Impacto de los distintos tipos de entrenamiento HIIT sobre las adaptaciones agudas y crónicas de la variabilidad de la frecuencia cardíaca en ciclismo : una revisión sistemática.
| dc.contributor.advisor | Fernández Ortega, Jairo Alejandro | spa |
| dc.contributor.author | Peña Giraldo, Mauricio Vladimir | spa |
| dc.date.accessioned | 2026-02-04T21:24:17Z | |
| dc.date.available | 2026-02-04T21:24:17Z | |
| dc.date.issued | 2025 | |
| dc.description.abstract | En esta revisión sistemática se analizan los efectos de los entrenamientos interválicos de alta intensidad, clasificados según su predominio energético, sobre la variabilidad de la frecuencia cardíaca, a partir de un proceso metodológico riguroso orientado a garantizar la calidad de la evidencia. | spa |
| dc.description.abstractenglish | In this systematic review, we analyze the effects of high-intensity interval training, classified according to its predominant energy system, on heart rate variability, using a rigorous methodological process to ensure the quality of the evidence. | eng |
| dc.description.degreelevel | Maestría | spa |
| dc.description.degreename | Magister en Ciencias del Deporte y la Actividad Física | spa |
| dc.description.researcharea | Deporte y rendimiento | |
| dc.format.mimetype | application/pdf | spa |
| dc.identifier.instname | instname:Universidad Pedagógica Nacional | spa |
| dc.identifier.reponame | reponame: Repositorio Institucional UPN | spa |
| dc.identifier.repourl | repourl: http://repositorio.pedagogica.edu.co/ | |
| dc.identifier.repourl | repourl: http://repositorio.pedagogica.edu.co/ | |
| dc.identifier.uri | http://hdl.handle.net/20.500.12209/21855 | |
| dc.language.iso | es | |
| dc.publisher | Universidad Pedagógica Nacional | spa |
| dc.publisher.faculty | Facultad de Educación Física | spa |
| dc.publisher.program | Maestría en Ciencias del Deporte y la Actividad Física | spa |
| dc.relation.references | Abreu, R. M. de, Rehder-Santos, P., Simões, R. P., & Catai, A. M. (2019). Can high-intensity interval training change cardiac autonomic control? A systematic review. Brazilian Journal of Physical Therapy, 23(4), 279–289. https://doi.org/10.1016/j.bjpt.2018.09.010 | |
| dc.relation.references | Agorastos, A., Mansueto, A. C., Hager, T., Pappi, E., Gardikioti, A., & Stiedl, O. (2023). Heart rate variability as a translational dynamic biomarker of altered autonomic function in health and psychiatric disease. Biomedicines, 11(6), 1591. https://doi.org/10.3390/biomedicines11061591 | |
| dc.relation.references | Aiba, I. (2020). Adrenergic activation of cardiac preganglionic neurons in the nucleus ambiguus. The FASEB Journal, 34(S1), Abstract 00309. https://doi.org/10.1096/fasebj.2020.34.s1.00309 | |
| dc.relation.references | Alansare, A., Alford, K., Lee, S., Church, T., & Jung, H. C. (2018). The effects of high-intensity interval training vs. moderate-intensity continuous training on heart rate variability in physically inactive adults. International Journal of Environmental Research and Public Health, 15(7), 1508. https://doi.org/10.3390/ijerph15071508 | |
| dc.relation.references | Alfonso, C., & Capdevila, L. (2022). Heart rate variability, mood and performance: A pilot study on the interrelation of these variables in amateur road cyclists. PeerJ, 10, e13094. https://doi.org/10.7717/peerj.13094 | |
| dc.relation.references | Amekran, Y., & El Hangouche, A. J. (2024). Effects of exercise training on heart rate variability in healthy adults: A systematic review and meta-analysis of randomized controlled trials. Cureus, 16(6), e62465. https://doi.org/10.7759/cureus.62465 | |
| dc.relation.references | Andrade, D. C., Arce-Álvarez, A., Parada, F., Uribe, S., Gordillo, P., Dupre, A., Ojeda, C., Palumbo, F., Castro, G., Vasquez-Muñoz, M., Del Rio, R., Ramírez-Campillo, R., & Izquierdo, M. (2020). Acute effects of high-intensity interval training session and endurance exercise on pulmonary function and cardiorespiratory coupling. Physiological Reports, 8(15), e14455. https://doi.org/10.14814/phy2.14455 | |
| dc.relation.references | Argenziano, M., Tiscornia, G., Moretta, R., Amorena, C. E., & García Gras, E. (2014). Control hormonal de las corrientes de la fase 1 del potencial de acción cardíaco en el síndrome de Brugada. Revista Argentina de Cardiología, 82(4), 310–315. https://doi.org/10.7775/rac.es.v82.i4.3885 | |
| dc.relation.references | Aubert, A. E., Seps, B., & Beckers, F. (2003). Heart rate variability in athletes. Sports Medicine, 33(12), 889–919. https://doi.org/10.2165/00007256-200333120-00003 | |
| dc.relation.references | Bellenger, C. R., Fuller, J. T., Thomson, R. L., Davison, K., Robertson, E. Y., & Buckley, J. D. (2016). Monitoring athletic training status through autonomic heart rate regulation: A systematic review and meta-analysis. Sports Medicine, 46(10), 1461–1486. https://doi.org/10.1007/s40279-016-0484-2 | |
| dc.relation.references | Berntson, G. G., Bigger, J. T., Eckberg, D. L., Grossman, P., Kaufmann, P. G., Malik, M., Nagaraja, H. N., Porges, S. W., Saul, J. P., Stone, P. H., & Van der Molen, M. W. (1997). Heart rate variability: Origins, methods, and interpretive caveats. Psychophysiology, 34(6), 623–648. https://doi.org/10.1111/j.1469-8986.1997.tb02140.x | |
