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Physiology of Respiration II: Neurogenic Control of Respiration01:22

Physiology of Respiration II: Neurogenic Control of Respiration

2.7K
The neurogenic control of respiration coordinates various neural networks and pathways to regulate breathing rate and depth, meeting the body's oxygen and carbon dioxide exchange requirements. This system adapts to physiological and environmental conditions, ensuring optimal breathing patterns.
Central Control
The brainstem is the primary site of central control, hosting respiratory centers:
2.7K
Physiological Control of Respiration01:23

Physiological Control of Respiration

6.7K
Introduction
Breathing, a seemingly passive process, is regulated by the respiratory center in the brainstem. This center coordinates the involuntary control of respirations, which means it occurs without conscious effort, ensuring a smooth and uninterrupted pattern.
Regulation of Ventilation
The body maintains ventilation by monitoring levels of carbon dioxide (CO2), oxygen (O2), and hydrogen ion concentration (pH) in the arterial blood. Among these factors, the level of CO2 plays a crucial...
6.7K
Respiratory Regulation of Acid-Base Balance01:18

Respiratory Regulation of Acid-Base Balance

2.1K
Respiratory compensation is a vital physiological process that stabilizes blood plasma pH by regulating the partial pressure of carbon dioxide (PCO2), a key determinant of pH levels. Most carbon dioxide in the blood dissolves and converts into carbonic acid (H2CO3). It dissociates into hydrogen ions (H+) and bicarbonate ions (HCO3⁻). There is also an inverse relationship between PCO2​​ and pH.
When carbon dioxide levels increase in the blood, more H+ and HCO3⁻ are...
2.1K
Chemical Factors Affecting Respiration Centers01:31

Chemical Factors Affecting Respiration Centers

2.7K
Chemical factors such as changing CO2, O2, and H+ levels in arterial blood play a critical role in influencing respiration depth and rates. These variations are detected by chemoreceptors—specialized sensors located in two primary body areas. Central chemoreceptors are found throughout the brain stem, including the ventrolateral medulla, while peripheral chemoreceptors are located in the aortic arch and carotid arteries.
CO2 has a potent influence on respiration and is strictly regulated....
2.7K
Other Factors Affecting Respiration Centers01:17

Other Factors Affecting Respiration Centers

1.8K
Breathing is primarily an involuntary activity regulated by the brainstem respiratory centers. However, it can also be consciously controlled, allowing us to hold our breath or take deeper breaths when needed. This voluntary control is facilitated by the cerebral motor cortex, which bypasses the medullary centers to stimulate the respiratory muscles directly.
However, the ability to hold one's breath voluntarily is not limitless. When the CO2 concentration in the blood reaches a critical...
1.8K
Neural Control of Respiration01:18

Neural Control of Respiration

5.6K
The neural regulation of respiration is a meticulously coordinated process primarily controlled by the respiratory centers located within the brainstem. These centers, composed of specialized neurons, transmit nerve impulses that control the contraction and relaxation of our respiratory muscles.
Respiratory Centers in the Brainstem
Two primary areas comprise the respiratory center: the medullary respiratory center in the medulla oblongata and the pontine respiratory group in the pons. The...
5.6K

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Related Experiment Video

Updated: Mar 23, 2026

Breathing-controlled Electrical Stimulation BreEStim for Management of Neuropathic Pain and Spasticity
11:34

Breathing-controlled Electrical Stimulation BreEStim for Management of Neuropathic Pain and Spasticity

Published on: January 10, 2013

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Respiratory modulation of human autonomic function on Earth.

Dwain L Eckberg1, William H Cooke2, André Diedrich3

  • 1Departments of Medicine and Physiology, Hunter Holmes McGuire Department of Veterans Affairs, Medical Center and Virginia Commonwealth University School of Medicine, Richmond, VA, USA. deckberg@ekholmen.com.

The Journal of Physiology
|March 31, 2016
PubMed
Summary

Heartbeat fluctuations during normal breathing are not baroreflex-mediated and disappear during apnea. Autonomic responses to apnea likely stem from central respiratory activity, not chemoreceptors or baroreceptors.

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Quantitative Autonomic Testing
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Area of Science:

  • Neurophysiology
  • Autonomic Nervous System Regulation

Background:

  • Heartbeat interval fluctuations are typically linked to breathing and baroreflex activity.
  • The precise mechanisms driving autonomic responses during altered breathing, such as apnea, remain incompletely understood.

Purpose of the Study:

  • To investigate the baroreflex mediation of R-R interval fluctuations during normal breathing.
  • To determine the inputs responsible for autonomic responses during apnea.
  • To explore the role of central respiratory drive in autonomic control.

Main Methods:

  • Studied healthy astronauts performing controlled breathing protocols (fixed, random, hyperventilation, apnea).
  • Recorded electrocardiogram, arterial pressure, respiratory CO2, tidal volume, and muscle sympathetic nerve activity.
  • Analyzed R-R interval fluctuations and autonomic responses under various breathing conditions.

Main Results:

  • R-R interval fluctuations at normal breathing frequencies were not baroreflex-mediated and ceased during apnea.
  • Apnea responses were not attributable to changes in chemoreceptor, baroreceptor, or pulmonary stretch receptor input.
  • Muscle sympathetic nerve activity increased during apnea despite rising arterial pressure.

Conclusions:

  • R-R interval fluctuations during normal breathing are unlikely baroreflex-mediated.
  • Autonomic responses to apnea are primarily driven by central respiratory motoneurone activity.
  • Findings challenge traditional models of autonomic control during respiratory challenges.