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Construction of Defined Human Engineered Cardiac Tissues to Study Mechanisms of Cardiac Cell Therapy
Published on: March 1, 2016
Cardiac fibrosis: Cell biological mechanisms, molecular pathways and therapeutic opportunities
1The Wilf Family Cardiovascular Research Institute, Department of Medicine (Cardiology), Albert Einstein College of Medicine, 1300 Morris Park Avenue, Forchheimer G46B, Bronx, NY, 10461, USA.
Insights
Cardiac fibrosis, a key feature of heart disease, involves activated myofibroblasts and contributes to heart dysfunction. Understanding its complex mechanisms is crucial for developing effective therapies against this reparative process.
Area of Science:
- Cardiovascular Biology
- Pathology
- Cell Biology
Background:
- Cardiac fibrosis is a common pathological process in myocardial diseases, leading to impaired heart function and adverse outcomes.
- The adult mammalian heart has limited regenerative capacity, making fibrosis a critical repair mechanism after cardiomyocyte death.
- Pathophysiological stimuli like pressure/volume overload, metabolic dysfunction, and aging can induce fibrosis even without infarction.
Purpose of the Study:
- To elucidate the cellular and molecular mechanisms underlying cardiac fibrosis.
- To identify the key cell types and signaling pathways involved in the fibrotic response.
- To highlight the challenges and future directions for therapeutic targeting of cardiac fibrosis.
Main Methods:
- Review and synthesis of existing literature on cardiac fibrosis.
- Analysis of cellular players, including myofibroblasts, cardiomyocytes, immune cells, and others.
- Examination of fibrogenic signaling pathways and mediators, such as growth factors and cytokines.
Main Results:
- Activated myofibroblasts are central to fibrosis, driven by resident interstitial cells and influenced by various cell types.
- Multiple fibrogenic signals, including Tumor Necrosis Factor-α and Transforming Growth Factor-β family members, activate specific fibrotic responses.
- Intracellular signaling cascades regulate extracellular matrix metabolism, driven by interactions between mediators and cell surface receptors.
Conclusions:
- Cardiac fibrosis is a complex, multifactorial process involving diverse cell types and signaling pathways.
- Targeting fibrosis presents challenges due to its reparative nature, necessitating a deep understanding of its cell biology.
- Future therapies require precise identification of mechanisms and patient subsets with overactive fibrotic responses.
Abstract:
Cardiac fibrosis is a common pathophysiologic companion of most myocardial diseases, and is associated with systolic and diastolic dysfunction, arrhythmogenesis, and adverse outcome. Because the adult mammalian heart has negligible regenerative capacity, death of a large number of cardiomyocytes results in reparative fibrosis, a process that is critical for preservation of the structural integrity of the infarcted ventricle. On the other hand, pathophysiologic stimuli, such as pressure overload, volume overload, metabolic dysfunction, and aging may cause interstitial and perivascular fibrosis in the absence of infarction. Activated myofibroblasts are the main effector cells in cardiac fibrosis; their expansion following myocardial injury is primarily driven through activation of resident interstitial cell populations. Several other cell types, including cardiomyocytes, endothelial cells, pericytes, macrophages, lymphocytes and mast cells may contribute to the fibrotic process, by producing proteases that participate in matrix metabolism, by secreting fibrogenic mediators and matricellular proteins, or by exerting contact-dependent actions on fibroblast phenotype. The mechanisms of induction of fibrogenic signals are dependent on the type of primary myocardial injury. Activation of neurohumoral pathways stimulates fibroblasts both directly, and through effects on immune cell populations. Cytokines and growth factors, such as Tumor Necrosis Factor-α, Interleukin (IL)-1, IL-10, chemokines, members of the Transforming Growth Factor-β family, IL-11, and Platelet-Derived Growth Factors are secreted in the cardiac interstitium and play distinct roles in activating specific aspects of the fibrotic response. Secreted fibrogenic mediators and matricellular proteins bind to cell surface receptors in fibroblasts, such as cytokine receptors, integrins, syndecans and CD44, and transduce intracellular signaling cascades that regulate genes involved in synthesis, processing and metabolism of the extracellular matrix. Endogenous pathways involved in negative regulation of fibrosis are critical for cardiac repair and may protect the myocardium from excessive fibrogenic responses. Due to the reparative nature of many forms of cardiac fibrosis, targeting fibrotic remodeling following myocardial injury poses major challenges. Development of effective therapies will require careful dissection of the cell biological mechanisms, study of the functional consequences of fibrotic changes on the myocardium, and identification of heart failure patient subsets with overactive fibrotic responses.
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