| dc.relation.references | Besson, C., Baggish, A. L., Monteventi, P., Schmitt, L., Stucky, F., & Gremeaux, V. (2025). Assessing the clinical reliability of short-term heart rate variability: Insights from controlled dual-environment and dual-position measurements. Scientific Reports, 15, 5611. https://doi.org/10.1038/s41598-025-89892-3 | |
| dc.relation.references | Bond, B., Cockcroft, E. J., Williams, C. A., Harris, S., Gates, P. E., Jackman, S. R., Armstrong, N., & Barker, A. R. (2015). Two weeks of high-intensity interval training improves novel but not traditional cardiovascular disease risk factors in adolescents. American Journal of Physiology-Heart and Circulatory Physiology, 309(6), H1039–H1047. https://doi.org/10.1152/ajpheart.00360.2015 | |
| dc.relation.references | Bonilla, M. E. P., Pérez, J. Q., Monreal, M. R., & Lazalde, A. R. (2019). SimuCardi: Simulador de la electrofisiología del sistema de conducción cardiaco. Revista Electrónica de Didáctica en Educación Superior (REDES), (17). https://ojs.cbc.uba.ar/index.php/redes/article/view/2095 | |
| dc.relation.references | Borges, N. R., Reaburn, P. R., Doering, T. M., Argus, C. K., & Driller, M. W. (2017). Autonomic cardiovascular modulation in masters and young cyclists following high-intensity interval training. Clinical Autonomic Research, 27(2), 83–90. https://doi.org/10.1007/s10286-016- 0393-3 | |
| dc.relation.references | Boron, W. F., & Boulpaep, E. L. (2016). Medical physiology (3rd ed.). Elsevier. | |
| dc.relation.references | Bosquet, L., Merkari, S., Arvisais, D., & Aubert, A. E. (2008). Is heart rate a convenient tool to monitor over-reaching? A systematic review of the literature. British Journal of Sports Medicine, 42(9), 709–714. https://doi.org/10.1136/bjsm.2007.042200 Breuer, H. W., Skyschally, A., Schulz, R., Martin, C., Wehr, M., & Heusch, G. (199 | |
| dc.relation.references | Breuer, H. W., Skyschally, A., Schulz, R., Martin, C., Wehr, M., & Heusch, G. (1993). Heart rate variability and circulating catecholamine concentrations during steady-state exercise in healthy volunteers. British Heart Journal, 70(2), 144–149. https://doi.org/10.1136/hrt.70.2.144 | |
| dc.relation.references | Buchheit, M. (2014). Monitoring training status with HR measures: Do all roads lead to Rome? Frontiers in Physiology, 5, 73. https://doi.org/10.3389/fphys.2014.00073 | |
| dc.relation.references | Buchheit, M., Laursen, P. B., & Ahmaidi, S. (2007). Parasympathetic reactivation after repeated- sprint exercise. American Journal of Physiology-Heart and Circulatory Physiology, 293(1), H133–H141. https://doi.org/10.1152/ajpheart.00062.2007 | |
| dc.relation.references | Buchheit, M., & Laursen, P. B. (2013). High-intensity interval training, solutions to the programming puzzle: Part I—Cardiopulmonary emphasis. Sports Medicine, 43(5), 313– 338. https://doi.org/10.1007/s40279-013-0029-x | |
| dc.relation.references | Centre for Reviews and Dissemination. (2025). About PROSPERO: International prospective register of systematic reviews. University of York. Retrieved January 1, 2025, from https://www.crd.york.ac.uk/PROSPERO/#about | |
| dc.relation.references | Chalmers, I., Hedges, L. V., & Cooper, H. (2002). A brief history of research synthesis. Evaluation & the Health Professions, 25(1), 12–37. https://doi.org/10.1177/0163278702025001003 | |
| dc.relation.references | Coretti, M., Donatello, N. N., Bianco, G., & Cidral-Filho, F. J. (2025). An integrative review of the effects of high-intensity interval training on the autonomic nervous system. Sports Medicine and Health Science, 7(2), 77–84. https://doi.org/10.1016/j.smhs.2024.08.002 | |
| dc.relation.references | da Silva Lima, G., Savi, M. A., & Bessa, W. M. (2024). Adaptive control of cardiac rhythms. Scientific Reports, 14, 23284. https://doi.org/10.1038/s41598-024-74415-3 | |
| dc.relation.references | Deus, L. A., Sousa, C. V., Rosa, T. S., de Santana Filho, J. M., Santos, P. A., Barbosa, L. D., et al. (2019). Heart rate variability in middle-aged sprint and endurance athletes. Physiology & Behavior, 205, 39–43. https://doi.org/10.1016/j.physbeh.2019.03.008 | |
| dc.relation.references | Dusi, V., & Ardell, J. L. (2020). Brain–heart afferent–efferent traffic. In S. Govoni, P. Politi, & E. Vanoli (Eds.), Brain and heart dynamics (pp. 3–24). Springer. https://doi.org/10.1007/978-3-030-28008-6_2 | |
| dc.relation.references | El-Malahi, O., Mohajeri, D., Mincu, R., Bäuerle, A., Rothenaicher, K., Knuschke, R., … Lortz, J. (2024). Beneficial impacts of physical activity on heart rate variability: A systematic review and meta-analysis. PLOS ONE, 19(4), e0299793. https://doi.org/10.1371/journal.pone.0299793 | |
| dc.relation.references | Etxebarria, N., Anson, J. M., Pyne, D. B., & Ferguson, R. A. (2014). High-intensity cycle interval training improves cycling and running performance in triathletes. European Journal of Sport Science, 14(6), 521–529. https://doi.org/10.1080/17461391.2013.853841 | |
| dc.relation.references | Ferns, M. (2021). An inside job: Molecular determinants for postsynaptic localization of nicotinic acetylcholine receptors. Molecules, 26(11), 3065. https://doi.org/10.3390/molecules26113065 | |
