Hypoglycemic Effect of the N-Butanol Fraction of Torreya grandis Leaves on Type 2 Diabetes Mellitus in Rats through the Amelioration of Oxidative Stress and Enhancement of β-Cell Function
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Ke Yuan | Song-Heng Jin | Xue-qin Li | Shan-shan Jia | X. Li
[1] Baorui Li,et al. Theaflavins prevent the onset of diabetes through ameliorating glucose tolerance mediated by promoted incretin secretion in spontaneous diabetic Torii rats , 2021, Journal of Functional Foods.
[2] Xinyue Wu,et al. Berberis kansuensis extract alleviates type 2 diabetes in rats by regulating gut microbiota composition. , 2021, Journal of ethnopharmacology.
[3] Li Chen,et al. Silymarin nanoliposomes attenuate renal injury on diabetic nephropathy rats via co-suppressing TGF-β/Smad and JAK2/STAT3/SOCS1 pathway. , 2021, Life sciences.
[4] N. Mirazi,et al. Ameliorative effects of endurance training and Matricaria chamomilla flowers hydroethanolic extract on cognitive deficit in type 2 diabetes rats. , 2021, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[5] M. Shokoohi,et al. Effects of Hydroalcoholic Extracts of Cloves (Syzygium aromaticum) on the Serum Biomarkers, Antioxidant Status, and Histopathological Changes of Kidneys in Diabetic Rats , 2021 .
[6] Qi Huan-yang,et al. Silkworm Extract Ameliorates Type 2 Diabetes Mellitus and Protects Pancreatic β-cell Functions in Rats , 2020 .
[7] A. Khaki,et al. Evaluation of carvacrol on pituitary and sexual hormones and their receptors in the testicle of male diabetic rats , 2020, Human & experimental toxicology.
[8] A. Ghasemi,et al. Dietary inorganic nitrate attenuates hyperoxia-induced oxidative stress in obese type 2 diabetic male rats. , 2019, Life sciences.
[9] W. Liang,et al. The potential of adipokines as biomarkers and therapeutic agents for vascular complications in type 2 diabetes mellitus. , 2019, Cytokine & growth factor reviews.
[10] H. El‐Seedi,et al. Recent advances in the development of sesquiterpenoids in the treatment of type 2 diabetes , 2019, Trends in Food Science & Technology.
[11] Hong-Xin Cui,et al. Ameliorative Effect and Mechanism of the Purified Anthraquinone-Glycoside Preparation from Rheum Palmatum L. on Type 2 Diabetes Mellitus , 2019, Molecules.
[12] A. Khaki,et al. The ameliorative effect of carvacrol on oxidative stress and germ cell apoptosis in testicular tissue of adult diabetic rats. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[13] Tangchun Wu,et al. Serum alanine transaminase levels predict type 2 diabetes risk among a middle-aged and elderly Chinese population. , 2019, Annals of hepatology.
[14] T. Weerarathna,et al. Prevalence and associations of non-alcoholic fatty liver disease (NAFLD) in Sri Lankan patients with type 2 diabetes: A single center study. , 2019, Diabetes & metabolic syndrome.
[15] S. Persaud,et al. Identifying novel therapeutic targets for diabetes through improved understanding of islet adhesion receptors , 2018, Current opinion in pharmacology.
[16] Manisha J. Oza,et al. Biochanin A improves insulin sensitivity and controls hyperglycemia in type 2 diabetes. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[17] Keping Chen,et al. Proteomics, metabolomics and metagenomics for type 2 diabetes and its complications , 2018, Life sciences.
[18] T. Einarson,et al. Prevalence of cardiovascular disease in type 2 diabetes: a systematic literature review of scientific evidence from across the world in 2007–2017 , 2018, Cardiovascular Diabetology.
[19] N. Tentolouris,et al. Hypertension in patients with type 2 diabetes mellitus: Targets and management. , 2018, Maturitas.
[20] Xu Yang,et al. Dibutyl phthalate exposure aggravates type 2 diabetes by disrupting the insulin-mediated PI3K/AKT signaling pathway. , 2018, Toxicology letters.
[21] J. Salas-Pacheco,et al. Apoptosis in pancreatic β-cells is induced by arsenic and atorvastatin in Wistar rats with diabetes mellitus type 2. , 2018, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[22] Jing-wan Li,et al. A safer hypoglycemic agent for type 2 diabetes—Berberine organic acid salt , 2017 .
[23] J. B. L. Tan,et al. Increased susceptibility of post-weaning rats on high-fat diet to metabolic syndrome , 2017, Journal of advanced research.
[24] E. Seaquist,et al. Association between mild and severe hypoglycemia in people with type 2 diabetes initiating insulin. , 2017, Journal of diabetes and its complications.
[25] D. Tuveson,et al. ROS in Cancer: The Burning Question. , 2017, Trends in molecular medicine.
[26] A. Blom,et al. Non-traditional roles of complement in type 2 diabetes: Metabolism, insulin secretion and homeostasis. , 2017, Molecular immunology.
[27] A. Abbasi,et al. Protective Effect of Galega officinalis Extract on Streptozotocin-Induced Kidney Damage and Biochemical Factor in Diabetic Rats , 2017 .
[28] E. A. Reece,et al. Type 2 diabetes mellitus induces congenital heart defects in murine embryos by increasing oxidative stress, endoplasmic reticulum stress, and apoptosis. , 2016, American journal of obstetrics and gynecology.
