Influence of aerobic fitness on the correspondence between heart rate variability and ventilatory threshold

Autores

  • Lúcio Flávio Soares-Caldeira Universidade Estadual de Londrina. Centro de Educação Física e Esporte, Londrina, PR, Brasil. Universidade do Norte do Paraná. Departamento de Educação Física, Centro de Pesquisa em Ciências da Saúde, Londrina, PR, Brasil.
  • Carla Cristiane da Silva Universidade do Norte do Paran´a. Departamento de Educação Física, Jacarezinho, PR, Brasil.
  • Priscila Chierotti Universidade Estadual de Londrina. Centro de Educação Física e Esporte, Londrina, PR, Brasil.
  • Nicolle de Souza Dias Universidade Estadual de Londrina. Centro de Educação Física e Esporte, Londrina, PR, Brasil.
  • Fábio Yuzo Nakamura Universidade Estadual de Londrina. Centro de Educação Física e Esporte, Londrina, PR, Brasil.

DOI:

https://doi.org/10.11606/1807-5509202000040555

Palavras-chave:

Cardiac autonomic responses, Incremental test, Heart rate variability analysis, Cardiorespiratory fitness

Resumo

The aims of this study were to verify the correspondence between heart rate variability (HRV) and ventilatory thresholds during a progressive exercise test and the relationship with low and high aerobic fitness levels. Twenty male volunteers (29.5±6.2 years; 75.9±13.0 kg; 175.0±7.4 cm) were recruited. The subjects were allocated to two groups according to their VO2max <48.8 ml•kg−1•min−1 (low cardiorespiratory fitness group) (n=10) and >48.81 ml•kg−1•min−1 (high cardiorespiratory fitness group) (n=10). A progressive test was performed, consisting of 3-min stages beginning at 25 watts and increasing by 25 watts every 3-min. The HRV threshold (HRVT) and ventilatory threshold (VT) analyses were performed through visual inspection. The comparisons with RMSSD values in percentage of maximum workload resulted in a higher effect size (ES) than the SDNN values. The VO2 in the high cardiorespiratory fitness group at VT (+32%), HRVTRMSSD (+27%), and HRVTSDNN (+31%) was signifi cantly higher compared to the group with low cardiorespiratory fitness. Higher values were observed for relative load (W•kg-1) at VT and HRVTSDNN in the high cardiorespiratory fitness group in comparison with the low cardiorespiratory fitness group (P<0.05), but no difference for VT and HRVTRMSSD. Signifi cant correlations between at VT and HRVTSDNN (r=0.77) were found only in the low cardiorespiratory fitness group. Cardiorespiratory fitness should be regarded as a factor for HRVT evaluation. The HRVTSDNN was closer to the VT in the low cardiorespiratory fitness group than the HRVTRMSSD, however, the use of vagal modulation assessed using the HRV parameter was more sensitive to observe possible differences regarding cardiorespiratory fitness.

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Referências

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. 1996;93(5):1043-65.

Sandercock GR, Brodie DA. The use of heart rate variability measures to assess autonomic control during exercise. Scandinavian J Med Sci Sports. 2006;16(5):302-13.

Akselrod S, Gordon D, Ubel FA, Shannon DC, Berger AC, Cohen RJ. Power spectrum analysis of heart rate fluctuation: a quantitative probe of beat-to-beat cardiovascular control. Science (New York, NY). 1981;213(4504):220-2.

Hautala AJ, Makikallio TH, Kiviniemi A, Laukkanen RT, Nissila S, Huikuri HV, et al. Cardiovascular autonomic function correlates with the response to aerobic training in healthy sedentary subjects. Am J Physiol Heart Circulatory Physiol. 2003;285(4):H1747-52.

Tulppo MP, Makikallio TH, Takala TE, Seppanen T, Huikuri HV. Quantitative beat-to-beat analysis of heart rate dynamics during exercise. Am J Physiol. 1996;271(1 Pt 2):H244-52.

Buchheit M, Gindre C. Cardiac parasympathetic regulation: respective associations with cardiorespiratory fitness and training load. Am J Physiol Heart Circulatory Physiol. 2006;291(1):H451-8.

De Freitas VH, Pereira LA, de Souza EA, Leicht AS, Bertollo M, Nakamura FY. Sensitivity of the Yo-Yo Intermittent Recovery Test and Cardiac Autonomic Responses to Training in Futsal Players. Intern J Sports Physiol Perform. 2015;10(5):553-8.

Soares-Caldeira LF, de Souza EA, de Freitas VH, de Moraes SM, Leicht AS, Nakamura FY. Effects of additional repeated sprint training during preseason on performance, heart rate variability, and stress symptoms in futsal players: a randomized controlled trial. J Strength Conditioning Res. 2014;28(10):2815-26.

Wasserman K, Whipp BJ, Koyl SN, Beaver WL. Anaerobic threshold and respiratory gas exchange during exercise. J Applied Physiol. 1973;35(2):236-43.

