|
1. Savulescu-Fiedler I, Mihalcea R, Dragosloveanu S, Scheau C, Baz RO, Caruntu A, et al. The interplay between obesity and inflammation. Life (Basel). 2024;14(7):856. doi:10.3390/life14070856 PMid:39063610 2. Zeng W, Jin Q, Wang X. Reassessing the effects of dietary fat on cardiovascular disease in China: a review of the last three decades. Nutrients. 2023; 15(19):4214. doi:10.3390/nu15194214 PMid:37836498 PMCid:PMC10574257 3. Zolfi H, Shakib A, Valipour A. The effect of eight weeks of high-intensity interval training (HIIT) on miR-27a levels and serum C-reactive protein (CRP) concentration in middle-aged obese men. Daneshvar Med. 2022;30(4):36-47. 4. Eivazzade S, Naderi G, Haddadzadeh Niri N, Roghani M. The effect of hydroalcoholic extract of anise on the activity of liver enzymes in rats on a high-fat diet. Daneshvar Med. 2023;31(3):45-54. 5. Rezvani Rad M, Molanouri Shamsi M, Gharakhanlou R, Shahrbanian S. The effect of high-intensity interval training with high-fat diet on the regulation of the inflammasome complex in the adipose tissue of male rats. Daneshvar Med. 2024;32(3):46-57. 6. Aggeletopoulou I, Kalafateli M, Tsounis EP, Triantos C. Exploring the role of IL-1β in inflammatory bowel disease pathogenesis. Front Med (Lausanne). 2024;11:1307394. doi:10.3389/fmed.2024.1307394 PMid:38323035 PMCid:PMC10845338 7. Katkenov N, Mukhatayev Z, Kozhakhmetov S, Sailybayeva A, Bekbossynova M, Kushugulova A. Systematic review on the role of IL-6 and IL-1β in cardiovascular diseases. J Cardiovasc Dev Dis. 2024;11(7):206. doi:10.3390/jcdd11070206 PMid:39057626 PMCid:PMC11277031 8. Ghane A, Abednatanzi H, Saghebjoo M, Hedayati M. The effect of high-intensity interval training and high-protein diet on the apoptotic indices of caspase-3, Bax, and Bcl-2 in the cardiac tissue of obese male rats. Daneshvar Med. 2022;30(1):59-71. 9. Rami M, Azimpour M, Khoramipour K. The effect of 8 weeks of high-intensity interval training on the levels of Wnt and NF-κB proteins in the heart tissue of male Wistar rats with type 2 diabetes. J Sport Exerc Physiol. 2022;15(4):19-30. doi:10.52547/joeppa.15.4.19 10. Zheng C, Yin Q, Wu H. Structural studies of NF-κB signaling. Cell Res. 2011;21(1):183-95. doi:10.1038/cr.2010.171 PMid:21135870 PMCid:PMC3044936 11. Liu HJ, Gui LK, Wei H, Zhou XY, Liu ZL, Jin LJ. The role of NF-κB in diabetic cardiomyopathy. All Life. 2024;17(1):2397402. doi:10.1080/26895293.2024.2397402 12. D'Almeida TZ, Gomes MJ, Engel LE, Giometti IC, Ferreira NZ, Stuani R, et al. Effects of high-intensity interval training on physical performance, systolic blood pressure, oxidative stress and inflammatory markers in skeletal muscle of spontaneously hypertensive rats. PLoS One. 2025; 20(2):e0316441. doi:10.1371/journal.pone.0316441 PMid:39903719 PMCid:PMC11793773 13. Marcotte-Chénard A, Tremblay D, Mony MM, Boulay P, Brochu M, Morais JA, et al. Acute and chronic effects of low-volume high-intensity interval training compared to moderate-intensity continuous training on glycemic control and body composition in older women with type 2 diabetes. Obesities. 2021;1(2):72-87. doi:10.3390/Obesities1020007 14. Fonseca TR, Mendes TT, Ramos GP, Cabido CET, Morandi RF, Ferraz FO, et al. Aerobic training modulates the increase in plasma concentrations of cytokines in response to a session of exercise. J Environ Public Health. 2021;2021:1304139. doi:10.1155/2021/1304139 PMid:33510799 PMCid:PMC7826215 15. Leiva-Valderrama JM, Montes-de-Oca-Garcia A, Opazo-Diaz E, Ponce-Gonzalez JG, Molina-Torres G, Velázquez-Díaz D, et al. Effects of high-intensity interval training on inflammatory biomarkers in patients with type 2 diabetes: a systematic review. Int J Environ Res Public Health. 