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Physical Activity, Health and Exercise

Autonomic response to a short and long bout of high-intensity functional training

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Pages 1872-1879 | Accepted 01 Jan 2018, Published online: 08 Jan 2018

References

  • Albert, C. M., Mittleman, M. A., Chae, C. U., Lee, I.-M., Hennekens, C. H., & Manson, J. E. (2000). Triggering of sudden death from cardiac causes by vigorous exertion. New England Journal of Medicine, 343(19), 1355–1361.
  • Bahr, R., Høstmark, A. T., Newsholme, E. A., Grønnerød, O., & Sejersted, O. M. (1991). Effect of exercise on recovery changes in plasma levels of FFA, glycerol, glucose and catecholamines. Acta Physiologica Scandinavica, 143(1), 105–115.
  • Borresen, J., & Lambert, M. I. (2008). Autonomic control of heart rate during and after exercise: Measurements and implications for monitoring training status. Sports Medicine (Auckland, N.Z.), 38(8), 633–646.
  • Børsheim, E., Knardahl, S., Høstmark, A. T., & Bahr, R. (1998). Adrenergic control of post-exercise metabolism. Acta Physiologica Scandinavica, 162(3), 313–323.
  • Buchheit, M., Papelier, Y., Laursen, P. B., & Ahmaidi, S. (2007). Noninvasive assessment of cardiac parasympathetic function: Postexercise heart rate recovery or heart rate variability? American Journal of Physiology. Heart and Circulatory Physiology, 293(1), H8–H10.
  • Chen, J.-L., Yeh, D.-P., Lee, J.-P., Chen, C.-Y., Huang, C.-Y., Lee, S.-D., … Kuo, C.-H. (2011). Parasympathetic nervous activity mirrors recovery status in weightlifting performance after training. Journal of Strength and Conditioning Research, 25(6), 1546–1552.
  • Dill, D. B., & Costill, D. L. (1974). Calculation of percentage changes in volumes of blood, plasma, and red cells in dehydration. Journal of Applied Physiology, 37(2), 247–248.
  • Eijsvogels, T. M. H., Fernandez, A. B., & Thompson, P. D. (2016). Are there deleterious cardiac effects of acute and chronic endurance exercise? Physiological Reviews, 96(1), 99–125.
  • Enoka, R. M., & Stuart, D. G. (1984). Henneman’s “size principle”: Current issues. Trends in Neurosciences, 7(7), 226–228.
  • Franciosi, S., Perry, F. K. G., Roston, T. M., Armstrong, K. R., Claydon, V. E., & Sanatani, S. (2017). The role of the autonomic nervous system in arrhythmias and sudden cardiac death. Autonomic Neuroscience, 205, 1–11.
  • Galbo, H., Christensen, N. J., & Holst, J. J. (1977). Catecholamines and pancreatic hormones during autonomic blockade in exercising man. Acta Physiologica Scandinavica, 101(4), 428–437.
  • Garber, C. E., Blissmer, B., Deschenes, M. R., Franklin, B. A., Lamonte, M. J., & Lee, I.-M.; American College of Sports Medicine. (2011). American College of Sports Medicine position stand. Quantity and quality of exercise for developing and maintaining cardiorespiratory, musculoskeletal, and neuromotor fitness in apparently healthy adults: Guidance for prescribing exercise. Medicine and Science in Sports and Exercise, 43(7), 1334–1359.
  • Gibala, M. J. (2007). High-intensity interval training: A time-efficient strategy for health promotion? Current Sports Medicine Reports, 6(4), 211–213.
  • Giles, D., Draper, N., & Neil, W. (2016). Validity of the Polar V800 heart rate monitor to measure RR intervals at rest. European Journal of Applied Physiology, 116(3), 563–571.
  • Heffernan, K. S., Kelly, E. E., Collier, S. R., & Fernhall, B. (2006). Cardiac autonomic modulation during recovery from acute endurance versus resistance exercise. European Journal of Cardiovascular Prevention & Rehabilitation, 13(1), 80–86.
  • Heinrich, K. M., Patel, P. M., O’Neal, J. L., & Heinrich, B. S. (2014). High-intensity compared to moderate-intensity training for exercise initiation, enjoyment, adherence, and intentions: An intervention study. BMC Public Health, 14, 789.
  • Kjaer, M., Christensen, N. J., Sonne, B., Richter, E. A., & Galbo, H. (1985). Effect of exercise on epinephrine turnover in trained and untrained male subjects. Journal of Applied Physiology, 59(4), 1061–1067.
  • Kliszczewicz, B., Buresh, B., Bechke, E., & Williamson, C. (2017). Metabolic biomarkers following a short and long bout of high-intensity functional training in recreationally trained men. Journal of Human Sport and Exercise, 12(3), 710–718.
  • Kliszczewicz, B., Esco, M. R., Quindry, J., Blessing, D., Oliver, G., Taylor, K., & Price, B. (2016). Autonomic responses to an acute bout of high-intensity body weight resistance exercise vs. treadmill running. Journal of Strength and Conditioning Research, 30(4), 1050–1058.
  • Malik, M. (1996). Heart rate variability: Standards of measurement, physiological interpretation and clinical use. Task Force of the European Society of Cardiology and the North American Society of Pacing and Electrophysiology. Circulation, 93(5), 1043–1065.
  • Mitchell, J. H., Kaufman, M. P., & Iwamoto, G. A. (1983). The exercise pressor reflex: Its cardiovascular effects, afferent mechanisms, and central pathways. Annual Review of Physiology, 45, 229–242.
  • Nakamura, F. Y., Pereira, L. A., Cal Abad, C. C., Cruz, I. F., Flatt, A. A., Esco, M. R., & Loturco, I. (2017). Adequacy of the ultra-short-term HRV to assess adaptive processes in youth female basketball players. Journal of Human Kinetics, 56, 73–80.
  • Paine, J., Uptgraft, J., & Wylie, R. (2010). CrossFit study (Special Report No. 0704–0188). Fort Leavenworth, KS: Command and General Staff College.
  • Parekh, A., & Lee, C. (2005). Heart rate variability after isocaloric exercise bouts of different intensities. Medicine and Science in Sports and Exercise, 37(4), 599–605.
  • Pichon, A. P., de Bisschop, C., Roulaud, M., Denjean, A., & Papelier, Y. (2004). Spectral analysis of heart rate variability during exercise in trained subjects. Medicine and Science in Sports and Exercise, 36(10), 1702–1708.
  • Quintana, D. S. (2017). Statistical considerations for reporting and planning heart rate variability case-control studies. Psychophysiology, 54(3), 344–349.
  • Seiler, S., Haugen, O., & Kuffel, E. (2007). Autonomic recovery after exercise in trained athletes: Intensity and duration effects. Medicine and Science in Sports and Exercise, 39(8), 1366–1373.
  • Spiering, B. A., Kraemer, W. J., Anderson, J. M., Armstrong, L. E., Nindl, B. C., Volek, J. S., & Maresh, C. M. (2008). Resistance exercise biology. Sports Medicine, 38(7), 527–540.
  • Stanley, J., Peake, J. M., & Buchheit, M. (2013). Cardiac parasympathetic reactivation following exercise: Implications for training prescription. Sports Medicine, 43(12), 1259–1277.
  • Tarvainen, M. P., Niskanen, J.-P., Lipponen, J. A., Ranta-Aho, P. O., & Karjalainen, P. A. (2014). Kubios HRV – Heart rate variability analysis software. Computer Methods and Programs in Biomedicine, 113(1), 210–220.

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