| dc.relation.references | Ferrer, R., Castro, P., Lorencio, C., Monclou, J., Marcos-Neira, P., Ochagavía, A., … Zapata, L. (2024). Diez aspectos clave sobre el uso de la vasopresina en el paciente crítico. Medicina Intensiva. Advance online publication. https://doi.org/10.1016/j.medin.2024.07.008 | |
| dc.relation.references | Fitts, R. H. (2016). The role of acidosis in fatigue: Pro perspective. Medicine & Science in Sports & Exercise, 48(11), 2335–2338. https://doi.org/10.1249/MSS.0000000000001043 | |
| dc.relation.references | Flatt, A. A., Esco, M. R., Nakamura, F. Y., & Plews, D. J. (2017). Interpreting daily heart rate variability changes in collegiate female soccer players. Journal of Sports Medicine and Physical Fitness, 57(6), 907–915. https://doi.org/10.23736/S0022-4707.16.06322-2 | |
| dc.relation.references | Gaesser, G. A., & Angadi, S. S. (2011). High-intensity interval training for health and fitness: Can less be more? Journal of Applied Physiology, 111(6), 1540–1541. https://doi.org/10.1152/japplphysiol.01237.2011 | |
| dc.relation.references | Garavaglia, L., Gulich, D., Defeo, M. M., Mailland, J. T., & Irurzun, I. M. (2021). The effect of age on the heart rate variability of healthy subjects. PLOS ONE, 16(10), e0255894. https://doi.org/10.1371/journal.pone.0255894 | |
| dc.relation.references | Gaztañaga, L., Marchlinski, F. E., & Betensky, B. P. (2012). Mecanismos de las arritmias cardíacas. Revista Española de Cardiología, 65(2), 174–185. https://doi.org/10.1016/j.rec.2011.09.020 | |
| dc.relation.references | Gibala, M. J., & McGee, S. L. (2008). Metabolic adaptations to short-term high-intensity interval training: A little pain for a lot of gain? Exercise and Sport Sciences Reviews, 36(2), 58– 63. https://doi.org/10.1097/JES.0b013e318168ec1f | |
| dc.relation.references | Gibala, M. J., Little, J. P., MacDonald, M. J., & Hawley, J. A. (2012). Physiological adaptations to low-volume, high-intensity interval training in health and disease. The Journal of Physiology, 590(5), 1077–1084. https://doi.org/10.1113/jphysiol.2011.224725 | |
| dc.relation.references | Govoni, S., Politi, P., & Vanoli, E. (Eds.). (2020). Brain and heart dynamics. Springer. https://doi.org/10.1007/978-3-030-28008-6 | |
| dc.relation.references | Guiraud, T., Nigam, A., Gremeaux, V., Meyer, P., Juneau, M., & Bosquet, L. (2012). High- intensity interval training in cardiac rehabilitation. Sports Medicine, 42(7), 587–605. https://doi.org/10.2165/11631910-000000000-00000 | |
| dc.relation.references | Hall, J. E. (2011). Guyton and Hall textbook of medical physiology (12th ed.). Elsevier Saunders. | |
| dc.relation.references | Hebisz, P., Hebisz, R., & Jastrzębska, A. (2021). An attempt to predict changes in heart rate variability in the training intensification process among cyclists. International Journal of Environmental Research and Public Health, 18(14), 7636. https://doi.org/10.3390/ijerph18147636 | |
| dc.relation.references | Hebisz, R., Hebisz, P., Danek, N., Michalik, K., & Zatoń, M. (2022). Predicting changes in maximal oxygen uptake in response to polarized training (sprint interval training, high- intensity interval training, and endurance training) in mountain bike cyclists. The Journal of Strength & Conditioning Research, 36(6), 1726–1730. https://doi.org/10.1519/JSC.0000000000003619 | |
| dc.relation.references | Hebisz, R. G., Hebisz, P., & Zatoń, M. W. (2022). Heart rate variability after sprint interval training in cyclists and implications for assessing physical fatigue. The Journal of Strength & Conditioning Research, 36(2), 558–564. https://doi.org/10.1519/JSC.0000000000003549 | |
| dc.relation.references | Helgerud, J., Høydal, K., Wang, E., Karlsen, T., Berg, P., Bjerkaas, M., … Hoff, J. (2007). Aerobic high-intensity intervals improve VO₂max more than moderate training. Medicine & Science in Sports & Exercise, 39(4), 665–671. https://doi.org/10.1249/MSS.0b013e3180304570 | |
| dc.relation.references | Heydari, M., Boutcher, Y. N., & Boutcher, S. H. (2013). High-intensity intermittent exercise and cardiovascular and autonomic function. Clinical Autonomic Research, 23(1), 57–65. https://doi.org/10.1007/s10286-012-0179-1 | |
| dc.relation.references | Higgins, J. P. T. (Ed.). (2024). Cochrane handbook for systematic reviews of interventions (Version 6.5). Cochrane. https://training.cochrane.org/handbook | |
| dc.relation.references | Higgins, J. P. T., & Green, S. (Eds.). (2011). Cochrane handbook for systematic reviews of interventions (Version 5.1.0). The Cochrane Collaboration. https://handbook-5- 1.cochrane.org/ | |
| dc.relation.references | Higgins, J. P. T. (Ed.). (2023). Cochrane handbook for systematic reviews of interventions (Version 6.5). Cochrane. https://training.cochrane.org/handbook/current | |
| dc.relation.references | Higgins, J. P. T., & Green, S. (Eds.). (2011). Manual Cochrane de revisiones sistemáticas de intervenciones (Versión 5.1.0). The Cochrane Collaboration. https://es.cochrane.org/sites/es.cochrane.org/files/uploads/Manual_Cochrane_510_reduit. pdf | |
