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Updated: Nov 12, 2025

Author Spotlight: Integrated Multi-Omics Analysis for Unveiling Multicellular Immune Signatures in Clinical Heart Attack Cohorts
Published on: September 20, 2024
Multi-omics approaches for revealing the complexity of cardiovascular disease
Stephen Doran1, Muhammad Arif2, Simon Lam1
1Centre for Host-Microbiome Interactions, Faculty of Dentistry, Oral & Craniofacial Sciences, King's College London, London, SE1 9RT, United Kingdom.
Insights
Cardiovascular disease (CVD) involves vessel narrowing and organ damage. Systems biology and gut microbiota research offer new insights into CVD mechanisms and potential treatments for conditions like heart attack and stroke.
Area of Science:
- Cardiovascular research
- Systems biology
- Gut microbiota
Background:
- Cardiovascular disease (CVD) stems from atherosclerosis, thrombosis, and cardiac remodelling.
- Comorbidities like chronic kidney disease and gut microbiota dysbiosis contribute to CVD.
- Understanding molecular mechanisms is crucial for CVD progression and treatment.
Purpose of the Study:
- To review multi-omics approaches for understanding CVD.
- To explore gut microbiota's role in CVD development.
- To identify novel drug targets and biomarkers for CVD treatment.
Main Methods:
- Systems biology approaches integrating multi-omics data.
- Analysis of cell type alterations and signaling events.
- Review of gut microbiota research, diet, and microbial composition impacts.
Main Results:
- Multi-omics reveal cell-specific alterations and signaling pathways in CVD.
- Gut microbiota influences CVD through metabolic pathways.
- Biological network analyses aid in mechanistic explanations.
Conclusions:
- Multi-omics and gut microbiota research provide insights into CVD.
- Novel therapeutic strategies and biomarkers can be identified.
- Understanding these factors is key for treating myocardial infarction and stroke.
Abstract:
The development and progression of cardiovascular disease (CVD) can mainly be attributed to the narrowing of blood vessels caused by atherosclerosis and thrombosis, which induces organ damage that will result in end-organ dysfunction characterized by events such as myocardial infarction or stroke. It is also essential to consider other contributory factors to CVD, including cardiac remodelling caused by cardiomyopathies and co-morbidities with other diseases such as chronic kidney disease. Besides, there is a growing amount of evidence linking the gut microbiota to CVD through several metabolic pathways. Hence, it is of utmost importance to decipher the underlying molecular mechanisms associated with these disease states to elucidate the development and progression of CVD. A wide array of systems biology approaches incorporating multi-omics data have emerged as an invaluable tool in establishing alterations in specific cell types and identifying modifications in signalling events that promote disease development. Here, we review recent studies that apply multi-omics approaches to further understand the underlying causes of CVD and provide possible treatment strategies by identifying novel drug targets and biomarkers. We also discuss very recent advances in gut microbiota research with an emphasis on how diet and microbial composition can impact the development of CVD. Finally, we present various biological network analyses and other independent studies that have been employed for providing mechanistic explanation and developing treatment strategies for end-stage CVD, namely myocardial infarction and stroke.
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