Literature DB >> 31719917

Endothelial Cell Biomechanical Responses are Dependent on Both Fluid Shear Stress and Tensile Strain.

Daphne Meza1, Bryan Musmacker1, Elisabeth Steadman1, Thomas Stransky1, David A Rubenstein1, Wei Yin1,2.   

Abstract

INTRODUCTION: The goal of this study was to investigate how concurrent shear stress and tensile strain affect endothelial cell biomechanical responses.
METHODS: Human coronary artery endothelial cells were exposed to concurrent pulsatile shear stress and cyclic tensile strain in a programmable shearing and stretching device. Three shear stress-tensile strain conditions were used: (1) pulsatile shear stress at 1 Pa and cyclic tensile strain at 7%, simulating normal stress/strain conditions in a healthy coronary artery; (2) shear stress at 3.7 Pa and tensile strain at 3%, simulating pathological stress/strain conditions near a stenosis; (3) shear stress at 0.7 Pa and tensile strain at 5%, simulating pathological stress/strain conditions in a recirculation zone. Cell morphology was quantified using immunofluorescence microscopy. Cell surface PECAM-1 phosphorylation, ICAM-1 expression, ERK1/2 and NF-κB activation were measured using ELISA or Western blot.
RESULTS: Simultaneous stimulation from pulsatile shear stress and cyclic tensile strain induced a significant increase in cell area, compared to that induced by shear stress or tensile strain alone. The combined stimulation caused significant increases in PECAM-1 phosphorylation. The combined stimulation also significantly enhanced EC surface ICAM-1 expression (compared to that under shear stress alone) and transcriptional factor NF-κB activation (compared to that under control conditions).
CONCLUSION: Pulsatile shear stress and cyclic tensile strain could induce increased but not synergistic effect on endothelial cell morphology or activation. The combined mechanical stimulation can be relayed from cell membrane to nucleus. Therefore, to better understand how mechanical conditions affect endothelial cell mechanotransduction and cardiovascular disease development, both shear stress and tensile strain need to be considered. © Biomedical Engineering Society 2019.

Entities:  

Keywords:  Endothelial cells; Mechanotransduction; Shear stress; Shearing–stretching device; Tensile strain

Year:  2019        PMID: 31719917      PMCID: PMC6816737          DOI: 10.1007/s12195-019-00585-0

Source DB:  PubMed          Journal:  Cell Mol Bioeng        ISSN: 1865-5025            Impact factor:   2.321


  83 in total

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2.  A Shearing-Stretching Device That Can Apply Physiological Fluid Shear Stress and Cyclic Stretch Concurrently to Endothelial Cells.

Authors:  Daphne Meza; Louie Abejar; David A Rubenstein; Wei Yin
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9.  Biomechanical and biochemical regulation of cathepsin K expression in endothelial cells converge at AP-1 and NF-κB.

Authors:  Philip M Keegan; Suhaas Anbazhakan; Baolin Kang; Betty S Pace; Manu O Platt
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10.  Detection of frequency-dependent endothelial response to oscillatory shear stress using a microfluidic transcellular monitor.

Authors:  Yoshitaka J Sei; Song Ih Ahn; Theodore Virtue; Taeyoung Kim; YongTae Kim
Journal:  Sci Rep       Date:  2017-08-30       Impact factor: 4.379

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