| dc.relation.references | Immanuel, S., Teferra, M. N., Baumert, M., & Bidargaddi, N. (2023). Heart rate variability for evaluating psychological stress changes in healthy adults: A scoping review. Neuropsychobiology, 82(4), 187–202. https://doi.org/10.1159/000530376 | |
| dc.relation.references | Joanna Briggs Institute. (2024). Manual del JBI para la síntesis de la evidencia. Joanna Briggs Institute. https://jbi-global.atlassian.net/wiki/spaces/MDJPLSDLE/pages/316539446 | |
| dc.relation.references | Kabbani, N., & Nichols, R. (2018). Beyond the channel: Metabotropic signaling by nicotinic receptors. Trends in Pharmacological Sciences, 39(4), 354–366. https://doi.org/10.1016/j.tips.2018.01.002 | |
| dc.relation.references | Karim, S., Chahal, A., Khanji, M. Y., Petersen, S. E., & Somers, V. K. (2023). Autonomic cardiovascular control in health and disease. Comprehensive Physiology, 13(2), 4493– 4511. https://doi.org/10.1002/cphy.c210041 | |
| dc.relation.references | Kaufmann, S. G., Westenbroek, R., Maass, A., Lange, V., Renner, A., Wischmeyer, E., … Maier, S. K. (2013). Distribution and function of sodium channel subtypes in human atrial myocardium. Journal of Molecular and Cellular Cardiology, 61, 133–141. https://doi.org/10.1016/j.yjmcc.2013.05.006 | |
| dc.relation.references | Kilpatrick, M. W., Jung, M. E., & Little, J. P. (2014). High-intensity interval training: A review of physiological and psychological responses. ACSM’s Health & Fitness Journal, 18(5), 11– 16. https://doi.org/10.1249/FIT.0000000000000067 (Lippincott) | |
| dc.relation.references | Kiviniemi, A. M., Tulppo, M. P., Eskelinen, J. J., Savolainen, A. M., Kapanen, J., Heinonen, I. H. A., Hautala, A. J., Hannukainen, J. C., & Kalliokoski, K. K. (2015). Autonomic function predicts fitness response to short-term high-intensity interval training. International Journal of Sports Medicine, 36(11), 915–921. https://doi.org/10.1055/s-0035-1549854 | |
| dc.relation.references | Kiviniemi, A. M., Tulppo, M. P., Eskelinen, J. J., Savolainen, A. M., Kapanen, J., Heinonen, I. H. A., Huikuri, H. V., Hannukainen, J. C., & Kalliokoski, K. K. (2014). Cardiac autonomic function and high-intensity interval training in middle-age men. Medicine & Science in Sports & Exercise, 46(10), 1960–1967. https://doi.org/10.1249/MSS.0000000000000307 | |
| dc.relation.references | Kemp, A. H., Quintana, D. S., Kuhnert, R.-L., Griffiths, K., Hickie, I. B., & Guastella, A. J. (2012). Oxytocin increases heart rate variability in humans at rest: A randomized controlled trial. PLOS ONE, 7(8), e44014. https://doi.org/10.1371/journal.pone.0044014 | |
| dc.relation.references | La Rovere, M. T., Pinna, G. D., Hohnloser, S. H., Marcus, F. I., Mortara, A., Nohara, R., Bigger, J. T., Camm, A. J., Schwartz, P. J., & ATRAMI Investigators. (2001). Baroreflex sensitivity and heart rate variability in the identification of patients at risk for life- threatening arrhythmias: Implications for clinical trials. Circulation, 103(16), 2072–2077. https://doi.org/10.1161/01.CIR.103.16.2072 | |
| dc.relation.references | Laursen, P. B., & Jenkins, D. G. (2002). The scientific basis for high-intensity interval training: Optimising training programmes and maximising performance in highly trained endurance athletes. Sports Medicine, 32(1), 53–73. https://doi.org/10.2165/00007256- 200232010-00003 | |
| dc.relation.references | Laursen, P. B., Shing, C. M., Peake, J. M., Coombes, J. S., & Jenkins, D. G. (2002). Interval training program optimization in highly trained endurance cyclists. Medicine & Science in Sports & Exercise, 34(11), 1801–1807. https://doi.org/10.1097/00005768-200211000- 00017 | |
| dc.relation.references | Leal-Menezes, R., Rodrigues-Krause, J., dos Santos, G. C., do Nascimento Queiroz, J., da Silva, C. S., Umpierre, D., & Reischak-Oliveira, Á. (2025). High-intensity interval aerobic exercise delays recovery from heart rate variability: A systematic review with meta- analysis. Clinical Autonomic Research, 35, 365–379. https://doi.org/10.1007/s10286-024- 01103-7 | |
| dc.relation.references | Weissman, B., Leicht, A. S., Allen, G. D., & Hoey, A. J. (2009). Modulation of heart rate variability by estrogen in young women undergoing induction of ovulation. European Journal of Applied Physiology, 105(3), 381–386. https://doi.org/10.1007/s00421-008- 0914-4 | |
| dc.relation.references | Leinveber, P., Halámek, J., Curila, K., Prinzen, F. W., Lipoldová, J., Matějková, M., & Jurák, P. (2024). Ultra-high-frequency ECG volumetric and negative derivative epicardial ventricular electrical activation pattern. Scientific Reports, 14, 25789. https://doi.org/10.1038/s41598-024-55789-w | |
| dc.relation.references | Le Meur, Y., Pichon, A., Schaal, K., Schmitt, L., Louis, J., Gueneron, J., Vidal, P.-P., & Hausswirth, C. (2013). Evidence of parasympathetic hyperactivity in functionally overreached athletes. Medicine & Science in Sports & Exercise, 45(11), 2061–2071. https://doi.org/10.1249/MSS.0b013e3182980125 | |
| dc.relation.references | Gillen, J. B., & Gibala, M. J. (2014). Is high-intensity interval training a time-efficient exercise strategy to improve health and fitness? Applied Physiology, Nutrition, and Metabolism, 39(3), 409–412. https://doi.org/10.1139/apnm-2013-0187 | |
