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Published on: September 16, 2020
The mitochondria-gut microbiota crosstalk - A novel frontier in cardiovascular diseases
Hrushikesh Kulkarni1, Anil Bhanudas Gaikwad1
1Department of Pharmacy, Birla Institute of Technology and Science, Pilani Campus, Vidya Vihar, Pilani, Rajasthan 333031, India.
Insights
The mitochondria-gut microbiota axis significantly impacts cardiovascular diseases (CVDs). Targeting this axis offers novel therapeutic strategies for improving cardiovascular health by modulating mitochondrial function and gut bacteria.
Area of Science:
- Cardiovascular Science
- Microbiology
- Mitochondrial Biology
Background:
- Cardiovascular diseases (CVDs) are a leading global cause of death.
- Complex pathophysiology of CVDs requires novel therapeutic strategies.
- Emerging research highlights the mitochondria-gut microbiota axis in cardiovascular health.
Purpose of the Study:
- To review the bidirectional communication between mitochondria and gut microbiota.
- To examine the collective impact of this axis on cardiovascular health.
- To identify therapeutic targets within the mitochondria-gut microbiota axis for CVDs.
Main Methods:
- Literature review of studies on mitochondria, gut microbiota, and CVDs.
- Analysis of molecular mechanisms linking these systems.
- Examination of key signaling pathways involved in their interaction.
Main Results:
- Mitochondria are vital for cardiovascular homeostasis via OXPHOS, calcium regulation, and redox balance.
- Gut microbiota influences cardiovascular function through metabolites, barrier integrity, and immune modulation.
- Microbial metabolites (TMAO, SCFAs, bile acids) and mitochondrial signals (DAMPs) mediate bidirectional communication.
Conclusions:
- The mitochondria-gut microbiota axis plays a critical role in CVD pathogenesis.
- Key signaling pathways (AMPK, NF-κB, SIRT1-PGC-1α) integrate these interactions.
- Targeting this axis presents promising therapeutic avenues for CVDs.
Abstract:
Cardiovascular diseases (CVDs), including hypertension, atherosclerosis, and cardiomyopathy among others, remain the leading cause of global morbidity and mortality. Despite advances in treatment, the complex pathophysiology of CVDs necessitates innovative approaches to improve patient outcomes. Recent research has uncovered a dynamic interplay between mitochondria and gut microbiota, fundamentally altering our understanding of cardiovascular health. However, while existing studies have primarily focused on individual components of this axis, this review examines the bidirectional communication between these biological systems and their collective impact on cardiovascular health. Mitochondria, serving as cellular powerhouses, are crucial for maintaining cardiovascular homeostasis through oxidative phosphorylation (OXPHOS), calcium regulation, and redox balance. Simultaneously, the gut microbiota influences cardiovascular function through metabolite production, barrier integrity maintenance, and immune system modulation. The mitochondria-gut microbiota axis operates through various molecular mechanisms, including microbial metabolites such as trimethylamine N-oxide (TMAO), short-chain fatty acids (SCFA), and secondary bile acids, which directly influence mitochondrial function. Conversely, mitochondrial stress signals and damage-associated molecular patterns (DAMPs) affect gut microbial communities and barrier function. Key signalling pathways, including AMP-activated protein kinase (AMPK), nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB), and the silent information regulator 1-peroxisome proliferator-activated receptor gamma coactivator 1-alpha (SIRT1-PGC-1α) axis, integrate these interactions, highlighting their role in CVD pathogenesis. Understanding these interactions has revealed promising therapeutic targets, suggesting new therapies aimed at both mitochondrial function and gut microbiota composition. Thus, this review provides a comprehensive framework for leveraging the mitochondria-gut microbiota axis in providing newer therapeutics for CVDs by targeting the AMPK/SIRT-1/PGC-1α/NF-κB signalling.
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