- WHO—World Health Organization Noncommunicable Diseases. https://www.who.int/news-room/fact-sheets/detail/noncommunicable-diseases
- WHO—World Health Organization Obesity and Overweight. [(accessed on 26 May 2020)]. Available online: https://www.who.int/news-room/fact-sheets/detail/obesity-and-overweight
- Xu J, Ni B, Ma C, Rong S, Gao H, Zhang L, et al. Docosahexaenoic acid enhances hippocampal insulin sensitivity to promote cognitive function of aged rats on a high-fat diet. Journal of Advanced Research. 2023;45:31-42.
- Dai D-F, Chen T, Johnson SC, Szeto H, Rabinovitch PS. Cardiac aging: from molecular mechanisms to significance in human health and disease. Antioxidants & redox signaling. 2012;16(12):1492-526.
- López-Otín C, Blasco MA, Partridge L, Serrano M, Kroemer G. The hallmarks of aging. Cell. 2013;153(6):1194-217.
- Webb AE, Brunet A. FOXO transcription factors: key regulators of cellular quality control. Trends in biochemical sciences. 2014;39(4):159-69.
- Sandri M, Sandri C, Gilbert A, Skurk C, Calabria E, Picard A, et al. Foxo transcription factors induce the atrophy-related ubiquitin ligase atrogin-1 and cause skeletal muscle atrophy. Cell. 2004;117(3):399-412.
- Ronnebaum SM, Patterson C. The FoxO family in cardiac function and dysfunction. Annual review of physiology. 2010;72:81-94.
- Li H-H, Kedar V, Zhang C, McDonough H, Arya R, Wang D-Z, et al. Atrogin-1/muscle atrophy F-box inhibits calcineurin-dependent cardiac hypertrophy by participating in an SCF ubiquitin ligase complex. The Journal of clinical investigation. 2004;114(8):1058-71.
- Li H-H, Willis MS, Lockyer P, Miller N, McDonough H, Glass DJ, et al. Atrogin-1 inhibits Akt-dependent cardiac hypertrophy in mice via ubiquitin-dependent coactivation of Forkhead proteins. The Journal of clinical investigation. 2007;117(11):3211-23.
- Arya R, Kedar V, Hwang JR, McDonough H, Li H-H, Taylor J, et al. Muscle ring finger protein-1 inhibits PKCε activation and prevents cardiomyocyte hypertrophy. J Cell Biol. 2004;167(6):1147-59.
- Afshar H, Abdi A, Barari A, Azarbayjani M. The Effect of Aerobic Training on Expression of Indices of Myocardial Hypertrophy and Atrophy in Rats. Armaghane Danesh. 2021;26(1):45-58.
- Esmailee B, Abdi A, farzanegi p, Abbassi Daloii A. Protective Effect of Aerobic Training along with Resveratrol on the Expression of some Atrophic Biomarkers of Cardiomyocytes in Diabetic rats. Journal Of Neyshabur University Of Medical Sciences. 2019;7(3):27-37.
- Hood DA, Irrcher I, Ljubicic V, Joseph A-M. Coordination of metabolic plasticity in skeletal muscle. Journal of experimental biology. 2006;209(12):2265-75.
- Kazemi A, dehesh T. The Effect of 4 Weeks of High Intensity Training on Gene Expression of MST1 and MAFbx in EDL Muscle of Aged Mice. Sport Physiology & Management Investigations. 2019;11(3):47-58.
- sheibani s, daryanoosh f, salesi m, koushkie jahromi m, tanideh n. The effect of high-intensity training and detraining on FOXO3a/MuRF1 and MAFbx levels in soleus muscle of male rats. EBNESINA. 2018;20(1):31-9.
- Gingras AA, White PJ, Chouinard PY, Julien P, Davis TA, Dombrowski L, et al. Long‐chain omega‐3 fatty acids regulate bovine whole‐body protein metabolism by promoting muscle insulin signalling to the Akt–mTOR–S6K1 pathway and insulin sensitivity. The Journal of physiology. 2007;579(1):269-84.