Caiozzo VJ, Davis JA, Ellis JF, Azus JL, Vandagriff R, Prietto CA, et al. A comparison of gas exchange indices used to detect the anaerobic threshold. J Applied Physiol: respiratory, environmental and exercise physiology. 1982;53(5):1184-9.

Karapetian GK, Engels HJ, Gretebeck RJ. Use of heart rate variability to estimate LT and VT. Intern J Sports Med. 2008;29(8):652-7.

Hagberg JM, Coyle EF, Carroll JE, Miller JM, Martin WH, Brooke MH. Exercise hyperventilation in patients with McArdle's disease. J Applied Physiology: respiratory, environmental and exercise physiology. 1982;52(4):991-4.

Gaesser GA, Poole DC. Lactate and ventilatory thresholds: disparity in time course of adaptations to training. J Applied Physiol. 1986;61(3):999-1004.

Hautala AJ, Kiviniemi AM, Tulppo MP. Individual responses to aerobic exercise: the role of the autonomic nervous system. Neuroscie Biobehavioral Rev. 2009;33(2):107-15.

Tulppo MP, Makikallio TH, Seppanen T, Laukkanen RT, Huikuri HV. Vagal modulation of heart rate during exercise: effects of age and physical fitness. Am J Physiol. 1998;274(2 Pt 2):H424-9.

Koch B, Schaper C, Ittermann T, Spielhagen T, Dorr M, Volzke H, et al. Reference values for cardiopulmonary exercise testing in healthy volunteers: the SHIP study. Eur Resp J. 2009;33(2):389-97.

Poole DC, Wilkerson DP, Jones AM. Validity of criteria for establishing maximal O2 uptake during ramp exercisentests. Eur J Applied Physiol. 2008;102(4):403-10.

Borg GA. Psychophysical bases of perceived exertion. Med Sci Sports Exercise. 1982;14(5):377-81.

Amann M, Subudhi AW, Walker J, Eisenman P, Shultz B, Foster C. An evaluation of the predictive validity and reliability of ventilatory threshold. Med Sci Sports Exercise. 2004;36(10):1716-22.

Hughson RL, Green HJ, Sharratt MT. Gas exchange, blood lactate, and plasma catecholamines during incremental exercise in hypoxia and normoxia. J Applied Physiol. 1995;79(4):1134-41.

Cohen J. Statistical power analysis for the behavioral sciences. 2nd ed1988.

Cottin F, Medigue C, Lopes P, Lepretre PM, Heubert R, Billat V. Ventilatory thresholds assessment from heart rate variability during an incremental exhaustive running test. Intern J Sports Med. 2007;28(4):287-94.

Anosov O, Patzak A, Kononovich Y, Persson PB. High-frequency oscillations of the heart rate during ramp load reflect the human anaerobic threshold. Eur J Applied Physiol. 2000;83(4 -5):388-94.

Mendia-Iztueta I, Monahan K, Kyrolainen H, Hynynen E. Assessment of Heart Rate Variability Thresholds from Incremental Treadmill Tests in Five Cross-Country Skiing Techniques. PloS one. 2016;11(1):e0145875.

Candido N, Okuno NM, da Silva CC, Machado FA, Nakamura FY. Reliability of the Heart Rate Variability Threshold using Visual Inspection and Dmax Methods. Intern J Sports Med. 2015;36(13):1076-80.

Sales MM, Campbell CS, Morais PK, Ernesto C, Soares-Caldeira LF, Russo P, et al. Noninvasive method to estimate anaerobic threshold in individuals with type 2 diabetes. Diabetol Metabolic Syndrome. 2011;3(1):1-8.

Tulppo MP, Hautala AJ, Makikallio TH, Laukkanen RT, Nissila S, Hughson RL, et al. Effects of aerobic training on heart rate dynamics in sedentary subjects. J Applied Physiol. 2003;95(1):364-72.

Vasconcellos F, Seabra A, Montenegro R, Cunha F, Bouskela E, Farinatti P. Can Heart Rate Variability be used to Estimate Gas Exchange Th reshold in Obese Adolescents? Intern J Sports Med. 2015;36(8):654-60.

Yamamoto Y, Hughson RL, Peterson JC. Autonomic control of heart rate during exercise studied by heart rate variability spectral analysis. J Applied Physiol. 1991;71(3):1136-42.

Shibata M, Moritani T, Miyawaki T, Hayashi T, Nakao K. Exercise prescription based upon cardiac vagal activity for middle-aged obese women. International journal of obesity and related metabolic disorders. J Intern Ass Study Obesity. 2002;26(10):1356-62.

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Publicado

2020-12-22

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Como Citar

Soares-Caldeira, L. F., Silva, C. C. da ., Chierotti, P. ., Dias, N. de S. ., & Nakamura, F. Y. . (2020). Influence of aerobic fitness on the correspondence between heart rate variability and ventilatory threshold . Revista Brasileira De Educação Física E Esporte, 34(4), 555-566. https://doi.org/10.11606/1807-5509202000040555