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Effect of Aging and Exercise Training on Plasma Insulin Concentration

286:1218-1227, 2001. 5. Ivy JL, Zderic TW, Fogt DL . Prevention and treatment of non-insulin-dependent diabetes mellitus. Exerc Sport Sci Rev 27: 1-35, 1999. 6. Mazzeo RS for the American College of Sports Medicine. Exercise and the older adult. Accessed at: http://www.acsm.org/docs/currentcomments/exerciseandtheolderadult.pdf on 19 Aug 2013. 7. Short KR, Vittone JL, Biqelow Ml et al. Impact of aerobic exercise training on age-related changes in insulin sensitivity and muscle oxidative capacity. Diabetes 52

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Gender and Contractile Functions of Slow and Fast Skeletal Muscles in Streptozotocin Induced Diabetic Sprague Dawley Rats

characteristics. Eur J Appl Physiol Occup Physiol 66: 254-262, 1993. 11. Cureton KJ, Collins MA, Hill DW, McElhannon FM . Muscle hypertrophy in men and women. Med Sci Sports Exerc 20: 338-344, 1988. 12. Hicks AL, Kent-Braun J, Ditor DS. Sex differences in human skeletal muscle fatigue. Exerc Sport Sci Rev 29: 109-112, 2001. 13. Brotto M, Brotto L, Nosek TM, Romani A. Temporal adaptive changes in contractility and fatigability of diaphragm muscles from streptozotocin-diabetic rats. J Biomed Biotech doi:10

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Evaluation of Pancreatic and Extra Pancreatic Effects of Branched Amino Acids

-1546, 2005 8. Kainulainen H, Hulmi JJ, Kujala UM . Potential role of branched-chain amino acid catabolism in regulating fat oxidation. Exerc Sport Sci Rev 41(4):194-200, 2013. 9. Miyazaki JI, Araki K, Yamato E et al . Establishment of a pancreatic β cell line that retains glucose-inducible insulin secretion: special reference to expression of glucose transporter isoforms. Endocrinology 127: 126-132, 1990. 10. Kasabri V, Abu-Dahab R, Afifi FU, Naffa R, Majdalawi L, Shawash H . In vitro Modulation of Pancreatic MIN6 Insulin Secretion and Proliferation

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The impact of arterial stiffness on cognitive status in elderly diabetic patients

. 4. Zieman SJ, Melenovsky V, Kass DA. Mechanisms, pathophysiology, and therapy of arterial stiffness. Arterioscler Thromb Vasc Biol 25: 932-943, 2005. 5. Airaksinen KE, Salmela PI, Linnaluoto MK, Ikäheimo MJ, Ahola K, Ryhänen LJ. Diminished arterial elasticity in diabetes: association with fluorescent advanced glycosylation end products in collagen. Cardiovasc Res 27: 942-945, 1993. 6. Ionescu A, Berteanu M. Influenţa efortului fizic asupra rigidităţii arteriale. Palestrica Mileniului IIICivilizaţie şi Sport 11: 153-158, 2010

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The Role of Endothelial Dysfunction in the Pathogenesis of Vascular Complications of Diabetes Mellitus - A High Priority Area of Investigation

References 1. Gavras H, Gavras I. Endothelial function in cardiovascular disease: the role of bradykinin. Science Press Ltd, London, UK, pp. 34-42, 1996. 2. Fiorentino TV, Prioletta A, Zuo P, Folli F. Hyperglycemia-induced oxidative stress and its role in diabetes mellitus related cardiovascular diseases. Curr Pharm Des 19: 5695-5703, 2013. 3. Walther C, Gielen S, Hambrecht R. The effect of exercise training on endothelial function in cardiovascular disease in humans. Exerc Sport Sci Rev 32: 129-134, 2004

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Optimization of Efficacy of Core Strengthening Exercise Protocols on Patients Suffering from Diabetes Mellitus

Gait Analysis in Patients with Low Back Pain before and after a Pilates Intervention. J Sport Rehabil 18: 269-282, 2009. 38. Levine B1, Kaplanek B, Jaffe WL . Pilates training for use in rehabilitation after total hip and knee arthroplasty: a preliminary report. Clin Orthop Relat Res 467: 1468-1475, 2009. 39. Freeman J1, Fox E, Gear M, Hough A . Pilates based core stability training in ambulant individuals with multiple sclerosis: protocol for a multi-centre randomised controlled trial. BMC Neurol 5: 12-19, 2012. 40. Moslemi-Haghighi F

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Impact of Dietary, Socioeconomic, and Physical Factors on Obese and Overweight Schoolchildren Living in Sidi-Bel-Abbes (West of Algeria) and Ain Defla (Centre)

. Coutant R, Bouhours-Nouet N , Donzeau A. Obesite de l’enfant et de l’adolescent. MCED 80: 18-23, 2016. 15. Ben Ounis O, Elloumi M, Amri M, Zouhal H, Tabka Z, Lac G. Rôle de la combinaison de la restriction calorique et de l’entrainement physique individualisé dans la prise en charge de l’obésité infantile. Science & Sport 25: 111-120, 2010. 16. Benyaich K, Ben Yaich A . Etude comparative de la prévalence de surpoids et d’obésité dans 11 pays méditerranéens. HAL 1222: 254-266, 2017. 17. Boesveldt S, Lundstrom JN. Detecting fat content of food

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Data Regarding the Prevalence and Incidence of Diabetes Mellitus and Prediabetes

population-based study. Diabet Med 29: 748–754, 2012. 32. Moța M, Popa SG, Moța E et al. Prevalence of diabetes mellitus and prediabetes in the adult Romanian population: PREDATORR study. J. Diabetes , 2015. doi: 10.1111/1753-0407.12297. [Epub ahead of print] 33. Ojuka EO, Goyaram V. Increasing prevalence of type 2 diabetes in sub-Saharan Africa: not only a case of inadequate physical activity. Med Sport Sci 60: 27–35, 2014. 34. Abebe SM, Berhane Y, Worku A, Assefa A. Diabetes mellitus in North West Ethiopia: a community based study. BMC Public

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One-month of high-intensity exercise did not change the food intake and the hypothalamic arcuate nucleus proopiomelanocortin and neuropeptide Y expression levels in male Wistar rats

DA, Wolfe LA, Eikelboom R. Acute effects of exercise intensity on appetite in young men. Med Sci Sport Exerc 20, 222–227, 1988. World Health Organization (WHO). Obesity: Preventing and managing the global epidemic, Geneva: World Health Organization Technical Report Series 894, i–xii, 1–253, 2000. http://who.int/nutrition/publications/obesity/WHO_TRS_894/en/index.html

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Resistance training alone or combined with leucine supplementation improves the serum lipid profile of diabetic rats, whereas leucine alone does not

Metabolism. Circulation 116, 572–584, 2007. Williams AD, Almond J, Ahuja KD, Beard DC, Robertson IK, Ball MJ. Cardiovascular and metabolic effects of community based resistance training in an older population. J Sci Med Sport 14, 331–337, 2011. Zhang Y, Guo K, LeBlanc RE, Loh D, Schwartz GJ, Yu YH. Increasing dietary leucine intake reduces diet-induced obesity and improves glucose and cholesterol metabolism in mice via multimechanisms. Diabetes 56, 1647–1654, 2007.

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