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Biology subjects

Brown, K. N.

Publications and source records attributed to Brown, K. N..

2 recordsLinked to original sources

Application of Physiological and Pathological Wall Shear Stress to Endocardial Endothelial Cells Triggers Complex Signaling Pathways

Discrete subaortic stenosis (DSS) is a congenital heart disease in which a fibrotic membrane forms below the aortic valve; the underlying cellular mechanisms are currently unknown. Since an elevated pressure gradient in the left ventricular outflow tract (LVOT) is a distinguishing feature of DSS, it is hypothesized that the membrane formation is caused by elevated wall shear stress applied to the endocardial endothelial cells (EECs) that line the LVOT, triggering fibrosis. To correlate shear stress to an EEC fibrotic phenotype, we applied fluid shear stress to EECs at physiological and pathological shear rates using a cone-and-plate device, designed to recapitulate physiological wall shear stress in a controlled in vitro environment. Controlled shear stress regimes were applied to EECs to replicate the conditions observed in DSS patients. We found that elevated shear stress triggered EEC alignment as well as endothelial-to-mesenchymal transformation (EndMT) signaling pathways driven by upregulation of SNAI1 gene expression. The EECs were then treated with a small molecule inhibitor of Snail1 protein, CYD19, to attempt to attenuate EndMT signaling, and subsequently subjected to pathological shear stress. The Snail1 inhibitor did downregulate selected markers of EndMT signaling, although only transiently. Interestingly, the application of shear stress had a greater effect on the EEC gene and protein expression than did the Snail1 inhibition. This investigation of EEC response to shear stress reveals the pronounced and complex effect of this mechanical stimulation on the EEC phenotype. Further study should reveal the mechanisms that drive fibrosis and the formation of the DSS membrane.

bioengineering↗

Isolation and Characterization of Endocardial Endothelial Cells from the Left Ventricular Wall and Outflow Tract of the Porcine Heart

The heart contains six different types of endothelial cells, each with a unique function. We sought to characterize the endocardial endothelial cells (EECs), which line the chambers of the heart. EECs are relatively understudied, yet their dysregulation can lead to various cardiac pathologies. Due to the lack of commercial availability of this cell line, we developed a protocol for isolating EECs from porcine hearts and detailed our methodology for establishing populations of EECs through cell sorting. Additionally, we compared the EEC phenotype and fundamental behaviors to a well-studied endothelial cell line, human umbilical vein endothelial cells (HUVECs). The EECs were slightly smaller than HUVECs, and they stained positively for classic endothelial phenotypic markers such as CD31, von Willebrand Factor, and vascular endothelial (VE) cadherin. The EECs proliferated more quickly than HUVECs, yet migrated more slowly to cover a scratch wound assay. Finally, the EECs maintained their robust endothelial phenotype (expression of CD31) through more than a dozen passages. In contrast, the HUVECs showed significantly reduced CD31 expression in later passages. These important phenotypic differences between EECs and HUVECs highlight the need for researchers to utilize the most relevant cell lines when studying or modeling a disease of interest. Impact statementMany researchers model cardiovascular disease via tissue engineering to determine disease etiology on the cellular and molecular level. However, researchers usually rely on commercially-available cell lines, which can result in utilizing cells that are not specific to the region of the heart being modeled and could lead to incorrect conclusions. By providing a detailed protocol for isolating and purifying endocardial endothelial cells, we are enabling other researchers to access this cell line and model cardiovascular disease states more accurately.

pathology↗