- Blüher M. Obesity: global epidemiology and pathogenesis. Nat Rev Endocrinol. 2019;15(5):288–98.
- Chooi YC, Ding C, Magkos F. The epidemiology of obesity. Metabolism [Internet]. 2019;92:6–10. Available from: https://doi.org/10.1016/j.metabol.2018.09.005
- Scheja L, Heeren J. The endocrine function of adipose tissues in health and cardiometabolic disease. Nat Rev Endocrinol [Internet]. 2019;15(9):507–24. Available from: http://dx.doi.org/10.1038/s41574-019-0230-6
- Trayhurn P. Hypoxia and adipocyte physiology: Implications for adipose tissue dysfunction in obesity. Annu Rev Nutr. 2014;34(April):207–36.
- Wang Q, Zhang M, Xu M, Gu W, Xi Y, Qi L, et al. Brown adipose tissue activation is inversely related to central obesity and metabolic parameters in adult human. PLoS One. 2015;10(4):1–13.
- Fatouros IG. Is irisin the new player in exercise-induced adaptations or not? A 2017 update. Clin Chem Lab Med. 2018;56(4):525–48.
- Young MF, Valaris S, Wrann CD. A role for FNDC5/Irisin in the beneficial effects of exercise on the brain and in neurodegenerative diseases. Prog Cardiovasc Dis [Internet]. 2019;62(2):172–8. Available from: https://doi.org/10.1016/j.pcad.2019.02.007
- Keating SE, Machan EA, O’Connor HT, Gerofi JA, Sainsbury A, Caterson ID, et al. Continuous exercise but not high intensity interval training improves fat distribution in overweight adults. J Obes. 2014;2014:25–7.
- Manuscript A. disease. 2008;454(7203):463–9.
- Wang Y, Huang Y Lou, Lu M, Pang XD, Xie MQ, Liu J. Multiple rank aggregation based on directly optimizing performance measure. Jisuanji Xuebao/Chinese J Comput. 2014;37(8):1658–68.
- Shirkhani S, Marandi SM, Kazeminasab F, Esmaeili M, Ghaedi K, Esfarjani F, et al. Comparative studies on the effects of high-fat diet, endurance training and obesity on Ucp1 expression in male C57BL/6 mice. Gene [Internet]. 2018;676(July):16–21. Available from: https://doi.org/10.1016/j.gene.2018.07.015
- Novelli ELB, Diniz YS, Galhardi CM, Ebaid GMX, Rodrigues HG, Mani F, et al. Anthropometrical parameters and markers of obesity in rats. Lab Anim. 2007;41(1):111–9.
- Leandro CG, Levada AC, Hirabara SM, MANHAS-DE-CASTRO R, De- Castro CB, Curi R, et al. APROGRAM OF MODERATE PHYSICAL TRAINING FOR WISTAR RATS BASED ON MAXIMAL OXYGEN CONSUMPTION . The Journal of Strength & Conditioning Research. 2007;21(3):751-6.
- Daneshyar S, Gharakhanlou R, Nikooie R, Forutan Y. The Effect of High-Fat Diet and Streptozotocin-Induced Diabetes and Endurance Training on Plasma Levels of Calcitonin Gene-Related Peptide and Lactate in Rats. Can J Diabetes [Internet]. 2014;38(6):461–5. Available from: http://dx.doi.org/10.1016/j.jcjd.2014.03.001
- Xu X, Ying Z, Cai M, Xu Z, Li Y, Jiang SY, et al. Exercise ameliorates high-fat diet-induced metabolic and vascular dysfunction, and increases adipocyte progenitor cell population in brown adipose tissue. Am J Physiol - Regul Integr Comp Physiol. 2011;300(5):1115–25.
- Boström P, Wu J, Jedrychowski MP, Korde A, Ye L, Lo JC, et al. A PGC1a dependent myokine that derives browning of white fat and thermogenesis. Nature. 2012;481(7382):463–8.
- Norheim F, Langleite TM, Hjorth M, Holen T, Kielland A, Stadheim HK, et al. The effects of acute and chronic exercise on PGC-1α, irisin and browning of subcutaneous adipose tissue in humans. FEBS J. 2014;281(3):739–49.
- Heinonen I, Bucci M, Kemppainen J, Knuuti J, Nuutila P, Boushel R, et al. Regulation of subcutaneous adipose tissue blood flow during exercise in humans. J Appl Physiol. 2012;112(6):1059–63.
- Heinonen I, Kemppainen J, Kaskinoro K, Knuuti J, Boushel R, Kalliokoski KK. Capacity and hypoxic response of subcutaneous adipose tissue blood flow in humans. Circ J. 2014;78(6):1501–6.
- Ringholm S, Grunnet Knudsen J, Leick L, Lundgaard A, Munk Nielsen M, Pilegaard H. PGC-1α Is Required for Exercise- and Exercise Training-Induced UCP1 Up-Regulation in Mouse White Adipose Tissue. PLoS One. 2013;8(5):1–6.
- Nakhuda A, Josse AR, Gburcik V, Crossland H, Raymond F, Metairon S, et al. Biomarkers of browning of white adipose tissue and their regulation. Am J Clin Nutr. 2016;(104):557–65.
- Knudsen JG, Murholm M, Carey AL, Biensø RS, Basse AL, Allen TL, et al. Role of IL-6 in exercise training- and cold-induced UCP1 expression in subcutaneous white adipose tissue. PLoS One. 2014;9(1):1–8.
- Ma Y, Gao M, Sun H, Liu D. Interleukin-6 gene transfer reverses body weight gain and fatty liver in obese mice. Biochim Biophys Acta - Mol Basis Dis [Internet]. 2015;1852(5):1001–11. Available from: http://dx.doi.org/10.1016/j.bbadis.2015.01.017
- Yang TJ, Wu CL, Chiu CH. High-intensity intermittent exercise increases fat oxidation rate and reduces postprandial triglyceride concentrations. Nutrients. 2018;10(4).
- Nedergaard J, Cannon B. The browning of white adipose tissue: Some burning issues. Cell Metab [Internet]. 2014;20(3):396–407. Available from: http://dx.doi.org/10.1016/j.cmet.2014.07.005
- Schnabl K, Westermeier J, Li Y, Klingenspor M. Opposing actions of adrenocorticotropic hormone and glucocorticoids on UCP1-mediated respiration in brown adipocytes. Front Physiol. 2019;10(JAN):1–14.
- Archundia-Herrera C, MacIas-Cervantes M, Ruiz-Muñoz B, Vargas-Ortiz K, Kornhauser C, Perez-Vazquez V. Muscle irisin response to aerobic vs HIIT in overweight female adolescents Fred DiMenna. Diabetol Metab Syndr [Internet]. 2017;9(1). Available from: https://doi.org/10.1186/s13098-017-0302-5
- Palareti G, Legnani C, Cosmi B, Antonucci E, Erba N, Poli D, et al. Comparison between different D-Dimer cutoff values to assess the individual risk of recurrent venous thromboembolism: Analysis of results obtained in the DULCIS study. Int J Lab Hematol. 2016;38(1):42–9.
- Huh JY, Mougios V, Kabasakalis A, Fatouros I, Siopi A, Douroudos II, et al. Exercise-induced irisin secretion is independent of age or fitness level and increased irisin may directly modulate muscle metabolism through AMPK activation. J Clin Endocrinol Metab. 2014;99(11):E2154–61.
|