| dc.relation.references | Makivić, B., Djordjević Nikić, M., & Willis, M. S. (2013). Heart rate variability (HRV) as a tool for diagnostic and monitoring performance in sport and physical activities. Journal of Exercise Physiology Online, 16(3), 103–131. ttps://www.asep.org/asep/asep/JEPonlineJUNE2013_Willis.doc | |
| dc.relation.references | Malik, M. (1996). Heart rate variability. Annals of Noninvasive Electrocardiology, 1(2), 151– 181. https://doi.org/10.1111/j.1542-474X.1996.tb00275.x | |
| dc.relation.references | Mannozzi, J., Massoud, L., Stavres, J., Al-Hassan, M.-H., & O’Leary, D. S. (2024). Altered autonomic function in metabolic syndrome: Interactive effects of multiple components. Journal of Clinical Medicine, 13(3), 895. https://doi.org/10.3390/jcm13030895 | |
| dc.relation.references | Manterola, C., Astudillo, P., Arias, E., Claros, N., & Grupo MINCIR. (2013). Revisiones sistemáticas de la literatura: Qué se debe saber acerca de ellas. Cirugía Española, 91(3), 149–155. https://doi.org/10.1016/j.ciresp.2011.07.009 | |
| dc.relation.references | McCraty, R., & Shaffer, F. (2015). Heart rate variability: New perspectives on physiological mechanisms, assessment of self-regulatory capacity, and health risk. Global Advances in Health and Medicine, 4(1), 46–61. https://doi.org/10.7453/gahmj.2014.073 | |
| dc.relation.references | Mesirca, P., Chemin, J., Barrère, C., Torre, E., Gallot, L., Monteil, A., ... Nargeot, J. (2024). Selective blockade of Cav1.2 (α1C) versus Cav1.3 (α1D) L-type calcium channels by the black mamba toxin calciseptine. Nature Communications, 15. https://doi.org/10.1038/s41467-023-43502-w | |
| dc.relation.references | Michael, S., Graham, K. S., & Davis, G. M. (2017). Cardiac autonomic responses during exercise and post-exercise recovery using heart rate variability and systolic time intervals—A review. Frontiers in Physiology, 8, 301. https://doi.org/10.3389/fphys.2017.00301 | |
| dc.relation.references | Moher, D., Liberati, A., Tetzlaff, J., Altman, D. G., & The PRISMA Group. (2009). Preferred reporting items for systematic reviews and meta-analyses: The PRISMA statement. PLoS Medicine, 6(7), e1000097. https://doi.org/10.1371/journal.pmed.1000097 | |
| dc.relation.references | Moreno, B., Muñoz, M., Cuéllar, J., Domancic, S., & Villanueva, J. (2018). Revisiones sistemáticas: Definición y nociones básicas. Revista Clínica de Periodoncia, Implantología y Rehabilitación Oral, 11(3), 184–186. https://doi.org/10.4067/S0719- 01072018000300184 | |
| dc.relation.references | Moseley, A. M., Elkins, M. R., van der Wees, P. J., & Pinheiro, M. B. (2020). Using research to guide practice: The Physiotherapy Evidence Database (PEDro). Brazilian Journal of Physical Therapy, 24(5), 384–391. https://doi.org/10.1016/j.bjpt.2020.06.003 | |
| dc.relation.references | Motiejunaite, J., Amar, L., & Vidal-Petiot, E. (2021). Adrenergic receptors and cardiovascular effects of catecholamines. Annales d’Endocrinologie, 82(3–4), 193–197. https://doi.org/10.1016/j.ando.2020.03.012 | |
| dc.relation.references | Murillo, M., Cabrera, J. A., Pizarro, G., & Sánchez-Quintana, D. (2011). Anatomía del tejido especializado de conducción cardiaco: Su interés en la cardiología intervencionista. Revista Iberoamericana de Arritmología, 1(2). https://doi.org/10.5031/V1I2.RIA10141 | |
| dc.relation.references | Nerbonne, J. M., & Kass, R. S. (2005). Molecular physiology of cardiac repolarization. Physiological Reviews, 85(4), 1205–1253. https://doi.org/10.1152/physrev.00002.2005 | |
| dc.relation.references | Nummela, A., Hynynen, E., Kaikkonen, P., & Rusko, H. (2016). High-intensity endurance training increases nocturnal heart rate variability in sedentary participants. Biology of Sport, 33(1), 7–13. https://doi.org/10.5604/20831862.1180171 | |
| dc.relation.references | Oliveira, J., Gentil, P., Naves, J. P., Souza Filho, L. F., Silva, L., Zamunér, A. R., de Lira, C. A., & Rebelo, A. (2022). Effects of high-intensity interval training versus sprint interval training on cardiac autonomic modulation in healthy women. International Journal of Environmental Research and Public Health, 19(19), 12863. https://doi.org/10.3390/ijerph191912863 | |
| dc.relation.references | Oliveira, J., Gentil, P., Naves, J. P., Souza Filho, L. F., Silva, L., Zamunér, A. R., de Lira, C. A., & Rebelo, A. (2022). Effects of high-intensity interval training versus sprint interval training on cardiac autonomic modulation in healthy women. International Journal of Environmental Research and Public Health, 19(19), 12863. https://doi.org/10.3390/ijerph191912863 | |
| dc.relation.references | Orini, M., van Duijvenboden, S., Young, W. J., Ramírez, J., Jones, A. R., Hughes, A. D., Tinker, A., Munroe, P. B., & Lambiase, P. D. (2023). Long-term association of ultra-short heart rate variability with cardiovascular events. Scientific Reports, 13(1), 18966. https://doi.org/10.1038/s41598-023-45988-2 | |
| dc.relation.references | Oskui, P. M., French, W. J., Herring, M. J., Mayeda, G. S., Burstein, S., & Kloner, R. A. (2013). Testosterone and the cardiovascular system: A comprehensive review of the clinical literature. Journal of the American Heart Association, 2(6), e000272. https://doi.org/10.1161/JAHA.113.000272 | |
