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Published on: November 7, 2017
Bacterial metabolites and cardiovascular risk in children with chronic kidney disease
Julia Schlender1,2, Felix Behrens1,3,4,5, Victoria McParland2
1Charité - Universitätsmedizin Berlin, corporate member of Freie Universität Berlin and Humboldt-Universität zu Berlin, Department of Pediatric Gastroenterology, Nephrology and Metabolic Diseases, 13353, Berlin, Germany.
Insights
Chronic kidney disease (CKD) in children accelerates cardiovascular disease (CVD) through gut microbiome disruption. This dysbiosis increases toxic metabolites and inflammation, impacting heart health even without traditional risk factors.
Area of Science:
- Microbiology
- Nephrology
- Cardiology
Background:
- Cardiovascular disease (CVD) is a leading cause of mortality in chronic kidney disease (CKD).
- CVD is prevalent in pediatric CKD patients, independent of traditional risk factors like diabetes and hypertension.
- The specific mechanisms driving CVD in CKD, particularly in children, are not fully understood.
Purpose of the Study:
- To review the complex interplay between the gut microbiome, microbial metabolism, host immunity, and cardiovascular end-organ damage in CKD.
- To elucidate CKD-specific pathways contributing to CVD, offering insights into novel therapeutic targets.
- To highlight the unique value of studying pediatric CKD for understanding CVD pathogenesis.
Main Methods:
- Comprehensive literature review focusing on the gut microbiome's role in CKD-associated CVD.
- Analysis of microbial metabolism, nutrient processing, and their impact on host immunity.
- Examination of the gut barrier integrity and the production of microbial metabolites.
Main Results:
- CKD disrupts the gut microbiome, leading to dysbiosis characterized by increased proteolytic and decreased saccharolytic fermentation.
- Gut dysbiosis compromises the gut barrier, reduces beneficial short-chain fatty acids (SCFAs), and increases toxic microbial metabolites.
- Accumulation of uremic toxins and SCFA deficiency contribute to systemic inflammation in CKD.
Conclusions:
- The gut microbiome plays a critical role in CKD-associated cardiovascular complications.
- Dysbiosis-induced inflammation and toxic metabolite accumulation are key mechanisms linking CKD and CVD.
- Targeting the gut microbiome offers a promising strategy for managing CKD comorbidities.
Abstract:
Cardiovascular complications are the major cause of the marked morbidity and mortality associated with chronic kidney disease (CKD). The classical cardiovascular risk factors such as diabetes and hypertension undoubtedly play a role in the development of cardiovascular disease (CVD) in adult CKD patients; however, CVD is just as prominent in children with CKD who do not have these risk factors. Hence, the CKD-specific pathophysiology of CVD remains incompletely understood. In light of this, studying children with CKD presents a unique opportunity to analyze CKD-associated mechanisms of CVD more specifically and could help to unveil novel therapeutic targets.Here, we comprehensively review the interaction of the human gut microbiome and the microbial metabolism of nutrients with host immunity and cardiovascular end-organ damage. The human gut microbiome is evolutionary conditioned and modified throughout life by endogenous factors as well as environmental factors. Chronic diseases, such as CKD, cause significant disruption to the composition and function of the gut microbiome and lead to disease-associated dysbiosis. This dysbiosis and the accompanying loss of biochemical homeostasis in the epithelial cells of the colon can be the result of poor diet (e.g., low-fiber intake), medications, and underlying disease. As a result of dysbiosis, bacteria promoting proteolytic fermentation increase and those for saccharolytic fermentation decrease and the integrity of the gut barrier is perturbed (leaky gut). These changes disrupt local metabolite homeostasis in the gut and decrease productions of the beneficial short-chain fatty acids (SCFAs). Moreover, the enhanced proteolytic fermentation generates unhealthy levels of microbially derived toxic metabolites, which further accumulate in the systemic circulation as a consequence of impaired kidney function. We describe possible mechanisms involved in the increased systemic inflammation in CKD that is associated with the combined effect of SCFA deficiency and accumulation of uremic toxins. In the future, a more comprehensive and mechanistic understanding of the gut-kidney-heart interaction, mediated largely by immune dysregulation and inflammation, might allow us to target the gut microbiome more specifically in order to attenuate CKD-associated comorbidities.
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