- Pinkoski C, Chilibeck PD, Candow DG, Esliger D, Ewaschuk JB, Facci M, et al. The effects of conjugated linoleic acid supplementation during resistance training. Medicine & Science in Sports & Exercise. 2006;38(2):339-48.
- Da Boit M, Sibson R, Sivasubramaniam S, Meakin JR, Greig CA, Aspden RM, et al. Sex differences in the effect of fish-oil supplementation on the adaptive response to resistance exercise training in older people: a randomized controlled trial. The American journal of clinical nutrition. 2017;105(1):151-8.
- Mostafavian M, Abdi A, Mehrabani J, Barari A. Effect of Eight Weeks of Aerobic Progressive Training with Capsaicin on changes in PGC-1α and UPC-1 Expression in Visceral Adipose Tissue of Obese Rats With Diet. Complementary Medicine Journal. 2020;10(2):106-17.
- Ji N, Luan J, Hu F, Zhao Y, Lv B, Wang W, et al. Aerobic exercise‑stimulated Klotho upregulation extends life span by attenuating the excess production of reactive oxygen species in the brain and kidney. Experimental and therapeutic medicine. 2018;16(4):3511-7.
- de Andrade AM, Fernandes MdC, de Fraga LS, Porawski M, Giovenardi M, Guedes RP. Omega-3 fatty acids revert high-fat diet-induced neuroinflammation but not recognition memory impairment in rats. Metabolic Brain Disease. 2017;32(6):1871-81.
- Shortreed KE, Krause MP, Huang JH, Dhanani D, Moradi J, Ceddia RB, et al. Muscle-specific adaptations, impaired oxidative capacity and maintenance of contractile function characterize diet-induced obese mouse skeletal muscle. PloS one. 2009;4(10):e7293.
- Choi SJ, Files DC, Zhang T, Wang Z-M, Messi ML, Gregory H, et al. Intramyocellular lipid and impaired myofiber contraction in normal weight and obese older adults. Journals of Gerontology Series A: Biomedical Sciences and Medical Sciences. 2016;71(4):557-64.
- Eshima H, Tamura Y, Kakehi S, Kurebayashi N, Murayama T, Nakamura K, et al. Long‐term, but not short‐term high‐fat diet induces fiber composition changes and impaired contractile force in mouse fast‐twitch skeletal muscle. Physiological reports. 2017;5(7):e13250.
- Ma J, Hwang SJ, McMahon GM, Curhan GC, Mclean RR, Murabito JM, et al. Mid‐adulthood cardiometabolic risk factor profiles of sarcopenic obesity. Obesity. 2016;24(2):526-34.
- Abrigo J, Rivera JC, Aravena J, Cabrera D, Simon F, Ezquer F, et al. High fat diet-induced skeletal muscle wasting is decreased by mesenchymal stem cells administration: implications on oxidative stress, ubiquitin proteasome pathway activation, and myonuclear apoptosis. Oxidative medicine and cellular longevity. 2016;2016 :9047821.
- Roy B, Curtis ME, Fears LS, Nahashon SN, Fentress HM. Molecular mechanisms of obesity-induced osteoporosis and muscle atrophy. Frontiers in physiology. 2016;7:439.
- Ferretti R, Moura EG, Dos Santos VC, Caldeira EJ, Conte M, Matsumura CY, et al. High-fat diet suppresses the positive effect of creatine supplementation on skeletal muscle function by reducing protein expression of IGF-PI3K-AKT-mTOR pathway. PloS one. 2018;13(10):e0199728.
- Zanchi NE, de Siqueira Filho MA, Lira FS, Rosa JC, Yamashita AS, de Oliveira Carvalho CR, et al. Chronic resistance training decreases MuRF-1 and Atrogin-1 gene expression but does not modify Akt, GSK-3β and p70S6K levels in rats. European journal of applied physiology. 2009;106(3):415-23.
