TESTOSTERONE AND PHYSICAL ACTIVITY: A REVIEW OF HORMONAL VARIABILITY IN SEDENTARY AND ACTIVE MEN
Abstract
Introduction and Purpose: Testosterone (T) is the main androgenic-anabolic hormone in men, playing a vital role in reproductive function, muscle and bone maintenance, mood regulation, and metabolic health. Its levels are dynamic and modulated by both intrinsic and extrinsic factors, notably physical activity. While sedentary behaviour is associated with age-related hormonal decline, various forms of exercise may induce either beneficial or adverse endocrine adaptations. The purpose of this review is to analyze how different types of physical activity—and inactivity—affect T levels in adult men, and to explore the physiological and behavioural modulators of these responses.
Materials and Methods: A thorough review of the literature available on PubMed and Google Scholar databases was conducted using the following keywords: “testosterone”, “testosterone levels”, “physical activity”, “sedentary”, “resistance training”, “endurance training”, “testosterone in athletes”, “overtraining syndrome”, and “exercise-hypogonadal male condition”. Peer-reviewed studies published between 1987 and 2025 were included, with a focus on both clinical and physiological investigations examining acute and chronic T responses to various forms of physical activity in adult males. Special attention was given to studies addressing modulating factors such as age, energy availability, circadian rhythms, stress, and sleep quality.
Summary and Conclusions: Resistance training tends to acutely elevate and chronically sustain T concentrations. In contrast, prolonged endurance training may lead to suppressed baseline testosterone – EHMC. Factors like low energy availability, stress, and aging further influence hormonal patterns. Recognizing these variations is essential for clinicians, coaches, and researchers to properly interpret T data and avoid unnecessary medical interventions.
References
Touitou Y, Haus E. Alterations with aging of the endocrine and neuroendocrine circadian system in humans. Chronobiol Int. 2000;17(3):369-90.
Ho CK. Testosterone testing in adult males. Malays J Pathol. 2011;33(2):71-81.
LD Hayes, GF Bickerstaff, JS Baker. Interactions of cortisol, testosterone, and resistance training: influence of circadian rhythms - PubMed. Chronobiology international. 2010 Jun;27(4).
DM Kelly, TH Jones. Testosterone: a metabolic hormone in health and disease - PubMed. The Journal of endocrinology. 04/29/2013;217(3).
Traczyk WZ. Fizjologia człowieka z elementami fizjologii stosowanej i klinicznej. Warszawa: PZWL Wydawnictwo Lekarskie; 2015. 977 p.
Florini JR. Hormonal control of muscle growth. Muscle Nerve. 1987;10(7):577-98.
Vermeulen A, Verdonck L, Kaufman JM. A critical evaluation of simple methods for the estimation of free testosterone in serum. J Clin Endocrinol Metab. 1999;84(10):3666-72.
Diver MJ, Clinical Scince Reviews Committee of the Association for Clinical B. Analytical and physiological factors affecting the interpretation of serum testosterone concentration in men. Ann Clin Biochem. 2006;43(Pt 1):3-12.
Hisasue S. Contemporary perspective and management of testosterone deficiency: Modifiable factors and variable management. Int J Urol. 2015;22(12):1084-95.
PM Oskui, et al. Testosterone and the cardiovascular system: a comprehensive review of the clinical literature - PubMed. Journal of the American Heart Association. 11/15/2013;2(6).
Cunningham GR, Matsumoto AM, Swerdloff R. Low Testosterone and Men’s Health. The Journal of Clinical Endocrinology & Metabolism. 2004/05/01;89(5).
Shores MM, Smith NL, Forsberg CW, Anawalt BD, Matsumoto AM. Testosterone treatment and mortality in men with low testosterone levels. J Clin Endocrinol Metab. 2012;97(6):2050-8.
M Zitzmann. Testosterone and the brain - PubMed. The aging male : the official journal of the International Society for the Study of the Aging Male. 2006 Dec;9(4).
R Riachy, K McKinney, DR Tuvdendorj. Various Factors May Modulate the Effect of Exercise on Testosterone Levels in Men - PubMed. Journal of functional morphology and kinesiology. 11/07/2020;5(4).
