1. Abarca-Gómez L, Abdeen ZA, Hamid ZA, Abu-Rmeileh NM, Acosta-Cazares B, Acuin C, et al. Worldwide trends in body-mass index, underweight, overweight, and obesity from 1975 to 2016: a pooled analysis of 2416 population-based measurement studies in 128· 9 million children, adolescents, and adults. The lancet. 2017;390(10113):2627-42.
2. Yumuk V, Tsigos C, Fried M, Schindler K, Busetto L, Micic D, et al. European guidelines for obesity management in adults. Obesity facts. 2015;8(6):402-24.
3. Garvey WT, Mechanick JI, Brett EM, Garber AJ, Hurley DL, Jastreboff AM, et al. American Association of Clinical Endocrinologists and American College of Endocrinology comprehensive clinical practice guidelines for medical care of patients with obesity. Endocrine Practice. 2016;22:1-203.
4. Methenitis S. A brief review on concurrent training: from laboratory to the field. Sports. 2018;6(4):127.
5. Schumann M, Yli-Peltola K, Abbiss CR, Häkkinen K. Cardiorespiratory adaptations during concurrent aerobic and strength training in men and women. PloS one. 2015;10(9):e0139279.
6. Vina J, Sanchis‐Gomar F, Martinez‐Bello V, Gomez‐Cabrera M. Exercise acts as a drug; the pharmacological benefits of exercise. British journal of pharmacology. 2012;167(1):1-12.
7. Garber CE, Blissmer B, Deschenes MR, Franklin BA, Lamonte MJ, Lee I-M, et al. Quantity and quality of exercise for developing and maintaining cardiorespiratory, musculoskeletal, and neuromotor fitness in apparently healthy adults: guidance for prescribing exercise. Medicine & science in sports & exercise. 2011;43(7):1334-59.
8. Lafontant K, Rukstela A, Hanson A, Chan J, Alsayed Y, Ayers-Creech WA, et al. Comparison of concurrent, resistance, or aerobic training on body fat loss: a systematic review and meta-analysis. Journal of the International Society of Sports Nutrition. 2025;22(1):2507949.
9. Fyfe JJ, Bishop DJ, Zacharewicz E, Russell AP, Stepto NK. Concurrent exercise incorporating high-intensity interval or continuous training modulates mTORC1 signaling and microRNA expression in human skeletal muscle. American Journal of Physiology-Regulatory, Integrative and Comparative Physiology. 2016;310(11):R1297-R311.
10. Pedersen BK. Muscles and their myokines. Journal of Experimental Biology. 2011;214(2):337-46.
11. Broholm C, Brandt C, Schultz NS, Nielsen AR, Pedersen BK, Scheele C. Deficient leukemia inhibitory factor signaling in muscle precursor cells from patients with type 2 diabetes. American Journal of Physiology-Endocrinology and Metabolism. 2012;303(2):E283-E92.
12. Guo A, Li K, Xiao Q. Sarcopenic obesity: Myokines as potential diagnostic biomarkers and therapeutic targets? Experimental gerontology. 2020;139:111022.
13. Pratesi A, Tarantini F, Di Bari M. Skeletal muscle: an endocrine organ. Clinical cases in mineral and bone metabolism. 2013;10(1):11.
14. Kirk B, Feehan J, Lombardi G, Duque G. Muscle, Bone, and Fat Crosstalk: the Biological Role of Myokines, Osteokines, and Adipokines. Curr Osteoporos Rep. 2020;18(4):388-400.
15. Huh JY. The role of exercise-induced myokines in regulating metabolism. Archives of pharmacal research. 2018;41(1):14-29.
16. Leuchtmann AB, Adak V, Dilbaz S, Handschin C. The role of the skeletal muscle secretome in mediating endurance and resistance training adaptations. Frontiers in physiology. 2021;12:709807.
17. Kirk B, Feehan J, Lombardi G, Duque G. Muscle, bone, and fat crosstalk: the biological role of myokines, osteokines, and adipokines. Current osteoporosis reports. 2020;18(4):388-400.
18. Aryana IGPS, Hapsari AAAR, Kuswardhani RAT. Myokine regulation as marker of sarcopenia in elderly. Molecular and Cellular Biomedical Sciences. 2018;2(2):38-47.
19. Broholm C, Laye MJ, Brandt C, Vadalasetty R, Pilegaard H, Pedersen BK, et al. LIF is a contraction-induced myokine stimulating human myocyte proliferation. Journal of applied physiology. 2011;111(1):251-9.
20. Lafontan M, Berlan M, Galitzky J, Montastruc J-L. Alpha-2 adrenoceptors in lipolysis: α2 antagonists and lipid-mobilizing strategies. The American journal of clinical nutrition. 1992;55(1):219S-27S.
