期刊信息

  • 刊名: 河北师范大学学报(自然科学版)Journal of Hebei Normal University (Natural Science)
  • 主办: 河北师范大学
  • ISSN: 1000-5854
  • CN: 13-1061/N
  • 中国科技核心期刊
  • 中国期刊方阵入选期刊
  • 中国高校优秀科技期刊
  • 华北优秀期刊
  • 河北省优秀科技期刊

一种含精氨酸和抗氧化成分的胶囊对 糖尿病小鼠糖脂代谢改善作用的研究

  • (河北师范大学 生命科学学院,河北 石家庄050024)
  • DOI: 10.13763/j.cnki.jhebnu.nse.202204001

One Kind of Capsule Containing Arginine and Antioxidants Ameliorated the Disorders of Glucose and Lipid Metabolism in Diabetic Mice

摘要/Abstract

摘要:

用含有精氨酸和多种抗氧化剂成分的纳欧胶囊溶液对小鼠进行灌胃,灌胃不同剂量的胶囊1个月后制备糖尿病小鼠模型.结果表明,纳欧胶囊能显著降低小鼠空腹血糖、糖耐量、总胆固醇、血清铁水平;下丘脑转铁蛋白受体1和铁蛋白表达无显著变化,肝脏转铁蛋白受体1表达呈下降趋势;糖尿病小鼠出现了胰岛素抵抗,纳欧胶囊对胰岛素抵抗指数无明显影响.纳欧胶囊对糖尿病小鼠具有辅助降血糖、降血脂及降低血清铁的作用,这可对临床上预防和治疗高血糖疾病提供动物实验数据和理论支持.

Abstract:

In this study,mice are intragastrically administrated with a “NO capsule” solution containing arginine and multiple antioxidants with different doses for one month,and diabetes mouse models are subsequently prepared.Results show that “NO capsule” significantly reduce the levels of fasting bloodglucose,glucose tolerance,total cholesterol,and serum iron in diabetic mice.No significant changes are observed for transferrin receptor 1 and ferritin expression in hypothalamus,but transferrin receptor 1 in liver shows a declined trend.Data also show that diabetic mice develop insulin resistance,and “NO capsule” has no obvious effect on insulin resistance index (IRI).The results suggest that “NO capsule” can attenuate the high level of blood glucose,lipid and serum iron in diabetic mice,which provides animal experimental data and theoretical basis for prevention and treatment of hyperglycemia in clinical.

