Blood flow within the vasculature is a critical determinant of endothelial cell (EC) identity and functionality, yet the intricate interplay of various hemodynamic forces and their collective impact on endothelial and vascular responses is not fully understood. Specifically, the role of hydrostatic pressure in the EC flow response is understudied, despite its known significance in vascular development and disease. To address this gap, we developed in vitro models to investigate how pressure influences EC responses to flow. Our study demonstrates that elevated pressure conditions significantly modify shear-induced flow alignment and increase EC density. Bulk and single-cell RNA sequencing analyses revealed that, while shear stress remains the primary driver of flow-induced transcriptional changes, pressure modulates shear-induced signaling in a dose-dependent manner. These pressure-responsive transcriptional signatures identified in human ECs were conserved during the onset of circulation in early mouse embryonic vascular development, where pressure was notably associated with transcriptional programs essential to arterial and hemogenic EC fates. Our findings suggest that pressure plays a synergistic role with shear stress on ECs and emphasize the need for an integrative approach to EC mechanotransduction, one that encompasses the effects induced by pressure alongside other hemodynamic forces.
Under pressure: integrated endothelial cell response to hydrostatic and shear stresses.
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作者:Mandrycky Christian J, Ishida Takashi, Merkel Taylor, Rayner Samuel G, Heck Adam M, Hadland Brandon, Zheng Ying
| 期刊: | Vascular Biology | 影响因子: | 0.000 |
| 时间: | 2025 | 起止号: | 2025 Dec 23; 7(1):e250015 |
| doi: | 10.1530/VB-25-0015 | ||
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