M Dote-Montero, et al. Acute effect of HIIT on testosterone and cortisol levels in healthy individuals: A systematic review and meta-analysis - PubMed. Scandinavian journal of medicine & science in sports. 2021 Sep;31(9).
AC Hackney, AW Moore, KK Brownlee. Testosterone and endurance exercise: development of the "exercise-hypogonadal male condition" - PubMed. Acta physiologica Hungarica. 2005;92(2).
DJ Green, et al. Comparing the Impacts of Testosterone and Exercise on Lean Body Mass, Strength and Aerobic Fitness in Aging Men - PubMed. Sports medicine - open. 04/02/2024;10(1).
AC Hackney. Hypogonadism in Exercising Males: Dysfunction or Adaptive-Regulatory Adjustment? - PubMed. Frontiers in endocrinology. 01/31/2020;11.
RI Wood, SJ Stanton. Testosterone and sport: current perspectives - PubMed. Hormones and behavior. 2012 Jan;61(1).
Kumagai H, Zempo-Miyaki A, Yoshikawa T, Tsujimoto T, Tanaka K, Maeda S. Lifestyle modification increases serum testosterone level and decrease central blood pressure in overweight and obese men. Endocrine Journal. 2015;62(5).
V Cinar, et al. Effects of magnesium supplementation on testosterone levels of athletes and sedentary subjects at rest and after exhaustion. Biological Trace Element Research. 2011;140(1).
Zouhal H, Jayavel A, Parasuraman K, Hayes LD, Tourny C, Rhibi F, et al. Effects of Exercise Training on Anabolic and Catabolic Hormones with Advanced Age: A Systematic Review. Sports Medicine 2021 52:6. 2021-12-22;52(6).
DC Cumming, GD Wheeler, EM McColl. The effects of exercise on reproductive function in men - PubMed. Sports medicine (Auckland, NZ). 1989 Jan;7(1).
WJ Kraemer, NA Ratamess. Hormonal responses and adaptations to resistance exercise and training - PubMed. Sports medicine (Auckland, NZ). 2005;35(4).
M Henselmans, BJ Schoenfeld. The effect of inter-set rest intervals on resistance exercise-induced muscle hypertrophy - PubMed. Sports medicine (Auckland, NZ). 2014 Dec;44(12).
Hakkinen K. Neuromuscular and hormonal adaptations during strength and power training. A review. J Sports Med Phys Fitness. 1989;29(1):9-26.
AC Hackney. Endurance exercise training and reproductive endocrine dysfunction in men: alterations in the hypothalamic-pituitary-testicular axis - PubMed. Current pharmaceutical design. 2001 Mar;7(4).
Lucia A, Chicharro JL, Perez M, Serratosa L, Bandres F, Legido JC. Reproductive function in male endurance athletes: sperm analysis and hormonal profile. J Appl Physiol (1985). 1996;81(6):2627-36.
L Maïmoun, et al. Testosterone is significantly reduced in endurance athletes without impact on bone mineral density - PubMed. Hormone research. 2003;59(6).
AC Hackney. Endurance training and testosterone levels - PubMed. Sports medicine (Auckland, NZ). 1989 Aug;8(2).
AC Hackney. The male reproductive system and endurance exercise - PubMed. Medicine and science in sports and exercise. 1996 Feb;28(2).
A Urhausen, H Gabriel, W Kindermann. Blood hormones as markers of training stress and overtraining - PubMed. Sports medicine (Auckland, NZ). 1995 Oct;20(4).
A Lucia, J Hoyos, JL Cicharro. Physiology of professional road cycling - PubMed. Sports medicine (Auckland, NZ). 2001;31(5).
Cadegiani FA, Kater CE. Body composition, metabolism, sleep, psychological and eating patterns of overtraining syndrome: Results of the EROS study (EROS-PROFILE). J Sports Sci. 2018;36(16):1902-10.
