采用不同浓度咖啡碱与儿茶素组合粉末饲料喂养小鼠12周,通过称量小鼠体重、脏器及腹腔脂肪(IPAT)等器官重量,测定血清中的生化指标和肝脏中脂类含量的方法,研究不同浓度咖啡碱与儿茶素组合对小鼠体重、脂类代谢的影响。结果表明,所有实验组的小鼠体重增加与对照组相比有下降趋势,其中Ⅳ组(0.06%咖啡碱+0.6%儿茶素)从第4周开始小鼠体重增加显著减少。咖啡碱与儿茶素组合处理的IPAT重量与对照组相比均明显减少。Ⅰ组(0.03%咖啡碱+0.3%儿茶素)、Ⅱ组(0.03%咖啡碱+0.6%儿茶素)可显著降低血清中游离脂肪酸(NEFA)浓度;Ⅲ组(0.06%咖啡碱+0.3%儿茶素)、Ⅳ组(0.06%咖啡碱+0.6%儿茶素)与对照组相比血清总胆固醇(TC)、甘油三酯(TG)与瘦素浓度明显降低;咖啡碱与儿茶素组合能降低肝脏中TC或TG浓度。以上结果表明,绿茶成分咖啡碱与儿茶素组合通过降低血液与肝脏中的脂类含量,可能引起体内脂肪沉积减少,抑制体重增加。
[1] Yuko I, Takafumi I, Yasuo M, et al. Effect of tea catechins on body fat accumulation in rat fed a normal diet[J]. Biomed Res, 2008, 29(1): 27-32.
[2] Nagao T, Komine Y, Soga S, et al. Ingestion of a tea rich in catechins lesds to a reduction in body fat and malondialdehyde-modified LDL in men[J]. Am J Clin Nutr, 2005, 81(1): 122-129.
[3] Murase T, Nagasewa A, Suzuki J, et al. Beneficial effects of tea catechins on diet induced obesity: stimulation of lipid catabolism in the liver[J]. Internationl Journal of Obesity, 2002, 26(11): 1459-1464.
[4] 傅冬和, 刘仲华, 黄建安. 茶叶降脂减肥作用研究进展[J]. 中国茶叶, 2004, 26(2): 8-10.
[5] 刘海军, 李志洲. 茶叶中有效成分应用及其提取工艺研究进展[J]. 食品研究与开发, 2007(3): 173-177.
[6] 杨巍. 咖啡碱的药理作用与开发利用前景[J]. 茶叶科学技术, 2006(4): 9-11.
[7] Zheng G, Sayama K, Okubo T, et al. Anti-obesity effects of three majior components of green tea, Catechins, Caffeine and Theanine, in Mice[J]. In Vivo, 2004, 18(1): 55-62.
[8] Zheng G, Bamba K, OkuboT, et al. Effect of theanine, γ-glutamylethylamide, on body weight and fat accumulation in mice[J]. Anim sci J, 2005, 76(2): 153-157.
[9] Sayama K, Lin S, Zheng G, et al. Effect of green tea and its ingredient on growth, food utilization and lipids metabolism in mice[J]. In Vivo, 2000, 14(4): 481-484.
[10] Folch J, Lee M, Sloane-Stanley GH.A simple method for the isolation and purification of total lipids from animal tissues[J]. J Biol Chem, 1957, 226(1): 479-509.
[11] Zak B.Simple rapid microtechnic for serum total cholesterol[J]. Am J Clin Pathol, 1957, 27(5): 583-588.
[12] Fletcher MJ.A colorimetric methods for estimating serum triglyceride[J]. Clin Chem Acta, 1968, 22(3): 393-397.
[13] Bartlett GR.Colorimetric assay methods for free and phosphorylated glyceric acids[J]. J Biol Chem, 1958, 234(3): 466-469.