[29] T. Tomita. Apoptosis in pancreatic β-islet cells in Type 2 diabetes. , 2016, Bosnian journal of basic medical sciences.
[30] Haichang Wang,et al. Irisin improves endothelial function in type 2 diabetes through reducing oxidative/nitrative stresses. , 2015, Journal of molecular and cellular cardiology.
[31] Ying Zhang,et al. Spexin peptide is expressed in human endocrine and epithelial tissues and reduced after glucose load in type 2 diabetes , 2015, Peptides.
[32] In-kyu Lee,et al. Non-receptor tyrosine kinase inhibitors enhances β-cell survival by suppressing the PKCδ signal transduction pathway in streptozotocin-induced β-cell apoptosis. , 2015, Cellular signalling.
[33] Youzuo Zhang,et al. Supercritical carbon dioxide extraction of oils from two Torreya grandis varieties seeds and their physicochemical and antioxidant properties , 2015 .
[34] J. Stephens,et al. Changes in markers of oxidative stress and DNA damage in human visceral adipose tissue from subjects with obesity and type 2 diabetes. , 2014, Diabetes research and clinical practice.
[35] G. Akuodor,et al. Antihyperglycemic and antihyperlipidemic properties of aqueous root extract of Icacina senegalensis in alloxan induced diabetic rats , 2014 .
[36] A. Salmon,et al. Oxidative stress and diabetes: what can we learn about insulin resistance from antioxidant mutant mouse models? , 2012, Free radical biology & medicine.
[37] S. Twigg,et al. Diabetes is a progression factor for hepatic fibrosis in a high fat fed mouse obesity model of non-alcoholic steatohepatitis. , 2011, Journal of hepatology.
[38] Hu Shao,et al. Galanin antagonist increases insulin resistance by reducing glucose transporter 4 effect in adipocytes of rats. , 2011, General and comparative endocrinology.
[39] A. Makino,et al. Mitochondrial fragmentation and superoxide anion production in coronary endothelial cells from a mouse model of type 1 diabetes , 2010, Diabetologia.
[40] A. Acharya,et al. Redox regulation in cancer , 2010, Oxidative medicine and cellular longevity.
[41] Yulin Deng,et al. Appraisal of antinociceptive and anti-inflammatory potential of extract and fractions from the leaves of Torreya grandis Fort Ex. Lindl. , 2010, Journal of ethnopharmacology.
[42] H. Reber,et al. Evidence for proteotoxicity in beta cells in type 2 diabetes: toxic islet amyloid polypeptide oligomers form intracellularly in the secretory pathway. , 2010, The American journal of pathology.
[43] T. Wadden,et al. ORIGINAL RESEARCH—ERECTILE DYSFUNCTION Effects of Weight Loss Intervention on Erectile Function in Older Men with Type 2 Diabetes in the Look AHEAD Trial , 2010 .
[44] S. Basu,et al. Addition of n-3 fatty acids to a 4-hour lipid infusion does not affect insulin sensitivity, insulin secretion, or markers of oxidative stress in subjects with type 2 diabetes mellitus. , 2009, Metabolism: clinical and experimental.
[45] C. Gleissner,et al. Upregulation of Aldose Reductase During Foam Cell Formation as Possible Link Among Diabetes, Hyperlipidemia, and Atherosclerosis , 2008, Arteriosclerosis, thrombosis, and vascular biology.
[46] M. Monami,et al. Liver enzymes and risk of diabetes and cardiovascular disease: results of the Firenze Bagno a Ripoli (FIBAR) study. , 2008, Metabolism: clinical and experimental.
[47] E. Nkenke,et al. Diabetes enhances cell proliferation but not Bax/Bcl-2-mediated apoptosis during oral oncogenesis. , 2008, International journal of oral and maxillofacial surgery.
[48] Yancheng Xu,et al. Association between the leptin receptor gene polymorphism and lipoprotein profile in Chinese type 2 diabetes , 2007 .
[49] E. Schaefer,et al. Hypertriglyceridemia and cardiovascular risk reduction. , 2007, Clinical therapeutics.
[50] M. Stevens,et al. Taurine reverses neurological and neurovascular deficits in Zucker diabetic fatty rats , 2006, Neurobiology of Disease.
[51] K. Petersen,et al. New Insights into the Pathogenesis of Insulin Resistance in Humans Using Magnetic Resonance Spectroscopy , 2006, Obesity.
[52] Aruni Bhatnagar,et al. Role of aldose reductase and oxidative damage in diabetes and the consequent potential for therapeutic options. , 2005, Endocrine reviews.
[53] K. Forrest,et al. Insulin resistance-related factors, but not glycemia, predict coronary artery disease in type 1 diabetes: 10-year follow-up data from the Pittsburgh Epidemiology of Diabetes Complications Study. , 2003, Diabetes care.
[54] Joseph L Evans,et al. Are oxidative stress-activated signaling pathways mediators of insulin resistance and beta-cell dysfunction? , 2003, Diabetes.
[55] M. Brownlee. Biochemistry and molecular cell biology of diabetic complications , 2001, Nature.
[56] G. Pierce,et al. Involvement of lipoproteins, free radicals, and calcium in cardiovascular disease processes. , 1995, Cardiovascular research.