21. Polak J, Moro C, Bessière D, Hejnova J, Marques MA, Bajzova M, et al. Acute exposure to long-chain fatty acids impairs α2-adrenergic receptor-mediated antilipolysis in human adipose tissue. Journal of lipid research. 2007;48(10):2236-46.
22. Nowacka A, Śniegocka M, Śniegocki M, Ziółkowska E, Bożiłow D, Smuczyński W. Multifaced nature of Yohimbine—a promising therapeutic potential or a risk? International Journal of Molecular Sciences. 2024;25(23):12856.
23. Grossman E, Rosenthal T, Peleg E, Holmes C, Goldstein DS. Oral yohimbine increases blood pressure and sympathetic nervous outflow in hypertensive patients. Journal of cardiovascular pharmacology. 1993;22(1):22-6.
24. Huh JY. The role of exercise-induced myokines in regulating metabolism. Arch Pharm Res. 2018;41(1):14-29.
25. Broholm C, Laye MJ, Brandt C, Vadalasetty R, Pilegaard H, Pedersen BK, et al. LIF is a contraction-induced myokine stimulating human myocyte proliferation. J Appl Physiol (1985). 2011;111(1):251-9.
26. Leuchtmann AB, Adak V, Dilbaz S, Handschin C. The Role of the Skeletal Muscle Secretome in Mediating Endurance and Resistance Training Adaptations. Front Physiol. 2021;12:709807.
27. McCarty MF. Pre-exercise administration of yohimbine may enhance the efficacy of exercise training as a fat loss strategy by boosting lipolysis. Med Hypotheses. 2002;58(6):491-5.
28. Barnes ME, Cowan CR, Boag LE, Hill JG, Jones ML, Nixon KM, et al. Effects of acute yohimbine hydrochloride supplementation on repeated supramaximal sprint performance. International journal of environmental research and public health. 2022;19(3):1316.
29. Haixu H, Yujun L, Xina H, Weidong S. Verification and Comparison of Running Assessment Methods for Male University Students' Aerobic Capacity/Cardioresp-iratory Fitness. Journal of Chengdu Sport University. 2019;45(5):115-21.
30. García-Pallarés J, Izquierdo M. Strategies to optimize concurrent training of strength and aerobic fitness for rowing and canoeing. Sports Medicine. 2011;41(4):329-43.
31. Liu Y, Dong G, Zhao X, Huang Z, Li P, Zhang H. Post-exercise Effects and Long-Term Training Adaptations of Hormone Sensitive Lipase Lipolysis Induced by High-Intensity Interval Training in Adipose Tissue of Mice. Front Physiol. 2020;11:535722.
32. Boutcher SH. High-intensity intermittent exercise and fat loss. J Obes. 2011;2011:868305.
33. O'Donoghue G, Blake C, Cunningham C, Lennon O, Perrotta C. What exercise prescription is optimal to improve body composition and cardiorespiratory fitness in adults living with obesity? A network meta‐analysis. Obesity Reviews. 2021;22(2):e13137.
34. Lee MJ-C, Ballantyne JK, Chagolla J, Hopkins WG, Fyfe JJ, Phillips SM, et al. Order of same-day concurrent training influences some indices of power development, but not strength, lean mass, or aerobic fitness in healthy, moderately-active men after 9 weeks of training. PLoS One. 2020;15(5):e0233134.
35. Tam SW, Worcel M, Wyllie M. Yohimbine: a clinical review. Pharmacology & therapeutics. 2001;91(3):215-43.
36. Johnson W, Landry G. Nutritional supplements: fact vs. fiction. Adolescent Medicine (Philadelphia, Pa). 1998;9(3):501-13, vi.
37. Iciek M, Górny M, Kotańska M, Bilska-Wilkosz A, Kaczor-Kamińska M, Zagajewski J. Yohimbine alleviates oxidative stress and suppresses aerobic cysteine metabolism elevated in the rat liver of high-fat diet-fed rats. Molecules. 2023;28(5):2025.
38. Ostojic SM. Yohimbine: the effects on body composition and exercise performance in soccer players. Research in Sports Medicine. 2006;14(4):289-99.
39. Poulisse C, Wheeldon L, Limachya R, Mazaheri A, Segaert K. The oscillatory mechanisms associated with syntactic binding in healthy ageing. Neuropsychologia. 2020;146:107523.
40. Beattie MC, Maldonado-Devincci AM, Porcu P, O'Buckley TK, Daunais JB, Grant KA, et al. Voluntary ethanol consumption reduces GABAergic neuroactive steroid (3α,5α)3-droxypregnan-20-one (3α,5α-THP) in the amygdala of the cynomolgus monkey. Addict Biol. 2017;22(2):318-30.