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Updated: Apr 27, 2026

Investigating the Three-dimensional Flow Separation Induced by a Model Vocal Fold Polyp
Published on: February 3, 2014
The impact of flow-induced forces on the morphogenesis of the outflow tract
Stefanie V Biechler1, Lorain Junor2, Ashlie N Evans1
1Department of Cell Biology and Anatomy, School of Medicine, University of South Carolina Columbia, SC, USA.
Insights
Fluid flow critically influences embryonic outflow tract development, guiding fibrous valve formation. Understanding this mechanotransduction is key to preventing congenital heart defects and improving valve replacements.
Area of Science:
- Developmental Biology
- Biomedical Engineering
- Cardiovascular Research
Background:
- Congenital heart disease (CHD) affects 1% of infants, often involving outflow tract (OFT) defects requiring complex surgeries.
- Current valve replacements have limitations in strength, biocompatibility, and growth, necessitating research into native valve development.
- The role of flow-induced forces in fibrous valve development (mechanotransduction) is hypothesized but not fully understood.
Purpose of the Study:
- To investigate the response of embryonic outflow tract tissues to varying fluid flow conditions in vitro.
- To elucidate the mechanisms by which fluid flow regulates embryonic valve development and extracellular matrix formation.
Main Methods:
- Utilized a dynamic, three-dimensional bioreactor system to culture embryonic OFT tissues.
- Exposed tissues to different levels of physiological and supraphysiological fluid flow, as well as a no-flow control.
- Analyzed tissue phenotype, cellular organization, and extracellular matrix (ECM) development.
Main Results:
- Absence of flow led to primitive OFT tissue with dispersed cells and disorganized ECM.
- Physiologically matched flow promoted compact cell mounds and initiated fibrous ECM development.
- Prolonged supraphysiological flow resulted in abnormal tissue remodeling.
Conclusions:
- Fluid flow timing and magnitude significantly alter cellular processes in OFT precursor tissues.
- Flow-generated forces regulate the deposition and localization of fibrous ECM proteins.
- Mechanosensitive signaling pathways are crucial for normal OFT development, and dysregulation can lead to pathology.
Abstract:
One percent of infants are born with congenital heart disease (CHD), which commonly involves outflow tract (OFT) defects. These infants often require complex surgeries, which are associated with long term adverse remodeling effects, and receive replacement valves with limited strength, biocompatibility, and growth capability. To address these problematic issues, researchers have carried out investigations in valve development and valve mechanics. A longstanding hypothesis is that flow-induced forces regulate fibrous valve development, however, the specific mechanisms behind this mechanotransduction remain unclear. The purpose of this study was to implement an in vitro system of outflow tract development to test the response of embryonic OFT tissues to fluid flow. A dynamic, three-dimensional bioreactor system was used to culture embryonic OFT tissue under different levels of flow as well as the absence of flow. In the absence of flow, OFT tissues took on a more primitive phenotype that is characteristic of early OFT cushion development where widely dispersed mesenchymal cells are surrounded by a sparse, disorganized extracellular matrix (ECM). Whereas OFT tissues subjected to physiologically matched flow formed compact mounds of cells, initated, fibrous ECM development, while prolonged supraphysiological flow resulted in abnormal tissue remodeling. This study indicates that both the timing and magnitude of flow alter cellular processes that determine if OFT precursor tissue undergoes normal or pathological development. Specifically, these experiments showed that flow-generated forces regulate the deposition and localization of fibrous ECM proteins, indicating that mechanosensitive signaling pathways are capable of driving pathological OFT development if flows are not ideal.
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