| dc.relation.references | Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., et al. (2021). The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ, 372, n71. https://doi.org/10.1136/bmj.n71 | |
| dc.relation.references | Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., et al. (2021). Updating guidance for reporting systematic reviews: Development of the PRISMA 2020 statement. Journal of Clinical Epidemiology, 134, 103–112. https://doi.org/10.1016/j.jclinepi.2021.02.003 | |
| dc.relation.references | Page, M. J., Moher, D., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., et al. (2021). PRISMA 2020 explanation and elaboration: Updated guidance and exemplars for reporting systematic reviews. BMJ, 372, n160. https://doi.org/10.1136/bmj.n160 | |
| dc.relation.references | Perez, D. M. (2021). Current developments on the role of α1-adrenergic receptors in cognition, cardioprotection, and metabolism. Frontiers in Cell and Developmental Biology, 9, 652152. https://doi.org/10.3389/fcell.2021.652152 | |
| dc.relation.references | Perkins, S. E., Jelinek, H. F., Al-Aubaidy, H. A., & de Jong, B. (2017). Immediate and long-term effects of endurance and high-intensity interval exercise on linear and nonlinear heart rate variability. Journal of Science and Medicine in Sport, 20(3), 312–316. https://doi.org/10.1016/j.jsams.2016.08.009 | |
| dc.relation.references | Petrák, O., Krátká, Z., Holaj, R., Zítek, M., Nikrýnová, T. N., Klímová, J., et al. (2024). Cardiovascular complications in pheochromocytoma and paraganglioma: Does phenotype matter? Hypertension, 81(3), 595–603. https://doi.org/10.1161/HYPERTENSIONAHA.123.21902 | |
| dc.relation.references | Petticrew, M., & Roberts, H. (2006). Systematic reviews in the social sciences: A practical guide. Blackwell Publishing. https://doi.org/10.1002/9780470754887 | |
| dc.relation.references | Piras, A., Persiani, M., Damiani, N., Perazzolo, M., & Raffi, M. (2015). Peripheral heart action (PHA) training as a valid substitute to high-intensity interval training to improve resting cardiovascular changes and autonomic adaptation. European Journal of Applied Physiology, 115(4), 763–773. https://doi.org/10.1007/s00421-014-3057-9 | |
| dc.relation.references | Plews, D. J., Laursen, P. B., Kilding, A. E., & Buchheit, M. (2012). Heart rate variability in elite triathletes: Is variation in variability the key to effective training? A case comparison.European Journal of Applied Physiology, 112(11), 3729–3741. https://doi.org/10.1007/s00421-012-2354-4 | |
| dc.relation.references | Plews, D. J., Laursen, P. B., Stanley, J., Kilding, A. E., & Buchheit, M. (2013). Training adaptation and heart rate variability in elite endurance athletes: Opening the door to effective monitoring. Sports Medicine, 43(9), 773–781. https://doi.org/10.1007/s40279- 013-0071-8 | |
| dc.relation.references | Purssell, E., & McCrae, N. (2020). A brief history of the systematic review. In How to perform a systematic literature review: A guide for healthcare researchers, practitioners and students (pp. 5–17). Springer International Publishing. https://doi.org/10.1007/978-3-030-49672- 2_2 | |
| dc.relation.references | Pérez-Santos, I., Palomero-Gallagher, N., Zilles, K., & Cavada, C. (2021). Distribution of the noradrenaline innervation and adrenoceptors in the macaque monkey thalamus. Cerebral Cortex, 31(9), 4115–4139. https://doi.org/10.1093/cercor/bhab073 | |
| dc.relation.references | Ramesh, S., Wilton, S. B., Holroyd-Leduc, J. M., Turin, T. C., Sola, D. Y., & Ahmed, S. B. (2015). Testosterone is associated with the cardiovascular autonomic response to a stressor in healthy men. Clinical and Experimental Hypertension, 37(3), 184–191. https://doi.org/10.3109/10641963.2014.933966 | |
| dc.relation.references | Rico-González, M., Pino-Ortega, J., Clemente, F. M., & Los Arcos, A. (2022). Guidelines for performing systematic reviews in sports science. Biology of Sport, 39(2), 463–471. https://doi.org/10.5114/biolsport.2022.106386 | |
| dc.relation.references | Warren Rodríguez, M. (1999). Electrical impedance of normal and ischemic myocardium: Role on the genesis of ST segment changes and ventricular arrhythmias [Doctoral thesis, Universitat Autònoma de Barcelona]. TDX. http://hdl.handle.net/10803/3357 | |
| dc.relation.references | Rodríguez de Ávila, U. E., Fontanelle Araujo, J., & Leocadio-Miguel, M. A. (2018). Avances en psicobiología: Respuesta autonómica de la VFC y la dimensión global de la cognición humana. Duazary, 15(2), 125–128. https://doi.org/10.21676/2389783X.2124 | |
| dc.relation.references | Jérez-Escobar, J., & Martínez-Visbal, A. (2015). Rol de los receptores nicotínicos de acetilcolina en mecanismos de dolor. Revista Ciencias Biomédicas, 6(1), 118–129. https://doi.org/10.32997/rcb-2015-2990 | |
| dc.relation.references | Sainani, K. L., Borg, D. N., Caldwell, A. R., Butson, M. L., Tenan, M. S., Vickers, A. J., Vigotsky, A. D., Warmenhoven, J., Nguyen, R., Lohse, K. R., Knight, E. J., & Bargary, N. (2021). Call to increase statistical collaboration in sports science, sport and exercise medicine and sports physiotherapy. British Journal of Sports Medicine, 55(2), 118–122. https://doi.org/10.1136/bjsports-2020-102607 | |