参考文献 22

  • [1] ZHOU X, SHRESTHA S S, SHAO H, et al. Factors Contributing to the Rising National Cost of Glucose-lowering Medicines for Diabetes During 2005—2007 and 2015—2017 [J]. Diabetes Care, 2020, 43(10): 2396-2402. doi: 10.2337/dc19-2273
  • [2] SAEEDI P, PETERSOHN I, SALPEA P, et al. Global and Regional Diabetes Prevalence Estimates for 2019 and Projections for 2030 and 2045: Results from the International Diabetes Federation Diabetes Atlas [J]. Diabetes Research and Clinical Practice, 2019, 157: 107843. doi: 10.1016/j.diabres.2019.107843
  • [3] SINCLAIR A, SAEEDI P, KAUNDAL A, et al. Diabetes and Global Ageing Among 65~99-year-old Adults: Findings from the International Diabetes Federation Diabetes Atlas [J]. Diabetes Research and Clinical Practice, 2020, 162: 108078. doi: 10.1016/j.diabres.2020.108078
  • [4] CHO N H, SHAW J E, KARURANGA S, et al. IDF Diabetes Atlas: Global Estimates of Diabetes Prevalence for 2017 and Projections for 2045 [J]. Diabetes Research and Clinical Practice, 2018, 138: 271-281. doi: 10.1016 /j.diabres.2018.02.023
  • [5] 田宏扬,谷成英.2型糖尿病诊疗进展——全科医师需知 [J]. 上海医药,2020, 41(12): 9-17,62.doi:10.3969/j.issn.1006-1533.2020.12.004 TIAN Hongyang, GU Chengying. Progress in the Diagnosis and Treatment of Type 2 Diabetes: A Note for General Practitioners [J]. Shanghai Medical & Pharmaceutical Journal, 2020, 41(12): 9-17,62.
  • [6] QIU Q, LIN X, SUN L, et al. Cognitive Decline is Related to High Blood Glucose Levels in Older Chinese Adults with the ApoE ε3/ε3 Genotype [J]. Translational Neurodegeneration, 2019, 8: 12-18. doi: 10.1186/s40035-019-0151-2
  • [7] GERSTEIN H C. Is Glucose a Continuous Risk Factor for Cardiovascular Mortality? [J]. Diabetes Care, 1999, 22(5): 659-660. doi: 10.2337/diacare.22.5.659
  • [8] BALKAU B, SHIPLEY M, JARRETT R J, et al. High Blood Glucose Concentration Is a Risk Factor for Mortality in Middle-aged Nondiabetic Men: 20-year Follow-up in the Whitehall Study, the Paris Prospective Study, and the Helsinki Policemen Study [J]. Diabetes Care, 1998, 21(3): 360-367. doi: 10.2337/diacare.21.3.360
  • [9] LONGSTRETH W T J R, INUI T S. High Blood Glucose Level on Hospital Admission and Poor Neurological Recovery After Cardiac Arrest [J]. Annals of Neurology, 1984, 15(1): 59-63. doi: 10.1002/ana.410150111
  • [10] ALBERTI K G, ZIMMET P Z.Definition, Diagnosis and Classification of Diabetes Mellitus and Its Complications. Part 1: Diagnosis and Classification of Diabetes Mellitus Provisional Report of a WHO Consultation [J]. Diabetic Medicine: A Journal of the British Diabetic Association, 1998, 15(7): 539-553. doi: 10.1002/(sici)1096-9136(199807)15: 7<539: : aid-dia668>3.0.co;2-s
  • [11] FIORENTINO T V, PRIOLETTA A, ZUO P, et al. Hyperglycemia-induced Oxidative Stress and Its Role in Diabetes Mellitus Related Cardiovascular Diseases [J]. Current Pharmaceutical Design, 2013, 19(32): 5695-5703. doi: 10.2174/1381612811319320005
  • [12] 姚欣卉,肖洪彬,卞敬琦,等.丹参有效成分在治疗糖尿病及其并发症中的作用机制研究进展 [J]. 中国实验方剂学杂志, 2021, 27(7): 209-218. doi: 10.13422/j.cnki.syfjx.20210401 YAO Xinhui, XIAO Hongbin, BIAN Jingqi, et al. New Progress in Mechanism of Salviae Miltiorrhizae Radix et Rhizoma in Treatment of Diabetes and Its Complications [J]. Chinese Journal of Experimental Traditional Medical Formulae, 2021, 27(7): 209-218.
  • [13] MELIK Z, ZALETEL P, VIRTIC T, et al. L-arginine as Dietary Supplement for Improving Microvascular Function [J]. Clinical Hemorheology and Microcirculation, 2017, 65(3): 205-217. doi: 10.3233/ch-16159
  • [14] TSAI P H, LIU J J, YEH C L, et al. Effects of Glutamine Supplementation on Oxidative Stress-related Gene Expression and Antioxidant Properties in Rats with Streptozotocin-induced Type 2 Diabetes [J]. The British Journal of Nutrition, 2012, 107(8): 1112-1118. doi: 10.1017/s0007114511004168
  • [15] SENCHINA D S, BURKE L M, STEAR S J, et al. A-Z of Nutritional Supplements: Dietary Supplements, Sports Nutrition Foods and Ergogenic Aids for Health and Performance: Part 39 [J]. British Journal of Sports Medicine, 2012, 46(16): 1145-1146. doi: 10.1136/bjsports-2012-091319
  • [16] BATISTA T M, RIBEIRO R A, da SILVA P M, et al. Taurine Supplementation Improves Liver Glucose Control in Normal Protein and Malnourished Mice Fed a High-fat Diet [J]. Molecular Nutrition & Food Research, 2013, 57(3): 423-434. doi: 10.1002/mnfr.201200345
  • [17] ZHAO Y S, ZHANG L H, YU P P, et al. Ceruloplasmin, a Potential Therapeutic Agent for Alzheimer's Disease [J]. Antioxidants & Redox Signaling, 2018, 28(14): 1323-1337. doi: 10.1089/ars.2016.6883
  • [18] LYU D, XIONG X, YANG H, et al. Effect of Dietary Soy Oil, Glucose, and Glutamine on Growth Performance, Amino Acid Profile, Blood Profile, Immunity, and Antioxidant Capacity in Weaned Piglets [J]. Science China Life Sciences, 2018, 61(10): 1233-1242. doi: 10.1007/s11427-018-9301-y
  • [19] DUTRA M T, ALEX S, MOTA M R, et al. Effect of Strength Training Combined with Antioxidant Supplementation on Muscular Performance [J]. Applied Physiology, Nutrition and Metabolism, 2018, 43(8): 775-781. doi: 10.1139/apnm-2017-0866
  • [20] 李若男, 郭昆全. 铁蛋白与2型糖尿病 [J]. 中国糖尿病杂志, 2016, 24(10): 951-954. doi: 10.3969/j.issn.1006-6187.2016.10.017 LI Ruonan, GUO Kunquan.Ferritin and Type 2 Diabetes Mellitus [J]. Chinese Journal of Diabetes, 2016, 24(10): 951-954.
  • [21] HANSEN J B, TONNESEN M F, MADSEN A N, et al. Divalent Metal Transporter 1 Regulates Iron-mediated ROS and Pancreatic β Cell Fate in Response to Cytokines [J]. Cell Metabolism, 2012, 16(4): 449-461. doi: 10.1016/j.cmet.2012.09.001
  • [22] SANTOS M C F D, ANDERSON C P, NESCHEN S, et al. Irp2 Regulates Insulin Production Through Iron-mediated Cdkal1-catalyzed tRNA Modification [J]. Nature Communications, 2020, 11(1): 296-311. doi: 10.1038/s41467-019-14004-5