[1] Lainez NM, Coss D. Obesity, Neuroinflammation, and reproductive function [J]. Endocrinology, 2019, 160(11): 2719-2736. [2] Yeap BB, Wu FCW. Clinical practice update on testosterone therapy for male hypogonadism: Contrasting perspectives to optimize care [J]. Clin Endocrinol (Oxf), 2019, 90(1): 56-65. [3] Wang Y, Chen F, Ye L, et al. Steroidogenesis in Leydig cells: effects of aging and environmental factors [J]. Reproduction, 2017, 154(4): R111-R122. [4] Yi X, Tang D, Cao S, et al. Effect of different exercise loads on testicular oxidative stress and reproductive function in obese male mice [J]. Oxid Med Cell Longev, 2020, 2020: 3071658. [5] Zhao W, Ma L, Cai C, et al. Caffeine inhibits NLRP3 inflammasome activation by suppressing MAPK/NF-kappaB and A2aR signaling in LPS-induced THP-1 macrophages [J]. Int J Biol Sci, 2019, 15(8): 1571-1581. [6] Zhao Y, Liu X, Qu Y, et al. The roles of p38 MAPK→COX2 and NF-κB→COX2 signal pathways in age-related testosterone reduction [J]. Sci Rep, 2019, 9(1): 10556. [7] Roh HT, Cho SY, So WY. Effects of regular taekwondo intervention on oxidative stress biomarkers and myokines in overweight and obese adolescents [J]. Int J Environ Res Public Health, 2020, 17(7): 2505. [8] Effting PS, Brescianini SMS, Sorato HR, et al. Resistance exercise modulates oxidative stress parameters and TNF-alpha content in the heart of mice with diet-induced obesity [J]. Arq Bras Cardiol, 2019, 112(5): 545-552. [9] Waldman M, Cohen K, Yadin D, et al. Regulation of diabetic cardiomyopathy by caloric restriction is mediated by intracellular signaling pathways involving 'SIRT1 and PGC-1alpha' [J]. Cardiovasc Diabetol, 2018, 17(1): 111. [10] Li C, Feng F, Xiong X, et al. Exercise coupled with dietary restriction reduces oxidative stress in male adolescents with obesity [J]. J Sports Sci, 2017, 35(7): 663-668. [11] Yi X, Gao H, Chen D, et al. Effects of obesity and exercise on testicular leptin signal transduction and testosterone biosynthesis in male mice [J]. Am J Physiol Regul Integr Comp Physiol, 2017, 312(4): R501-R510. [12] Chandler PC, Viana JB, Oswald KD, et al. Feeding response to melanocortin agonist predicts preference for and obesity from a high-fat diet [J]. Physiol Behav, 2005, 85(2): 221-230. [13] Chen D, Cao S, Chang B, et al. Increasing hypothalamic nucleobindin 2 levels and decreasing hypothalamic inflammation in obese male mice via diet and exercise alleviate obesity-associated hypogonadism [J]. Neuropeptides, 2019, 74: 34-43. [14] Sebo ZL, Rodeheffer MS. Testosterone metabolites differentially regulate obesogenesis and fat distribution [J]. Mol Metab, 2021, 44: 101141. [15] 王 品, 曹建民, 胡 戈, 等. 姜黄素对过度训练大鼠脾脏炎症反应的调控作用及其机制 [J]. 中国应用生理学杂志, 2021, 37(3): 281-286. [16] 郑妩媚, 初海平, 王 燕, 等. 力竭运动后不同时相大鼠心肌p-p38MAPK、NF-kB、COX-2表达的动态变化 [J]. 中国应用生理学杂志, 2016, 32(1): 88-91. [17] Li T, Wu YN, Wang H, et al. Dapk1 improves inflammation, oxidative stress and autophagy in LPS-induced acute lung injury via p38MAPK/NF-κB signaling pathway [J]. Mol Immunol, 2020, 120: 13-22. [18] Jana K, Dutta A, Chakraborty P, et al. Alpha-lipoic acid and N-acetylcysteine protects intensive swimming exercise-mediated germ-cell depletion, pro-oxidant generation, and alteration of steroidogenesis in rat testis [J]. Mol Reprod Dev, 2014, 81(9): 833-850. [19] de Sousa CV, Sales MM, Rosa TS, et al. The antioxidant effect of exercise: A systematic review and meta-analysis[J]. Sports Med, 2017, 47(2): 277-293. [20] Aleksandrova K, Koelman L, Rodrigues CE. Dietary patterns and biomarkers of oxidative stress and inflammation: A systematic review of observational and intervention studies [J]. Redox Biol, 2021, 42: 101869. |