» Articles » PMID: 12626671

The Human Respiratory Gate

Overview
Journal J Physiol
Specialty Physiology
Date 2003 Mar 11
PMID 12626671
Citations 131
Authors
Affiliations
Soon will be listed here.
Abstract

Respiratory activity phasically alters membrane potentials of preganglionic vagal and sympathetic motoneurones and continuously modulates their responsiveness to stimulatory inputs. The most obvious manifestation of this 'respiratory gating' is respiratory sinus arrhythmia, the rhythmic fluctuations of electrocardiographic R-R intervals observed in healthy resting humans. Phasic autonomic motoneurone firing, reflecting the throughput of the system, depends importantly on the intensity of stimulatory inputs, such that when levels of stimulation are low (as with high arterial pressure and sympathetic activity, or low arterial pressure and vagal activity), respiratory fluctuations of sympathetic or vagal firing are also low. The respiratory gate has a finite capacity, and high levels of stimulation override the ability of respiration to gate autonomic responsiveness. Autonomic throughput also depends importantly on other factors, including especially, the frequency of breathing, the rate at which the gate opens and closes. Respiratory sinus arrhythmia is small at rapid, and large at slow breathing rates. The strong correlation between systolic pressure and R-R intervals at respiratory frequencies reflects the influence of respiration on these two measures, rather than arterial baroreflex physiology. A wide range of evidence suggests that respiratory activity gates the timing of autonomic motoneurone firing, but does not influence its tonic level. I propose that the most enduring significance of respiratory gating is its use as a precisely controlled experimental tool to tease out and better understand otherwise inaccessible human autonomic neurophysiological mechanisms.

Citing Articles

Speech Detection via Respiratory Inductance Plethysmography, Thoracic Impedance, Accelerometers, and Gyroscopes: A Machine Learning-Informed Comparative Study.

Saygin M, Schoenmakers M, Gevonden M, de Geus E Psychophysiology. 2025; 62(2):e70021.

PMID: 39950497 PMC: 11826986. DOI: 10.1111/psyp.70021.


Correlation properties and respiratory frequency of ECG-derived heart rate variability during multiple race-pace running intervals in female and male long-distance runners.

Gronwald T, Schaffarczyk M, Fohrmann D, Hoos O, Hollander K Physiol Rep. 2025; 13(3):e70177.

PMID: 39903559 PMC: 11792992. DOI: 10.14814/phy2.70177.


A model-based spectral directional approach reveals the long-term impact of COVID-19 on cardiorespiratory control and baroreflex.

Cairo B, Gelpi F, Bari V, Anguissola M, Singh P, De Maria B Biomed Eng Online. 2025; 24(1):8.

PMID: 39901266 PMC: 11792257. DOI: 10.1186/s12938-024-01327-8.


Predictive Modeling of Heart Rate from Respiratory Signals at Rest in Young Healthy Humans.

Gomez C, Munoz V, Munoz-Caracuel M Entropy (Basel). 2025; 26(12.

PMID: 39766712 PMC: 11675163. DOI: 10.3390/e26121083.


One-week test-retest recordings of resting cardiorespiratory data for reliability analysis.

Schumann A, Lukas F, Rieger K, Gupta Y, Bar K Sci Data. 2025; 12(1):12.

PMID: 39754019 PMC: 11698850. DOI: 10.1038/s41597-024-04303-y.


References
1.
Eckberg D, Kifle Y, Roberts V . Phase relationship between normal human respiration and baroreflex responsiveness. J Physiol. 1980; 304:489-502. PMC: 1282944. DOI: 10.1113/jphysiol.1980.sp013338. View

2.
Saul J, Berger R, Albrecht P, STEIN S, Chen M, Cohen R . Transfer function analysis of the circulation: unique insights into cardiovascular regulation. Am J Physiol. 1991; 261(4 Pt 2):H1231-45. DOI: 10.1152/ajpheart.1991.261.4.H1231. View

3.
Haymet B, McCloskey D . Baroreceptor and chemoreceptor influences on heart rate during the respiratory cycle in the dog. J Physiol. 1975; 245(3):699-712. PMC: 1330813. DOI: 10.1113/jphysiol.1975.sp010869. View

4.
Eckberg D . Human sinus arrhythmia as an index of vagal cardiac outflow. J Appl Physiol Respir Environ Exerc Physiol. 1983; 54(4):961-6. DOI: 10.1152/jappl.1983.54.4.961. View

5.
Parati G, Di Rienzo M, Bertinieri G, Pomidossi G, Casadei R, Groppelli A . Evaluation of the baroreceptor-heart rate reflex by 24-hour intra-arterial blood pressure monitoring in humans. Hypertension. 1988; 12(2):214-22. DOI: 10.1161/01.hyp.12.2.214. View