Hypercapnia Induces Mitochondrial Adaptations and Alters Glutamine Metabolism to Drive a Distinct Metabolic Phenotype in Monocytes

ABSTRACT Carbon dioxide (CO 2 ) is an ancient and ubiquitous physiological gas generated during aerobic respiration. Historically viewed as a simple metabolic waste product, CO 2 has received far less research attention than oxygen (O 2 ), the primary substrate of aerobic respiration. However, emerging evidence has revealed important roles for CO 2 in immunometabolism, immunology, muscle physiology, and clinical medicine. While circulating pCO 2 levels are tightly regulated, patients with lung diseases such as chronic obstructive pulmonary disease (COPD) frequently develop hypercapnia, pCO 2 > 45 mmHg. Hypercapnia is associated with significantly increased mortality, higher risk of ICU admission, and a global prevalence estimated at 13–15 million patients. Its broader clinical consequences remain poorly understood and are inadequately integrated into current therapeutic paradigms. Here, we examined the impact of hypercapnia on the metabolic profile of monocytes. We demonstrate that 24 h of buffered hypercapnia induces a marked reduction in mitochondrial mass. This is accompanied by dysregulation of mitochondrial membrane potential and key bioenergetic substrates (NADH/NAD + and ATP content). We further show that hypercapnia alters the abundance of metabolites and proteins associated with mitochondrial metabolism, with effects spanning glucose, glutamine, and lipid metabolism. Thus, we provide direct mechanistic evidence that hypercapnia directly alters the glutamine–glutamate–proline synthesis axis. Collectively, these findings establish the foundation for a discrete hypercapnic metabolic phenotype, that is, in several respects, distinct from the metabolic adaptations observed in hypoxia. We propose that hypercapnia triggers a cascade of metabolic adaptations with tissue‐dependent consequences on cellular effector functions.

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Journal
Immunology and Cell Biology
Published
2026-09-16
DOI
https://doi.org/10.1111/imcb.70162
Primary Topic
Respiratory Support and Mechanisms
Type
article
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article

Hypercapnia Induces Mitochondrial Adaptations and Alters Glutamine Metabolism to Drive a Distinct Metabolic Phenotype in Monocytes

Lorraine Brennan, Martina Wallace, Xiaofei Yin, Eoin P. Cummins et al.
Immunology and Cell Biology
Respiratory Support and Mechanisms
article

Hypercapnia Induces Mitochondrial Adaptations and Alters Glutamine Metabolism to Drive a Distinct Metabolic Phenotype in Monocytes

Lorraine Brennan, Martina Wallace, Xiaofei Yin, Eoin P. Cummins, David E. Phelan, Ben Reddan
article en

Abstract

ABSTRACT Carbon dioxide (CO 2 ) is an ancient and ubiquitous physiological gas generated during aerobic respiration. Historically viewed as a simple metabolic waste product, CO 2 has received far less research attention than oxygen (O 2 ), the primary substrate of aerobic respiration. However, emerging evidence has revealed important roles for CO 2 in immunometabolism, immunology, muscle physiology, and clinical medicine. While circulating pCO 2 levels are tightly regulated, patients with lung diseases such as chronic obstructive pulmonary disease (COPD) frequently develop hypercapnia, pCO 2 > 45 mmHg. Hypercapnia is associated with significantly increased mortality, higher risk of ICU admission, and a global prevalence estimated at 13–15 million patients. Its broader clinical consequences remain poorly understood and are inadequately integrated into current therapeutic paradigms. Here, we examined the impact of hypercapnia on the metabolic profile of monocytes. We demonstrate that 24 h of buffered hypercapnia induces a marked reduction in mitochondrial mass. This is accompanied by dysregulation of mitochondrial membrane potential and key bioenergetic substrates (NADH/NAD + and ATP content). We further show that hypercapnia alters the abundance of metabolites and proteins associated with mitochondrial metabolism, with effects spanning glucose, glutamine, and lipid metabolism. Thus, we provide direct mechanistic evidence that hypercapnia directly alters the glutamine–glutamate–proline synthesis axis. Collectively, these findings establish the foundation for a discrete hypercapnic metabolic phenotype, that is, in several respects, distinct from the metabolic adaptations observed in hypoxia. We propose that hypercapnia triggers a cascade of metabolic adaptations with tissue‐dependent consequences on cellular effector functions.

Immunology and Cell Biology
University College Dublin (IE)
Good health and well-being
Openalex Percentile: Top 11%
Respiratory Support and Mechanisms
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