| dc.relation.references | Schaun, G. Z., & Del Vecchio, F. B. (2018). High-intensity interval exercises’ acute impact on heart rate variability: Comparison between whole-body and cycle ergometer protocols. The Journal of Strength & Conditioning Research, 32(1), 223–229. https://doi.org/10.1519/JSC.0000000000001795 | |
| dc.relation.references | Seo, M.-W., Lee, S., & Jung, H. C. (2024). Impact of supra-maximal interval training vs. high- intensity interval training on cardiac auto-regulation response in physically active adults. European Journal of Applied Physiology, 124(6), 1771–1780. https://doi.org/10.1007/s00421-023-05402-1 | |
| dc.relation.references | Seo, M.-W., Park, T.-Y., & Jung, H. (2023). Sex differences in heart rate variability and vascular function following high-intensity interval training in young adults. Journal of Human Kinetics, 90, 89–100. https://doi.org/10.5114/jhk/170964 | |
| dc.relation.references | Schmalenberger, K. M., Eisenlohr-Moul, T. A., Jarczok, M. N., Eckstein, M., Schneider, E., Brenner, I. G., Duffy, K., Schweizer, S., Kiesner, J., Thayer, J. F., & Ditzen, B. (2020). Menstrual cycle changes in vagally mediated heart rate variability are associated with progesterone: Evidence from two within-person studies. Journal of Clinical Medicine, 9(3), 617. https://doi.org/10.3390/jcm9030617 | |
| dc.relation.references | Shaffer, F., & Ginsberg, J. P. (2017). An overview of heart rate variability metrics and norms. Frontiers in Public Health, 5, 258. https://doi.org/10.3389/fpubh.2017.00258 | |
| dc.relation.references | Orini, M., van Duijvenboden, S., Young, W. J., Ramírez, J., Jones, A. R., Hughes, A. D., Tinker, A., Munroe, P. B., & Lambiase, P. D. (2023). Long-term association of ultra-short heart rate variability with cardiovascular events. Scientific Reports, 13(1), 18966. https://doi.org/10.1038/s41598-023-45988-2 | |
| dc.relation.references | Shaffer, F., & Ginsberg, J. P. (2017b). An overview of heart rate variability metrics and norms. Frontiers in Public Health, 5, 258. https://doi.org/10.3389/fpubh.2017.00258 | |
| dc.relation.references | Shenoy, S., & Khandekar, P. (2020). A systematic review on the effect of high-intensity training on heart rate variability in sports professionals and healthy young adults. BLDE University Journal of Health Sciences, 5(2), 114–126. https://doi.org/10.4103/bjhs.bjhs_6_20 | |
| dc.relation.references | Silverman, M., Grove, D., & Upshaw, C. (2006). Why does the heart beat? The discovery of the electrical system of the heart. Circulation, 113(23), 2775–2781. https://doi.org/10.1161/CIRCULATIONAHA.106.616771 | |
| dc.relation.references | Solaro, N., Pagani, M., Spataro, A., & Lucini, D. (2023). Assessing the cardiac autonomic response to bicycle exercise in Olympic athletes with different loads of endurance training: new insights from statistical indicators based on multilevel exploratory factor analysis. Frontiers in physiology, 14, 1245310. https://doi.org/10.3389/fphys.2023.1245310 | |
| dc.relation.references | Stanley, J., Peake, J. M., & Buchheit, M. (2013). Cardiac parasympathetic reactivation following exercise: Implications for training prescription. Sports Medicine, 43(12), 1259–1277. https://doi.org/10.1007/s40279-013-0083-4 | |
| dc.relation.references | Starr, M., Chalmers, I., Clarke, M., & Oxman, A. D. (2009). The origins, evolution, and future of The Cochrane Database of Systematic Reviews. International Journal of Technology Assessment in Health Care, 25(S1), 182–195. https://doi.org/10.1017/S026646230909062X | |
| dc.relation.references | Storniolo, J. L., Correale, L., Buzzachera, C. F., & Peyré-Tartaruga, L. A. (2025). Editorial: New perspectives and insights on heart rate variability in exercise and sports. Frontiers in Sports and Active Living, 7, 1574087. https://doi.org/10.3389/fspor.2025.1574087 | |
| dc.relation.references | Stöggl, T. L., Strepp, T., Wiesinger, H.-P., & Haller, N. (2024). A training goal-oriented categorization model of high-intensity interval training. Frontiers in Physiology, 15, 1414307. https://doi.org/10.3389/fphys.2024.1414307 | |
| dc.relation.references | Sundas, A., Contreras, I., Navarro-Otano, J., Soler, J., Beneyto, A., & Vehi, J. (2025). Heart rate variability over the decades: A scoping review. PeerJ, 13, e19347. https://doi.org/10.7717/peerj.19347 | |
| dc.relation.references | Sung, J., Choi, Y.-H., Park, J.-B., Lee, J.-Y., & Kim, J.-Y. (2006). Metabolic syndrome is associated with delayed heart rate recovery after exercise. Journal of Korean Medical Science, 21(4), 621–626. https://doi.org/10.3346/jkms.2006.21.4.62 | |
| dc.relation.references | Thayer, J. F., Yamamoto, S. S., & Brosschot, J. F. (2010). The relationship of autonomic imbalance, heart rate variability and cardiovascular disease risk factors. International Journal of Cardiology, 141(2), 122–131. https://doi.org/10.1016/j.ijcard.2009.09.543 | |
| dc.relation.references | Thayer, J. F., Åhs, F., Fredrikson, M., Sollers, J. J., III, & Wager, T. D. (2012). A meta-analysis of heart rate variability and neuroimaging studies: Implications for heart rate variability as a marker of stress and health. Neuroscience & Biobehavioral Reviews, 36(2), 747–756. https://doi.org/10.1016/j.neubiorev.2011.11.009 | |
