Unraveling Endothelial Cell Phenotypic Regulation By Spatial Hemodynamic Flows With Microfluidics
Varma, S.; Garcia-Cardena, G.; Voldman, J.
Show abstract
Human endothelial cells (hECs) experience complex spatiotemporal hemodynamic flows and that directly regulate hEC function and susceptibility to cardiovascular disease. Recent medical imaging studies reveal that helical flows strongly correlate with lowered disease susceptibility, as contrasted to multidirectional disturbed flows. However, a lack of platforms to replicate these spatial profiles of flow (SPF) has prevented biological studies to investigate the role hECs play in tuning the observed SPF-correlated disease susceptibility. Here, we utilize microfluidic devices to apply varying SPF upon hECs for the first time, and discover that these flows can differentially impact hEC morphology, transcription, and polarization. Collectively, our platform and studies significantly advance our ability to delineate flow-regulated hEC function and disease susceptibility. Significance StatementIn vivo, hECs experience complex hemodynamic flows, including those that are spatially helical or disturbed, which is in stark contrast to the unidirectional flows typically used to study hECs in vitro. Understanding the impact of SPF on hEC function informs our understanding of the pathophysiology of hEC dysfunction and can lead to interventional solutions that specifically perturb SPF to lower disease risk. Here, we leverage microfluidics to apply and discover the specific impact of SPF on hECs for the first time. Broadly, our platform bridges the mutual interests of the vascular biology and interventional cardiology communities to collectively understand how cardiovascular health is tied to the way blood flows upon the endothelium.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Mechanical intercellular communication via matrix-borne cell force transmission during vascular network formation 94%
- Electrical stimulation directs formation of perfused vasculature in engineered tissues 94%
- Circulating tumor cells shed shearosome extracellular vesicles in capillary bifurcations that activate endothelial and immune cells 93%
Similar papers in this journal
- Suspension physics govern the multiscale dynamics of blood flow in sickle cell disease 93%
- Xenogeneic Skin Transplantation Promotes Angiogenesis and Tissue Regeneration Through Vitamin D-Activated Trem2+ Macrophages 93%
- Oncogenic RAS instructs morphological transformation of human epithelia via differential tissue mechanics. 92%
Similar papers in this journal
- Capillary constrictions prime cancer cell tumorigenicity through PIEZO1 94%
- Multi-parametric thrombus profiling microfluidics detects intensified biomechanical thrombogenesis associated with hypertension and aging 93%
- Polarity-JaM: An image analysis toolbox for cell polarity, junction and morphology quantification 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.