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Updated: Oct 4, 2025

A Gut-on-a-Chip Model to Study the Gut Microbiome-Nervous System Axis
Published on: July 28, 2023
Gut Microbiome and Neuroinflammation in Hypertension
Elaine M Richards1, Jing Li1, Bruce R Stevens1
1Department of Physiology and Functional Genomics (E.M.R., J.L., B.R.S., M.K.R.), University of Florida College of Medicine, Gainesville, Florida.
Insights
High blood pressure is common and hard to treat. A new gut-brain axis hypothesis suggests gut dysbiosis and neuroinflammation contribute to hypertension, offering new treatment targets.
Area of Science:
- Cardiovascular Science
- Neuroscience
- Microbiology
Background:
- Hypertension affects nearly 50% of American adults, with inadequate control in about 20% despite current treatments.
- Existing treatments often fail, necessitating exploration of alternative mechanisms driving blood pressure elevation and maintenance.
Purpose of the Study:
- To review the gut-brain axis hypothesis for hypertension, exploring its role in autonomic nervous system regulation and blood pressure control.
- To investigate the contribution of gut microbiota dysbiosis, gut epithelial dysfunction, and neuroinflammation to hypertension.
- To examine the potential role of immunoglobulin A-coated gut bacteria in hypertension and racial disparities.
Main Methods:
- Review of existing literature on the gut-brain axis, gut microbiota, neuroinflammation, and hypertension.
- Analysis of bidirectional communication pathways between the gut microbiota and the brain.
- Evaluation of minocycline as a potential therapeutic agent targeting the gut-brain axis.
Main Results:
- Dysfunction of the gut-brain axis, characterized by dysbiosis and neuroinflammation, contributes to hypertension.
- Bidirectional communication between gut microbiota and the gut epithelium influences autonomic nervous system activity and blood pressure.
- Immunoglobulin A-coated bacteria from the gut may play a role in hypertension development.
Conclusions:
- The gut-brain axis hypothesis provides a novel framework for understanding hypertension.
- Targeting the gut-brain axis, including addressing gut dysbiosis and neuroinflammation, may offer new therapeutic strategies.
- Minocycline's anti-inflammatory and antimicrobial properties warrant further investigation as a potential antihypertensive treatment.
Abstract:
Hypertension is a worldwide problem with major impacts on health including morbidity and mortality, as well as consumption of health care resources. Nearly 50% of American adults have high blood pressure, and this rate is rising. Even with multiple antihypertensive drugs and aggressive lifestyle modifications, blood pressure is inadequately controlled in about 1 of 5 hypertensive individuals. This review highlights a hypothesis for hypertension that suggests alternative mechanisms for blood pressure elevation and maintenance. A better understanding of these mechanisms could open avenues for more successful treatments. The hypothesis accounts for recent understandings of the involvement of gut physiology, gut microbiota, and neuroinflammation in hypertension. It includes bidirectional communication between gut microbiota and gut epithelium in the gut-brain axis that is involved in regulation of autonomic nervous system activity and blood pressure control. Dysfunction of this gut-brain axis, including dysbiosis of gut microbiota, gut epithelial dysfunction, and deranged input to the brain, contributes to hypertension via inflammatory mediators, metabolites, bacteria in the circulation, afferent information alterations, etc resulting in neuroinflammation and unbalanced autonomic nervous system activity that elevates blood pressure. This in turn negatively affects gut function and its microbiota exacerbating the problem. We focus this review on the gut-brain axis hypothesis for hypertension and possible contribution to racial disparities in hypertension. A novel idea, that immunoglobulin A-coated bacteria originating in the gut with access to the brain could be involved in hypertension, is raised. Finally, minocycline, with its anti-inflammatory and antimicrobial properties, is evaluated as a potential antihypertensive drug acting on this axis.
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