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Published on: May 2, 2018
Immune dysregulation mediated by the oral microbiome: potential link to chronic inflammation and atherosclerosis
Insights
Periodontal disease may contribute to atherosclerosis, a cardiovascular inflammatory disorder. Understanding these oral infection mechanisms is key to developing anti-inflammatory therapies.
Area of Science:
- Cardiovascular Science
- Immunology
- Microbiology
Background:
- Cardiovascular disease, specifically atherosclerosis, is an inflammatory condition linked to plaque buildup in arteries.
- It is a major global cause of death, with complex underlying inflammatory mechanisms still under investigation.
Purpose of the Study:
- To explore how periodontal pathogens may directly or indirectly cause immune dysregulation, leading to atherosclerosis.
- To investigate the link between oral infections and the progression of inflammatory cardiovascular disease.
Main Methods:
- Review of existing studies on periodontal disease, bacteremia, and atherosclerosis.
- Exploration of proposed mechanisms involving direct disruption of endothelial cells and indirect induction of systemic inflammatory mediators.
Main Results:
- Periodontal pathogens can directly impair endothelial cell function, an early sign of cardiovascular disease.
- Oral infections may indirectly promote systemic inflammation and the production of pro-inflammatory cytokines.
- Gut microbiome disruption is also implicated in exacerbating inflammatory diseases like atherosclerosis.
Conclusions:
- The immune pathways linking oral infection to atherosclerotic plaque progression are complex.
- Further understanding of these mechanisms is crucial for developing novel anti-inflammatory treatments for cardiovascular disease.
Abstract:
Cardiovascular disease is an inflammatory disorder characterized by the progressive formation of plaque in coronary arteries, termed atherosclerosis. It is a multifactorial disease that is one of the leading causes of death worldwide. Although a number of risk factors have been associated with disease progression, the underlying inflammatory mechanisms contributing to atherosclerosis remain to be fully delineated. Within the last decade, the potential role for infection in inflammatory plaque progression has received considerable interest. Microbial pathogens associated with periodontal disease have been of particular interest due to the high levels of bacteremia that are observed after routine dental procedures and every day oral activities, such as tooth brushing. Here, we explore the potential mechanisms that may explain how periodontal pathogens either directly or indirectly elicit immune dysregulation and consequently progressive inflammation manifested as atherosclerosis. Periodontal pathogens have been shown to contribute directly to atherosclerosis by disrupting endothelial cell function, one of the earliest indicators of cardiovascular disease. Oral infection is thought to indirectly induce elevated production of inflammatory mediators in the systemic circulation. Recently, a number of studies have been conducted focusing on how disruption of the gut microbiome influences the systemic production of proinflammatory cytokines and consequently exacerbation of inflammatory diseases such as atherosclerosis. It is clear that the immune mechanisms leading to atherosclerotic plaque progression, by oral infection, are complex. Understanding the immune pathways leading to disease progression is essential for the future development of anti-inflammatory therapies for this chronic disease.
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