HYPOXIC INTENSITY REVEALS DISTINCT CAROTID BODY O2 SENSING MECHANISMS

Carotid bodies (CBs) sense arterial blood O 2 levels. Hypoxemia activates the carotid sinus nerve (CSN) afferent activity to elicit cardiorespiratory reflexes to maintain tissue oxygenation. This brief review presents emerging evidence suggesting that CBs employ distinct O 2 -sensing mechanisms depending on the severity of hypoxia. During physiologically relevant moderate hypoxia ( pO 2 ~40 mmHg), glomus cells use heme oxygenase-2 (HO-2)/carbon monoxide (CO)/cystathionine-γ-lyase (CSE)/hydrogen sulfide (H 2 S) signaling pathway to stimulate CSN activity and breathing response to hypoxia. Basal CO restrains CSN activity during normoxia, whereas hypoxia reduces CO and stimulates CSN activity through H 2 S. Olfactory receptor 78 (Olfr78) is required for H 2 S-mediated CSN activation. CO-H 2 S pathway contributes to cardiorespiratory physiological adaptations to sustained hypoxia and to the pathophysiology of diseases characterized by carotid body (CB) hyperactivity. In contrast, glomus cell responds to severe hypoxia ( pO 2 ~5–15 mmHg) through mitochondrial complex I (NDUFS2) and complex III. Thus, CBs appear to employ severity-dependent hypoxic sensing mechanisms wherein moderate hypoxia engages the CO–H 2 S pathway to activate CSN activity and drive homeostatic cardiorespiratory responses. Severe hypoxia primarily alters mitochondrial function and glomus cell metabolism. Physiological relevance of severe-hypoxia remains uncertain, because severe low O 2 levels suppresses both CB, CSN activity and ventilation.

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Publication Details

Journal
American Journal of Physiology-Lung Cellular and Molecular Physiology
Published
2026-09-30
DOI
https://doi.org/10.1152/ajplung.90003.2026
Primary Topic
Neuroscience of respiration and sleep
Type
article
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article

HYPOXIC INTENSITY REVEALS DISTINCT CAROTID BODY O2 SENSING MECHANISMS

Nanduri R. Prabhakar, Ying-Jie Peng
American Journal of Physiology-Lung Cellular and Molecular Physiology
Neuroscience of respiration and sleep
article

HYPOXIC INTENSITY REVEALS DISTINCT CAROTID BODY O2 SENSING MECHANISMS

Nanduri R. Prabhakar, Ying-Jie Peng
article en

Abstract

Carotid bodies (CBs) sense arterial blood O 2 levels. Hypoxemia activates the carotid sinus nerve (CSN) afferent activity to elicit cardiorespiratory reflexes to maintain tissue oxygenation. This brief review presents emerging evidence suggesting that CBs employ distinct O 2 -sensing mechanisms depending on the severity of hypoxia. During physiologically relevant moderate hypoxia ( pO 2 ~40 mmHg), glomus cells use heme oxygenase-2 (HO-2)/carbon monoxide (CO)/cystathionine-γ-lyase (CSE)/hydrogen sulfide (H 2 S) signaling pathway to stimulate CSN activity and breathing response to hypoxia. Basal CO restrains CSN activity during normoxia, whereas hypoxia reduces CO and stimulates CSN activity through H 2 S. Olfactory receptor 78 (Olfr78) is required for H 2 S-mediated CSN activation. CO-H 2 S pathway contributes to cardiorespiratory physiological adaptations to sustained hypoxia and to the pathophysiology of diseases characterized by carotid body (CB) hyperactivity. In contrast, glomus cell responds to severe hypoxia ( pO 2 ~5–15 mmHg) through mitochondrial complex I (NDUFS2) and complex III. Thus, CBs appear to employ severity-dependent hypoxic sensing mechanisms wherein moderate hypoxia engages the CO–H 2 S pathway to activate CSN activity and drive homeostatic cardiorespiratory responses. Severe hypoxia primarily alters mitochondrial function and glomus cell metabolism. Physiological relevance of severe-hypoxia remains uncertain, because severe low O 2 levels suppresses both CB, CSN activity and ventilation.

American Journal of Physiology-Lung Cellular and Molecular Physiology
University of Chicago (US)
Openalex Percentile: Top 16%
Neuroscience of respiration and sleep
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