-83 (2013) | 미소장 |
| 29 | Green Tea Extract (Camellia sinensis) Fermented by Lactobacillus fermentum Attenuates Alcohol-Induced Liver Damage ![]() |
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| 30 | Miura T, Koike T, Ishida T. Antidiabetic activity of green tea (Thea sinensis L). in genetically type 2 diabetic mice. J. Health Sci. 51: 708-710 (2005) | 미소장 |
| 31 | Lee BR, Koh KO, Park PS. Anti-hyperglycemic effects of green tea extract on alloxan-induced diabetic and OLETF rats. J. Korean Soc. Food Sci. Nutr. 36: 696-702 (2007) | 미소장 |
| 32 | Green tea prevents hyperglycemia-induced retinal oxidative stress and inflammation in streptozotocin-induced diabetic rats. ![]() |
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| 33 | In vitro inhibition of α-glucosidases and glycogen phosphorylase by catechin gallates in green tea ![]() |
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| 34 | Tea enhances insulin activity. ![]() |
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| 35 | Black tea polyphenols mimic insulin/insulin-like growth factor-1 signalling to the longevity factor FOXO1a. ![]() |
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| 36 | Ma X, Tsuda S, Yang X, Gu N, Tanabe H, Oshima R, Matsuchita T, Egawa T, Dong AJ, Zhu BW, Hayashi T. Pu-erh tea hotwater extract activates Akt and induced insulin-independent glucose transport in rat skeletal muscle. J. Med. Food 16: 259-262 (2013) | 미소장 |
| 37 | Association Of Glycaemia With Macrovascular And Microvascular Complications Of Type 2 Diabetes (UKPDS 35): Prospective Observational Study ![]() |
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| 38 | Shanik MH, Xu Y, Skrha J, Dankner R, Zick Y, Roth J. Insulin resistance and hyperinsulinemia. Diabetes Care 31: S262-S268 (2008) | 미소장 |
| 39 | Srinivasan K, Ramarao P. Animal models in type 2 diabetes research: An overview. Indian J. Med. Res. 125: 451-472 (2007) | 미소장 |
| 40 | Homeostasis model assessment: insulin resistance and beta-cell function from fasting plasma glucose and insulin concentrations in man. ![]() |
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| 41 | Lipids and lipoproteins in patients with type 2 diabetes. ![]() |
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| 42 | Lipid and lipoprotein dysregulation in insulin resistant states ![]() |
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| 43 | Pathophysiology of dyslipidaemia in the metabolic syndrome. ![]() |
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| 44 | Lipoprotein abnormalities in diabetic nephropathy ![]() |
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| 45 | Incidence of Coronary Heart Disease and Lipoprotein Cholesterol Levels ![]() |
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| 46 | de Santana MB, Madarino MG, Cardoso JR, Dichi I, Dichi JB, Camargo AEI, Fabris BA, Rodrigues RJ, Fatel ECS, Nixdorf SL, Simao ANC, Cecchini R, Barbosa DS. Association between soy and green tea (Camellia sinensis) diminishes hypercholesterolemia and increases total plasma antioxidant potential in dyslipidemic subjects. Nutrition 24: 562-568 (2008) | 미소장 |
| 47 | Unno T, Tago M, Suzuki Y, Nozawa A, Sagesaka YM, Kakuda T, Egawa K, Kondo K. Effect of tea cathechins on postprandial plasma lipid responses in human subjects. Brit. J. Nutr. 27: 363-370 (2008) | 미소장 |
| 48 | Regulation of hexokinase II gene expression by glucose flux in skeletal muscle. ![]() |
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| 49 | The Effects of Hyperinsulinemia and Hyperglycemia on GLUT4 and Hexokinase II mRNA and Protein in Rat Skeletal Muscle and Adipose Tissue ![]() |
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| 50 | Effect of streptozotocin-induced diabetes and insulin treatment on the synthesis of hexokinase II in the skeletal muscle of the rat ![]() |
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| 51 | Reduced expression of hexokinase II in insulin-resistant diabetes. ![]() |
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| 52 | Impaired activity and gene expression of hexokinase II in muscle from non-insulin-dependent diabetes mellitus patients. ![]() |
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| 53 | Attenuation of FGF signalling in mouse beta-cells leads to diabetes. ![]() |
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| 54 | Matsuda Y, Saegusa H, Zong S, Noda T, Tanabe T. Mice lacking Ca(v)2.3 (alpha1E) calcium channel exhibit hyperglycemia. Biochem. Bioph. Res. Co. 289: 791-795 (2001) | 미소장 |
| 55 | Pereverzev A, Mikhna M, Vajna R, Gissel C, Henry M, Weiergraber M, Hescheler J, Smyth N, Schneider T. Disturbances in glucose-tolerance, insulin-release, and stress-induced hyperglycemia upon disruption of the Ca(v)2.3 (alpha 1E) subunit of voltage- gated Ca(2+) channels. Mol. Endocrinol. 16: 884-895 (2002) | 미소장 |
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