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Updated: Nov 25, 2025

Isolation of Human Primary Valve Cells for In vitro Disease Modeling
Published on: April 16, 2021
Biology and Biomechanics of the Heart Valve Extracellular Matrix
Karthik M Kodigepalli1, Kaitlyn Thatcher1, Toni West2
1Department of Pediatrics, Medical College of Wisconsin, Milwaukee, WI 53226, USA.
Insights
Heart valve dysfunction arises from extracellular matrix (ECM) disorganization, impacting biomechanical function and leading to heart failure. Understanding ECM pathobiology is crucial for developing novel therapies beyond surgery.
Area of Science:
- Cardiovascular Biology
- Biomaterials Science
- Pathobiology
Background:
- Heart valves require robust extracellular matrix (ECM) for daily mechanical demands.
- Valve ECM failure compromises biomechanical function, potentially causing heart failure.
- Current treatments for heart valve dysfunction are limited, especially for high-risk patients.
Purpose of the Study:
- To review the biology and biomechanical roles of key heart valve ECM components.
- To explore how ECM aberrations contribute to heart valve dysfunction in diseases.
- To highlight ECM as a therapeutic target for heart valve disease.
Main Methods:
- Literature review of heart valve ECM biology and disease.
- Analysis of ECM's role in biomechanical valve function.
- Discussion of connective tissue disorders and their impact on valve ECM.
Main Results:
- Heart valve ECM provides essential biomechanical properties for unidirectional blood flow.
- Disorganized or defective ECM leads to valve dysfunction and potential heart failure.
- Connective tissue disorders cause ECM abnormalities, impairing valve infrastructure and function.
Conclusions:
- The heart valve ECM is critical for maintaining valve integrity and function.
- Aberrations in ECM composition and organization are key drivers of valve disease.
- Targeting ECM pathobiology offers a promising avenue for developing new therapeutic strategies.
Abstract:
Heart valves are dynamic structures that, in the average human, open and close over 100,000 times per day, and 3 × 109 times per lifetime to maintain unidirectional blood flow. Efficient, coordinated movement of the valve structures during the cardiac cycle is mediated by the intricate and sophisticated network of extracellular matrix (ECM) components that provide the necessary biomechanical properties to meet these mechanical demands. Organized in layers that accommodate passive functional movements of the valve leaflets, heart valve ECM is synthesized during embryonic development, and remodeled and maintained by resident cells throughout life. The failure of ECM organization compromises biomechanical function, and may lead to obstruction or leaking, which if left untreated can lead to heart failure. At present, effective treatment for heart valve dysfunction is limited and frequently ends with surgical repair or replacement, which comes with insuperable complications for many high-risk patients including aged and pediatric populations. Therefore, there is a critical need to fully appreciate the pathobiology of biomechanical valve failure in order to develop better, alternative therapies. To date, the majority of studies have focused on delineating valve disease mechanisms at the cellular level, namely the interstitial and endothelial lineages. However, less focus has been on the ECM, shown previously in other systems, to be a promising mechanism-inspired therapeutic target. Here, we highlight and review the biology and biomechanical contributions of key components of the heart valve ECM. Furthermore, we discuss how human diseases, including connective tissue disorders lead to aberrations in the abundance, organization and quality of these matrix proteins, resulting in instability of the valve infrastructure and gross functional impairment.
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