Gut-brain-heart axis in congenital heart disease: emerging roles of the microbiome in cardiac physiology and neurodevelopment

Congenital heart disease (CHD) is increasingly recognised as a multisystem condition extending beyond structural cardiac abnormalities to include gastrointestinal, immunological and neurodevelopmental consequences. Although advances in surgical and intensive care have significantly improved survival, children with CHD remain at heightened risk for adverse neurodevelopmental outcomes, systemic inflammation and gastrointestinal morbidity. The gut microbiome plays a central role in immune regulation, metabolic homeostasis and brain development particularly during early life. Perturbations of the microbiome are common in infants with CHD due to altered gut perfusion, antibiotic exposure, feeding disruption and cardiopulmonary bypass (CPB). These changes may influence both cardiac recovery and neurodevelopment through interconnected gut-heart-brain signalling pathways. This review synthesises current evidence linking the gut microbiome to cardiac physiology and brain development in children with CHD, with particular emphasis on early-life vulnerability, perioperative factors and emerging translational insights. Understanding these interactions may inform future strategies to optimise long-term outcomes in this high-risk population.

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Publication Details

Journal
Heart
Published
2026-09-16
DOI
https://doi.org/10.1136/heartjnl-2026-328544
Primary Topic
Gut microbiota and health
Type
article
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article

Gut-brain-heart axis in congenital heart disease: emerging roles of the microbiome in cardiac physiology and neurodevelopment

Adam James, Sean T Kelleher, Colin J. McMahon, Dhrati Patangia et al.
Heart
Gut microbiota and health
article

Gut-brain-heart axis in congenital heart disease: emerging roles of the microbiome in cardiac physiology and neurodevelopment

Adam James, Sean T Kelleher, Colin J. McMahon, Dhrati Patangia, R Paul Ross, Catherine Stanton
article en

Abstract

Congenital heart disease (CHD) is increasingly recognised as a multisystem condition extending beyond structural cardiac abnormalities to include gastrointestinal, immunological and neurodevelopmental consequences. Although advances in surgical and intensive care have significantly improved survival, children with CHD remain at heightened risk for adverse neurodevelopmental outcomes, systemic inflammation and gastrointestinal morbidity. The gut microbiome plays a central role in immune regulation, metabolic homeostasis and brain development particularly during early life. Perturbations of the microbiome are common in infants with CHD due to altered gut perfusion, antibiotic exposure, feeding disruption and cardiopulmonary bypass (CPB). These changes may influence both cardiac recovery and neurodevelopment through interconnected gut-heart-brain signalling pathways. This review synthesises current evidence linking the gut microbiome to cardiac physiology and brain development in children with CHD, with particular emphasis on early-life vulnerability, perioperative factors and emerging translational insights. Understanding these interactions may inform future strategies to optimise long-term outcomes in this high-risk population.

Heart
University College Dublin (IE), Teagasc - The Irish Agriculture and Food Development Authority (IE), University College Cork (IE), Children's Health Ireland at Crumlin (IE), APC Microbiome Institute (IE)
Good health and well-being
Openalex Percentile: Top 18%
Gut microbiota and health
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