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September 1, 1991Journal of Applied Physiology386 citations

Autonomic control of heart rate during exercise studied by heart rate variability spectral analysis

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YYYoshiharu YamamotoRHRichard L. HughsonJPJohn C. Peterson

Key Points

  • This study aims to investigate how heart rate variability (HRV) reflects autonomic nervous system activity during exercise.
  • Eight subjects performed six submaximal exercise tests and one resting measurement.

Structured PICO

Does submaximal exercise alter autonomic control of heart rate as measured by heart rate variability spectral analysis in human subjects?

P
Population
8 subjects
I
Intervention
Six 17-min submaximal exercise tests at varying work rates (20 W, or 30, 60, 90, 100, and 110% of predetermined ventilatory threshold)
C
Comparator
One resting measurement in the upright sitting position
O
Outcome
Heart rate variability (HRV) spectral analysis (low-frequency and high-frequency areas under power spectra)surrogate

During exercise, parasympathetic withdrawal occurs progressively at lower intensities, whereas sympathetic activation occurs abruptly only at intensities exceeding the ventilatory threshold.

Abstract

Spectral analysis of heart rate variability (HRV) might provide an index of relative sympathetic (SNS) and parasympathetic nervous system (PNS) activity during exercise. Eight subjects completed six 17-min submaximal exercise tests and one resting measurement in the upright sitting position. During submaximal tests, work rate (WR) was increased for the initial 3 min in a ramp fashion until it reached constant WRs of 20 W, or 30, 60, 90, 100, and 110% of the predetermined ventilatory threshold (Tvent). Ventilatory profile and alveolar gas exchange were monitored breath by breath, and beat-to-beat HRV was measured as R-R intervals of an electrocardiogram. Spectral analysis was applied to the HRV from 7 to 17 min. Low-frequency (0-0.15 Hz) and high-frequency (0.15-1.0 Hz) areas under power spectra (LO and HI, respectively) were calculated. The indicator of PNS activity (HI) decreased dramatically (P less than 0.05) when the subjects exercised compared with rest and continued to decrease until the intensity reached 60% Tvent. The indicator of SNS activity (LO/HI) remained unchanged up to 100% Tvent, whereas it increased abruptly (P less than 0.05) at 110% Tvent. The results suggested that (cardiac) PNS activity decreased progressively from rest to a WR equivalent to 60% Tvent, and SNS activity increased only when exercise intensity exceeded Tvent.

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Cite This Study

Yamamoto et al. (1991) studied this question.

synapsesocial.com/papers/6a1d33e843708a372d5de3eehttps://doi.org/10.1152/jappl.1991.71.3.1136
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Spectral Analysis of Heart Rate Variability during Exercise in Trained Subjects2004 · 112 citations
  2. 2Frequency domain analysis of heart rate variability in horses at rest and during exercise2000 · 98 citations
  3. 3Pitfalls in the interpretation of spectral analysis of the heart rate variability during exercise in humans1995 · 167 citations
  4. 4Autonomic control of heart rate during physical exercise and fractal dimension of heart rate variability1993 · 195 citations
  5. 5Power spectrum of heart rate variability in exercising humans: The effect of exercise intensity2001 · 9 citations