| dc.relation.references | Tiwari, R., Kumar, R., Malik, S., Raj, T., & Kumar, P. (2021). Analysis of heart rate variability and implication of different factors on heart rate variability. Current Cardiology Reviews, 17(5), e160721189770. https://doi.org/10.2174/1573403X17666210119125129 | |
| dc.relation.references | Urrútia, G., & Bonfill, X. (2010). Declaración PRISMA: Una propuesta para mejorar la publicación de revisiones sistemáticas y metanálisis. Medicina Clínica, 135(11), 507–511. https://doi.org/10.1016/j.medcli.2010.01.015 | |
| dc.relation.references | Vesterinen, V., Nummela, A., Heikura, I., Laine, T., Hynynen, E., Botella, J., & Häkkinen, K. (2016). Individual endurance training prescription with heart rate variability. Medicine & Science in Sports & Exercise, 48(7), 1347–1354. https://doi.org/10.1249/MSS.0000000000000910 | |
| dc.relation.references | Villeda-González, J. D., Gómez-Olivares, J., & Baiza-Gutman, L. A. (2024). New paradigms in the study of the cholinergic system and metabolic diseases: Acetyl- and butyrylcholinesterase. Journal of Cellular Physiology. Advance online publication. https://doi.org/10.1002/jcp.31274 | |
| dc.relation.references | White, D. W., & Raven, P. B. (2014). Autonomic neural control of heart rate during dynamic exercise: Revisited. The Journal of Physiology, 592(12), 2491–2500. https://doi.org/10.1113/jphysiol.2014.271858 | |
| dc.relation.references | Westerblad, H., Allen, D. G., & Lännergren, J. (2002). Muscle fatigue: Lactic acid or inorganic phosphate the major cause? News in Physiological Sciences, 17, 17–21. https://doi.org/10.1152/nips.01362.2001 | |
| dc.relation.references | Wilasrusmee, K., Sitticharoon, C., Maikaew, P., Pongwattanapakin, K., Chatree, S., Keadkraichaiwat, I., … Churintaraphan, M. (2024). Interplays between metabolic hormones, metabolic factors, kidney function parameters, and heart rate variability. Physiology, 39(S1), 541. https://doi.org/10.1152/physiol.2024.39.S1.541 | |
| dc.relation.references | World Health Organization. (2014). WHO handbook for guideline development (2nd ed.). World Health Organization. https://apps.who.int/iris/handle/10665/145714 | |
| dc.relation.references | Yang, F., Ma, Y., Liang, S., Shi, Y., & Wang, C. (2024). Effect of exercise modality on heart rate variability in adults: A systematic review and network meta-analysis. Reviews in Cardiovascular Medicine, 25(1), 9. https://doi.org/10.31083/j.rcm2501009 | |
| dc.relation.references | Yotti, R., Ripoll, C., Benito, Y., Catalina, M. V., Elízaga, J., Rincón, D., Fernández-Avilés, F., Bermejo, J., & Bañares, R. (2017). Left ventricular systolic function is associated with sympathetic nervous activity and markers of inflammation in cirrhosis. Hepatology, 65(6), 2019–2030. https://doi.org/10.1002/hep.29104 | |
| dc.relation.references | Yue, T., Li, F., & Wang, Y. (2025). Effects of high-intensity interval training and moderate- intensity continuous training on the functioning of attentional networks and heart rate variability in healthy young adults. Journal of Exercise Science & Fitness, 23(3), 203– 212. https://doi.org/10.1016/j.jesf.2025.04.003 | |
| dc.relation.references | Zaglia, T., & Mongillo, M. (2017). Cardiac sympathetic innervation, from a different point of (re)view. The Journal of Physiology, 595(12), 3919–3930. https://doi.org/10.1113/JP273120 | |
| dc.rights.accessrights | info:eu-repo/semantics/openAccess | |
| dc.rights.accessrights | http://purl.org/coar/access_right/c_abf2 | |
| dc.rights.creativecommons | Attribution-NonCommercial-NoDerivatives 4.0 International | |
| dc.rights.uri | https://creativecommons.org/licenses/by-nc-nd/4.0/ | |
| dc.subject | Variabilidad de la frecuencia cardíaca | spa |
| dc.subject | Entrenamiento interválico de alta intensidad | spa |
| dc.subject | Ciclísmo | spa |
| dc.subject | Sistema nervioso autónomo | spa |
| dc.subject | Sistema nervioso parasimpático | spa |
| dc.subject | Sistema nervioso simpático | spa |
| dc.subject.keywords | Heart rate variability | eng |
| dc.subject.keywords | High-intensity interval training | eng |
| dc.subject.keywords | Autonomic nervous system | eng |
| dc.subject.keywords | Parasympathetic nervous system | eng |
| dc.subject.keywords | Sympathetic nervous system | eng |
| dc.subject.keywords | Cycling | eng |
| dc.title | Impacto de los distintos tipos de entrenamiento HIIT sobre las adaptaciones agudas y crónicas de la variabilidad de la frecuencia cardíaca en ciclismo : una revisión sistemática. | spa |
| dc.title.translated | Impact of different types of HIIT training on the acute and chronic adaptations of heart rate variability in cycling : a systematic review. | eng |
| dc.type | info:eu-repo/semantics/masterThesis | spa |
| dc.type.coar | http://purl.org/coar/resource_type/c_bdcc | eng |
| dc.type.hasVersion | info:eu-repo/semantics/acceptedVersion | |
| dc.type.local | Tesis/Trabajo de grado - Monografía - Maestría | spa |
| dc.type.version | info:eu-repo/semantics/acceptedVersion | |
| dc.type.version | http://purl.org/coar/version/c_ab4af688f83e57aa |
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