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Inflammasomes and Cardiovascular Disease: Linking Inflammation to Cardiovascular Pathophysiology
Mohamed J Saadh1, Faris Anad Muhammad2, Rafid Jihad Albadr3
1Faculty of Pharmacy, Middle East University, Amman, Jordan.
Insights
Inflammasomes, particularly NLRP3, drive cardiovascular diseases (CVDs) by promoting inflammation. Targeting these inflammasome pathways offers promising therapeutic strategies for treating inflammatory CVDs and improving patient outcomes.
Area of Science:
- Cardiovascular Research
- Immunology
- Molecular Biology
Background:
- Cardiovascular diseases (CVDs) are a major cause of death globally.
- Risk factors include dyslipidemia, hypertension, and diabetes.
- Inflammasomes, especially NLRP3, are increasingly recognized in CVD pathogenesis.
Purpose of the Study:
- To review inflammasome structure, activation, and role in cardiovascular pathology.
- To explore therapeutic strategies targeting inflammasomes in CVDs.
- To highlight the potential of AI in cardiovascular research.
Main Methods:
- Comprehensive literature review of inflammasome research in cardiovascular diseases.
- Analysis of inflammasome activation pathways (e.g., ion fluxes, ER stress).
- Exploration of emerging therapeutic approaches and AI integration.
Main Results:
- Inflammasomes activate inflammatory responses via cytokines like IL-1β and IL-18.
- Key activation pathways involve ion fluxes, ER stress, mitochondrial dysfunction, and lysosomal destabilization.
- Targeting inflammasomes, particularly NLRP3, shows therapeutic potential.
Conclusions:
- Inflammasomes play a critical role in the development and progression of CVDs.
- Targeting inflammasomes presents a promising avenue for novel CVD therapies.
- AI integration can advance biomarker discovery and personalized treatment strategies for CVDs.
Abstract:
Cardiovascular diseases (CVDs) remain a leading cause of global mortality, driven by risk factors such as dyslipidemia, hypertension and diabetes. Recent research has highlighted the critical role of inflammasomes, particularly the NLRP3 inflammasome, in the pathogenesis of various CVDs, including hypertension, atherosclerosis, myocardial infarction and heart failure. Inflammasomes are intracellular protein complexes that activate inflammatory responses through the production of pro-inflammatory cytokines such as IL-1β and IL-18, contributing to endothelial dysfunction, plaque formation and myocardial injury. This review provides a comprehensive overview of the structure, activation mechanisms and pathways of inflammasomes, with a focus on their involvement in cardiovascular pathology. Key activation pathways include ion fluxes (K+ efflux and Ca2+ signalling), endoplasmic reticulum (ER) stress, mitochondrial dysfunction and lysosomal destabilisation. The review also explores the therapeutic potential of targeting inflammasomes to mitigate inflammation and improve outcomes in CVDs. Emerging strategies include small-molecule inhibitors, biologics and RNA-based therapeutics, with a particular emphasis on NLRP3 inhibition. Additionally, the integration of artificial intelligence (AI) in cardiovascular research offers promising avenues for identifying novel biomarkers, predicting disease risk and developing personalised treatment strategies. Future research directions should focus on understanding the interactions between inflammasomes and other immune components, as well as genetic regulators, to uncover new therapeutic targets. By elucidating the complex role of inflammasomes in CVDs, this review underscores the potential for innovative therapies to address inflammation-driven cardiovascular pathology, ultimately improving patient outcomes.
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