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April 23, 2014The Journal of Physiology319 citationsOpen Access

Autonomic neural control of heart rate during dynamic exercise: revisited

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DWDaniel W. WhitePRPeter B. Raven

Key Result

The parasympathetic nervous system remains functionally active throughout exercise, with heart rate increases resulting from a transition from a 4:1 vagal-sympathetic to a 4:1 sympatho-vagal balance.

Structured PICO

How does the autonomic nervous system control heart rate during progressive dynamic exercise in humans?

P
Population
Humans undergoing progressive increases in dynamic exercise workload
I
Intervention
Dynamic exercise with baroreflex stimulation and pharmacological blockade of the autonomic nervous system
C
Comparator
Rest or lower exercise workloads
O
Outcome
Autonomic neural control of heart rate (vagal-sympathetic balance)surrogate

This review challenges the traditional model of heart rate control during exercise, demonstrating that parasympathetic activity is not completely withdrawn but remains active and modulates heart rate alongside increasing sympathetic tone.

Abstract

UNLABELLED: The accepted model of autonomic control of heart rate (HR) during dynamic exercise indicates that the initial increase is entirely attributable to the withdrawal of parasympathetic nervous system (PSNS) activity and that subsequent increases in HR are entirely attributable to increases in cardiac sympathetic activity. In the present review, we sought to re-evaluate the model of autonomic neural control of HR in humans during progressive increases in dynamic exercise workload. We analysed data from both new and previously published studies involving baroreflex stimulation and pharmacological blockade of the autonomic nervous system. Results indicate that the PSNS remains functionally active throughout exercise and that increases in HR from rest to maximal exercise result from an increasing workload-related transition from a 4 : 1 vagal-sympathetic balance to a 4 : 1 sympatho-vagal balance. Furthermore, the beat-to-beat autonomic reflex control of HR was found to be dependent on the ability of the PSNS to modulate the HR as it was progressively restrained by increasing workload-related sympathetic nerve activity. IN CONCLUSION: (i) increases in exercise workload-related HR are not caused by a total withdrawal of the PSNS followed by an increase in sympathetic tone; (ii) reciprocal antagonism is key to the transition from vagal to sympathetic dominance, and (iii) resetting of the arterial baroreflex causes immediate exercise-onset reflexive increases in HR, which are parasympathetically mediated, followed by slower increases in sympathetic tone as workloads are increased.

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Cite This Study

White et al. (2014) conducted a review in Autonomic neural control of heart rate during dynamic exercise. Dynamic exercise was evaluated on Autonomic control of heart rate. The parasympathetic nervous system remains functionally active throughout exercise, with heart rate increases resulting from a transition from a 4:1 vagal-sympathetic to a 4:1 sympatho-vagal balance.

synapsesocial.com/papers/6a154f4a5347fbb1739f9149https://doi.org/10.1113/jphysiol.2014.271858
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Also Consider

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

  1. 1Onset of exercise shifts operating point of arterial baroreflex to higher pressures1992 · 142 citations
  2. 2Autonomic control of the heart during exercise in humans: role of skeletal muscle afferents2013 · 99 citations
  3. 3Substantial cardiac parasympathetic activity exists during heavy dynamic exercise in dogs1997 · 36 citations
  4. 4Arterial baroreflex resetting during exercise: a current perspective2005 · 292 citations
  5. 5Central command: control of cardiac sympathetic and vagal efferent nerve activity and the arterial baroreflex during spontaneous motor behaviour in animals2011 · 90 citations