- Murton A, Constantin D, Greenhaff P. The involvement of the ubiquitin proteasome system in human skeletal muscle remodelling and atrophy. Biochimica et Biophysica Acta (BBA)-Molecular Basis of Disease. 2008;1782(12):730-43.
- Foletta VC, White LJ, Larsen AE, Léger B, Russell AP. The role and regulation of MAFbx/atrogin-1 and MuRF1 in skeletal muscle atrophy. Pflügers Archiv-European Journal of Physiology. 2011;461(3):325-35.
- Baskin KK, Rodriguez MR, Kansara S, Chen W, Carranza S, Frazier OH, et al. MAFbx/Atrogin-1 is required for atrophic remodeling of the unloaded heart. Journal of molecular and cellular cardiology. 2014;72:168-76.
- Liu S-H, Chiu C-Y, Wang L-P, Chiang M-T. Omega-3 fatty acids-enriched fish oil activates AMPK/PGC-1α signaling and prevents obesity-related skeletal muscle wasting. Marine drugs. 2019;17(6):380.
- Hsueh T-Y, Baum JI, Huang Y. Effect of eicosapentaenoic acid and docosahexaenoic acid on myogenesis and mitochondrial biosynthesis during murine skeletal muscle cell differentiation. Frontiers in nutrition. 2018;5:15.
- Saini A, Sharples AP, Al-Shanti N, Stewart CE. Omega-3 fatty acid EPA improves regenerative capacity of mouse skeletal muscle cells exposed to saturated fat and inflammation. Biogerontology. 2017;18:109-29.
- Soni NK, Ross AB, Scheers N, Savolainen OI, Nookaew I, Gabrielsson BG, et al. Eicosapentaenoic and docosahexaenoic acid-enriched high fat diet delays skeletal muscle degradation in mice. Nutrients. 2016;8(9):543.
- Lee SR, Khamoui AV, Jo E, Zourdos MC, Panton LB, Ormsbee MJ, et al. Effect of conjugated linoleic acids and omega‐3 fatty acids with or without resistance training on muscle mass in high‐fat diet‐fed middle‐aged mice. Experimental Physiology. 2017;102(11):1500-12.
- Oh S-L, Lee S-R, Kim J-S. Effects of conjugated linoleic acid/n-3 and resistance training on muscle quality and expression of atrophy-related ubiquitin ligases in middle-aged mice with high-fat diet-induced obesity. Journal of exercise nutrition & biochemistry. 2017(3):11.
- Frier BC, Wan Z, Williams DB, Stefanson AL, Wright DC. Epinephrine and AICAR-induced PGC-1α mRNA expression is intact in skeletal muscle from rats fed a high-fat diet. American Journal of Physiology-Cell Physiology. 2012;302(12):C1772-C9.
- Sandri M, Lin J, Handschin C, Yang W, Arany ZP, Lecker SH, et al. PGC-1α protects skeletal muscle from atrophy by suppressing FoxO3 action and atrophy-specific gene transcription. Proceedings of the National Academy of Sciences. 2006;103(44):16260-5.
- Wang Y, Zhou Y, Graves DT. FOXO transcription factors: their clinical significance and regulation. BioMed research international. 2014;2014.
- Chen W-K, Tsai Y-L, Shibu MA, Shen C-Y, Chang-Lee SN, Chen R-J, et al. Exercise training augments Sirt1-signaling and attenuates cardiac inflammation in D-galactose induced-aging rats. Aging (Albany NY). 2018;10(12):4166.
- Lennon-Edwards S, Schellhardt TA, Kuczmarski JM. Antioxidant defense is increased in aged hearts following omega-3 supplementation in the absence of changes in inflammation. Physiological Research. 2015;64(3):433.
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