2021;18(23):12644. doi:10.3390/ijerph182312644 PMid:34886369 PMCid:PMC8656922 16. Golpasandi H, Rahimi MR. The effect of high intensity interval training along with vitamin D3 injection on inflammation caused by excessive autophagy in heart tissue of type 2 diabetic rats. J Appl Health Stud Sport Physiol. 2024;12(1):31-45. 17. Luo Y, Burrington CM, Graff EC, Zhang J, Judd RL, Suksaranjit P, et al. Metabolic phenotype and adipose and liver features in a high-fat Western diet-induced mouse model of obesity-linked NAFLD. Am J Physiol Endocrinol Metab. 2016;310(6):E418-39. doi:10.1152/ajpendo.00319.2015 PMid:26670487 PMCid:PMC4796265 18. Clemente-Suárez VJ, Beltrán-Velasco AI, Redondo-Flórez L, Martín-Rodríguez A, Tornero-Aguilera JF. Global impacts of western diet and its effects on metabolism and health: a narrative review. Nutrients. 2023;15(12):2749. doi:10.3390/nu15122749 PMid:37375654 PMCid:PMC10302286 19. Zhou H, Urso C, Jadeja V. Saturated fatty acids in obesity-associated inflammation. J Inflamm Res. 2020; 13:1-14. doi:10.2147/JIR.S229691 PMid:32021375 PMCid:PMC6954080 20. Kong X, Chen H, Li D, Ma L. Effects of imbalance of lipid metabolism through NF-κB pathway on atherosclerosis and vascular aging in rats. Cell Mol Biol (Noisy-le-grand). 2021; 67(5):144-50. doi:10.14715/cmb/2021.67.5.20 PMid:35818259 21. Li Y, Shi B, Dong F, Zhu X, Liu B, Liu Y. Effects of inflammatory responses, apoptosis, and STAT3/NF-κB- and Nrf2-mediated oxidative stress on benign prostatic hyperplasia induced by a high-fat diet. Aging (Albany NY). 2019;11(15):5570-84. doi:10.18632/aging.102138 PMid:31412319 22. Feng L, Huang F, Ma Y, Tang J. The effect of high-fat diet and exercise intervention on the TNF-α level in rat spleen. Front Immunol. 2021;12:671167. doi:10.3389/fimmu.2021.671167 PMid:34975827 23. Gordon JW, Shaw JA, Kirshenbaum LA. Multiple facets of NF-κB in the heart: to be or not to NF-κB. Circ Res. 2011;108(9):1122-32. doi:10.1161/CIRCRESAHA.110.226928 PMid:21527742 24. Fatahian A, Kordi M, Ravasi AA, Gharakhanlou R. The effect of high-intensity interval training with a high-fat diet on the expression of M1 and M2 macrophages in the gastrocnemius muscle of male Wistar rats. Daneshvar Med. 2024;32(3):80-94. 25. Javaid HMA, Sahar NE, ZhuGe DL, Huh JY. Exercise inhibits NLRP3 inflammasome activation in obese mice via the anti-inflammatory effect of meteorin-like. Cells. 2021;10(12):3480. doi:10.3390/cells10123480 PMid:34943988 PMCid:PMC8700724 26. Krzystek-Korpacka M, Kempiński R, Bromke MA, Neubauer K. Oxidative stress markers in inflammatory bowel diseases: systematic review. Diagnostics (Basel). 2020;10(8):601. doi:10.3390/diagnostics10080601 PMid:32824619 PMCid:PMC7459713 27. Vargas-Mendoza N, Morales-González Á, Madrigal-Santillán EO, Madrigal-Bujaidar E, Álvarez-González I, García-Melo LF, et al. Antioxidant and adaptive response mediated by Nrf2 during physical exercise. Antioxidants (Basel). 2019;8(6):196. doi:10.3390/antiox8060196 PMid:31242588 PMCid:PMC6617290 28. Lingappan K. NF-κB in oxidative stress. Curr Opin Toxicol. 2018;7:81-6. doi:10.1016/j.cotox.2017.11.002 PMid:29862377 PMCid:PMC5978768 29. Khademi Y, Azarbayjani M, Hosseini H. Simultaneous effect of high-intensity interval training (HIIT) and consumption of flaxseed on serum levels of TNF-α and IL-1β in rats. Intern Med Today. 2017;23(4):257-63. 30. Kargarfard M, Mokhtaba M, Chehelcheraghi F, Nazari A. The effect of high-intensity interval training in combination with hawthorn extract consumption on cardiac fibrosis and inflammatory markers in heart tissue of elderly rats. Sport Physiol. 2023;15(60):35-54.
|