Kraemer WJ, Volek JS, Bush JA, Putukian M, Sebastianelli WJ. Hormonal responses to consecutive days of heavy-resistance exercise with or without nutritional supplementation. J Appl Physiol (1985). 1998;85(4):1544-55.
WJ Kraemer, et al. Endogenous anabolic hormonal and growth factor responses to heavy resistance exercise in males and females - PubMed. International journal of sports medicine. 1991 Apr;12(2).
Hakkinen K, Pakarinen A, Alen M, Kauhanen H, Komi PV. Relationships between training volume, physical performance capacity, and serum hormone concentrations during prolonged training in elite weight lifters. Int J Sports Med. 1987;8 Suppl 1:61-5.
Kraemer WJ, Häkkinen K, Newton RU, Nindl BC, Volek JS, McCormick M, et al. Effects of heavy-resistance training on hormonal response patterns in younger vs. older men. Journal of Applied Physiology. 1999 Sep 01.
Morton RW, Oikawa SY, Wavell CG, Mazara N, McGlory C, Quadrilatero J, et al. Neither load nor systemic hormones determine resistance training-mediated hypertrophy or strength gains in resistance-trained young men. Journal of Applied Physiology. 2016 May 12;121(1).
Kamarauskas P, Conte D. Changes in salivary markers during basketball long-term and short-term training periods: a systematic review - PubMed. Biology of sport. 2022 Sep;39(3).
K Saidi et al. Hematology, Hormones, Inflammation, and Muscle Damage in Elite and Professional Soccer Players: A Systematic Review with Implications for Exercise - PubMed. Sports medicine (Auckland, NZ). 2021 Dec;51(12).
Kamarauskas P, Conte D. The effect of basketball matches on salivary markers: a systematic review - PubMed. Biology of sport. 2022 Oct;39(4).
M Slimani. Hormonal responses to striking combat sports competition: a systematic review and meta-analysis - PubMed. Biology of sport. 2018 Jun;35(2).
Cadegiani FA, Kater CE. Basal Hormones and Biochemical Markers as Predictors of Overtraining Syndrome in Male Athletes: The EROS-BASAL Study. J Athl Train. 2019;54(8):906-14.
A Urhausen, W Kindermann. Diagnosis of overtraining: what tools do we have? - PubMed. Sports medicine (Auckland, NZ). 2002;32(2).
FA Cadeigiani, CE Kater. Novel causes and consequences of overtraining syndrome: the EROS-DISRUPTORS study - PubMed. BMC sports science, medicine & rehabilitation. 09/18/2019;11(1).
Fry AC, Kraemer WJ, Ramsey LT. Pituitary-adrenal-gonadal responses to high-intensity resistance exercise overtraining. J Appl Physiol (1985). 1998;85(6):2352-9.
Xiao W, Chen P, Dong J. Effects of overtraining on skeletal muscle growth and gene expression. Int J Sports Med. 2012;33(10):846-53.
AC Hackney. Effects of endurance exercise on the reproductive system of men: the "exercise-hypogonadal male condition" - PubMed. Journal of endocrinological investigation. 2008 Oct;31(10).
KJ Elliot-Sale, et al. Endocrine Effects of Relative Energy Deficiency in Sport - PubMed. International journal of sport nutrition and exercise metabolism. 07/01/2018;28(4).
KV Casto, DA Edwards. Testosterone, cortisol, and human competition - PubMed. Hormones and behavior. 2016 Jun;82.
DR Hooper, AS Tenforde, AC Hackney. Treating exercise-associated low testosterone and its related symptoms - PubMed. The Physician and sportsmedicine. 2018 Nov;46(4).
BJ Schoenfeld, et al. Alterations in Measures of Body Composition, Neuromuscular Performance, Hormonal Levels, Physiological Adaptations, and Psychometric Outcomes during Preparation for Physique Competition: A Systematic Review of Case Studies - PubMed. Journal of functional morphology and kinesiology. 05/08/2023;8(2).
B Lindsey, Y Shaul, J Martin. Salivary biomarkers of tactical athlete readiness: A systematic review - PubMed. PloS one. 04/29/2025;20(4).
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