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Updated: Feb 14, 2026

A Gut-on-a-Chip Model to Study the Gut Microbiome-Nervous System Axis
Published on: July 28, 2023
Gut-Heart Axis in Myocardial Repair: Mechanisms, Cross-Organ Networks, and Therapeutic Opportunities
Hung-Chih Chen1, Tony W H Tang1, Sumi Nani Novita Pasaribu1
1Institute of Biomedical Sciences, Academia Sinica, Taipei 115, Taiwan (H.-C.C., T.W.H.T., S.N.N.P., P.C.H.H.).
Insights
The gut-heart axis influences cardiovascular health, impacting myocardial injury and regeneration. Targeting this gut-myocardium connection offers new avenues for cardiovascular disease prevention and treatment.
Area of Science:
- Cardiovascular research
- Microbiome science
- Regenerative medicine
Background:
- Cardiovascular diseases are a leading cause of death globally.
- The gut microbiota's role in heart health is increasingly recognized.
- Gut-heart axes (gut-brain-heart, gut-liver-heart, gut-lung-heart) are key to systemic communication.
Purpose of the Study:
- To review the bidirectional communication between the gut and the heart.
- To highlight the role of gut microbes and metabolites in myocardial injury, repair, and regeneration.
- To explore the gut-myocardium axis as a therapeutic target for cardiovascular medicine.
Main Methods:
- Review of current literature on gut-heart interactions.
- Analysis of advances in metagenomics, metabolomics, and single-cell transcriptomics.
- Examination of studies in gnotobiotic models linking microbial taxa to myocardial outcomes.
Main Results:
- Gut microbes and metabolites modulate immune tone, endothelial integrity, and cardiomyocyte survival.
- Specific microbial taxa are causally linked to myocardial outcomes, including fibrosis resolution and angiogenesis.
- The gut-myocardium axis plays a role in disease progression and offers regenerative potential.
Conclusions:
- The gut-heart axis is a critical factor in cardiovascular health and disease.
- Multiomics and mechanistic modeling are essential for microbiota-informed cardiovascular diagnostics and therapeutics.
- Targeting the gut-myocardium axis represents a new frontier in precision cardiovascular medicine for prevention and regeneration.
Abstract:
Cardiovascular diseases remain the leading global cause of morbidity and mortality, placing an escalating burden on health care systems and economies. While the gut microbiota is well recognized in atherosclerosis and cardiometabolic disorders, its influence on myocardial injury, repair, and regeneration is only beginning to emerge. Growing evidence reveals that gut microbes and their metabolites regulate myocardial health through intricate cross-organ networks, including the gut-brain-heart, gut-liver-heart, and gut-lung-heart axes. These findings suggest that the heart plays a key role in systemic host-microbe communication. Advances in metagenomics, metabolomics, and single-cell transcriptomics are now defining the molecular and cellular pathways by which microbial metabolites modulate immune tone, endothelial integrity, metabolic resilience, and cardiomyocyte survival. Studies in gnotobiotic models have established causal links between specific microbial taxa and myocardial outcomes while illuminating their roles in fibrosis resolution, angiogenesis, and regeneration. In this review, we synthesize current knowledge on the bidirectional gut-heart dialogue, emphasizing immunometabolic signaling, cross-organ integration, and regenerative mechanisms. We propose that coupling high-resolution multiomics with mechanistic modeling in controlled microbial systems will be pivotal for next-generation, microbiota-informed diagnostics, and therapeutics. We explore the emerging role of the gut-myocardium axis as both a driver of disease and as a promising modifiable therapeutic target and highlight a new frontier in precision cardiovascular medicine, with the potential to transform strategies for prevention, repair, and tissue regeneration.
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