[14] Dulloo AG, Geissler CA, Horton T, et al. Normal caffeine consumption: influence on thermogenesis and daily energy expenditure in lean and postobese human volunteers[J]. Am J Clin Nutr, 1989(49): 44-50.
[15] Yoshioka K, Yoshida T, Kamanaru K, et al. Caffeine activates brown adipose tissue thermogenesis and metabolic rate in mice[J]. J Nutr Sci Vitaminol, 1990, 36(2): 173-178.
[16] Lee MS, Kim CT, Kim Y.Green tea(-)-epigallocatechin-3-gallate reduces body weight with regulation of multiple genes expression in adipose tissue of diet-induced obese mice[J]. Ann Nutr Metab. 2009, 54(2): 151-157.
[17] Tomonori U, Chisa O, Yuki M, et al. Dietary tea catechins increase fecal energy in rats[J]. J Nutr Sci Vitaminol, 2009, 55(5): 447-451.
[18] 龚金炎, 焦梅, 吴晓琴, 等. 茶叶减肥作用的研究进展[J]. 茶叶科学, 2007, 27(3): 179-184
[19] Yang TT, Koo MW.Hypocholestemlemic effects of Chinese tea[J]. Pharmacol Res, 1997, 35(6): 505-512.
[20] 宋小鸽, 唐照亮, 侯正明, 等. 儿茶素对大鼠高脂血症的预防作用[J]. 中医研究, 1998, 11(1): 19-20.
[21] Ikeda I, Hamamoto R, Uzu K, et a1. Dietary gallate esters of tea catechins reduce deposition of visceral fat, hepati triacylglycerol, and activities of hepatic enzymes related to fatty acid synthesis in rats[J]. Biosci Biotechnol Biochem, 2005, 69(5): 1049-1053.
[22] Nakai M, Fukui Y, Asami S, et al. Inhibitory effects of Oolong tea polyphenols on pancreatic lipase in vitro[J]. J Agric Food Chem, 2005, 53(11): 4593-4598.
[23] Ikeda I, Tsuda K, Suzuki Y, et al. Tea catechins with a galloyl moiety suppress postprandial hypertriacylglycerolemia by delaying lymphatic transport of dietary fat in rats[J]. J Nutr, 2005, 135(2): 155-159.
[24] Halaas JL, Gajiwala KS, Maffei M, et al. Weight-reducing effects of the plasma protein encoded by the obese gene[J]. Science, 1995, 269(5223): 543-646.
[25] 李宏睿, 孙文夏. 瘦素功能研究进展[J]. 中国动脉硬化杂志, 2004(12): 108-112.
[26] 陈伟强, 刘细辛, 许志勤. 瘦素对高脂血症小鼠血胆固醇含量的影响[J]. 中国应用生理学杂志, 2003, 19(2): 206-207.
[27] Janeckova R.The role of leptin in human physiology and pathophysiology[J]. Physiol Res, 2001, 50(5): 443-459.
[28] Considine RV, Sinba MK, Heiman ML, et al. Serum immunoreactive-leptin concentrations in normal-weight and obese humans[J]. N Engl J Med, 1996, 334(5): 292-295.
[29] Maffei M, Halaas J, RavussionE, et al. Leptin levels in human and rodent: measurement of plasma leptin and ob RNA in obese and weight-reduced subjects[J]. Nature Med, 1995, 1(11): 1155-1161.
[30] 宋静, 贾伟平, 陆俊茜. 正常糖调节人群中基础胰岛素分泌与游离脂肪酸浓度的关系[J]. 上海医学, 2008, 31(4): 245.
[31] 徐淑静, 徐明彤, 傅祖植. 肥胖基因和瘦素[J]. 中华内分泌代谢, 1999(2): 50-52.
[32] Chen NG, Swick AG, Romsos DR.Leptin constrains acetylcholine-induced insulin secretion from pancreatic islets of ob/ob mice[J]. J Clin Invest, 1997, 100(5): 1174-1179.