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A multidimensional sight on cardiac failure: uncovered from structural to molecular level
Vijay Urmaliya1, Gustavo Franchelli2
1Discovery Sciences, Janssen Research & Development, Beerse, Belgium. vurmaliy@its.jnj.com.
Insights
Heart failure, a leading cause of death, requires personalized treatments. A systems biology approach integrating molecular and cellular insights offers new diagnostic and therapeutic opportunities beyond current methods.
Area of Science:
- Cardiology
- Systems Biology
- Molecular Medicine
Background:
- Heart failure (HF) is a major cause of mortality, with treatments focusing on hemodynamic and neurohumoral factors.
- Current HF classification relies on phenotypic presentation, potentially overlooking underlying molecular drivers.
- The multifactorial nature of HF necessitates a deeper understanding of its cellular and molecular underpinnings.
Purpose of the Study:
- To explore a multilayered approach for understanding heart failure.
- To highlight the potential of systems biology in unraveling HF complexity.
- To identify novel therapeutic opportunities by integrating molecular and cellular insights.
Main Methods:
- Review of current literature on heart failure diagnosis and treatment.
- Analysis of the limitations of ejection fraction-based classification.
- Exploration of systems biology principles for a holistic disease view.
Main Results:
- Current HF classifications may be insufficient due to disease heterogeneity.
- Omics disciplines reveal HF as a complex interplay of cellular and molecular processes.
- A systems biology approach can elucidate interactions between altered components in HF.
Conclusions:
- Integrating molecular and cellular data with systems biology can refine HF diagnosis and classification.
- A holistic, multilayered approach offers potential for personalized HF treatment strategies.
- Understanding subcellular features is crucial for discovering new therapeutic avenues in heart failure.
Abstract:
Heart failure is one of the leading causes of death, with high mortality rate within 5 years after diagnosis. Treatment and prognosis options for heart failure primarily targeted on hemodynamic and neurohumoral components that drive progressive deterioration of the heart. However, given the multifactorial background that eventually leads to the "phenotype" named heart failure, better insight into the various components may lead to personalized treatment opportunities. Indeed, currently used criteria to diagnose and/or classify heart failure are possibly too focused on phenotypic improvement rather than the molecular driver of the disease and could therefore be further refined by integrating the leap of molecular and cellular knowledge. The ambiguity of the ejection fraction-based classification criteria became evident with development of advanced molecular techniques and the dawn of omics disciplines which introduced the idea that disease is caused by a myriad of cellular and molecular processes rather than a single event or pathway. The fact that different signaling pathways may underlie similar clinical manifestations calls for a more holistic study of heart failure. In this context, the systems biology approach can offer a better understanding of how different components of a system are altered during disease and how they interact with each other, potentially leading to improved diagnosis and classification of this condition. This review is aimed at addressing heart failure through a multilayer approach that covers individually some of the anatomical, morphological, functional, and tissue aspects, with focus on cellular and subcellular features as an alternative insight into new therapeutic opportunities.
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