Literature DB >> 17160699

Finite-element stress analysis of a multicomponent model of sheared and focally-adhered endothelial cells.

Michael C Ferko1, Amit Bhatnagar, Mariana B Garcia, Peter J Butler.   

Abstract

Hemodynamic forces applied at the apical surface of vascular endothelial cells may be redistributed to and amplified at remote intracellular organelles and protein complexes where they are transduced to biochemical signals. In this study we sought to quantify the effects of cellular material inhomogeneities and discrete attachment points on intracellular stresses resulting from physiological fluid flow. Steady-state shear- and magnetic bead-induced stress, strain, and displacement distributions were determined from finite-element stress analysis of a cell-specific, multicomponent elastic continuum model developed from multimodal fluorescence images of confluent endothelial cell (EC) monolayers and their nuclei. Focal adhesion locations and areas were determined from quantitative total internal reflection fluorescence microscopy and verified using green fluorescence protein-focal adhesion kinase (GFP-FAK). The model predicts that shear stress induces small heterogeneous deformations of the endothelial cell cytoplasm on the order of <100 nm. However, strain and stress were amplified 10-100-fold over apical values in and around the high-modulus nucleus and near focal adhesions (FAs) and stress distributions depended on flow direction. The presence of a 0.4 microm glycocalyx was predicted to increase intracellular stresses by approximately 2-fold. The model of magnetic bead twisting rheometry also predicted heterogeneous stress, strain, and displacement fields resulting from material heterogeneities and FAs. Thus, large differences in moduli between the nucleus and cytoplasm and the juxtaposition of constrained regions (e.g. FAs) and unattached regions provide two mechanisms of stress amplification in sheared endothelial cells. Such phenomena may play a role in subcellular localization of early mechanotransduction events.

Mesh:

Year:  2006        PMID: 17160699      PMCID: PMC3251212          DOI: 10.1007/s10439-006-9223-4

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  55 in total

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4.  Shear stress induces a time- and position-dependent increase in endothelial cell membrane fluidity.

Authors:  P J Butler; G Norwich; S Weinbaum; S Chien
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5.  Contribution of the nucleus to the mechanical properties of endothelial cells.

Authors:  Nathalie Caille; Olivier Thoumine; Yanik Tardy; Jean-Jacques Meister
Journal:  J Biomech       Date:  2002-02       Impact factor: 2.712

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7.  Flow-induced hardening of endothelial nucleus as an intracellular stress-bearing organelle.

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8.  Fluid shear stress increases membrane fluidity in endothelial cells: a study with DCVJ fluorescence.

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9.  Rate sensitivity of shear-induced changes in the lateral diffusion of endothelial cell membrane lipids: a role for membrane perturbation in shear-induced MAPK activation.

Authors:  Peter J Butler; Tsui-Chun Tsou; Julie Yi-Shuan Li; Shunichi Usami; Shu Chien
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  20 in total

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2.  Macrorheology and adaptive microrheology of endothelial cells subjected to fluid shear stress.

Authors:  Jhanvi H Dangaria; Peter J Butler
Journal:  Am J Physiol Cell Physiol       Date:  2007-08-01       Impact factor: 4.249

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Authors:  Peter J Butler; Cheng Dong; Alan J Snyder; A Daniel Jones; Erin D Sheets
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4.  Integrated multimodal microscopy, time-resolved fluorescence, and optical-trap rheometry: toward single molecule mechanobiology.

Authors:  Ramachandra R Gullapalli; Tristan Tabouillot; Rishi Mathura; Jhanvi H Dangaria; Peter J Butler
Journal:  J Biomed Opt       Date:  2007 Jan-Feb       Impact factor: 3.170

5.  Focal adhesion kinase phosphorylation in flow-activation of endothelial NF-kappaB. Focus on "Focal adhesion kinase modulates activation of NF-kappaB by flow in endothelial cells".

Authors:  Shu Chien; Jeng-Jiann Chiu; Yi-Shuan Li
Journal:  Am J Physiol Cell Physiol       Date:  2009-08-19       Impact factor: 4.249

6.  Mechanotransmission in endothelial cells subjected to oscillatory and multi-directional shear flow.

Authors:  Mahsa Dabagh; Payman Jalali; Peter J Butler; Amanda Randles; John M Tarbell
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7.  In vitro measurements of hemodynamic forces and their effects on endothelial cell mechanics at the sub-cellular level.

Authors:  L M Lambert; I I Pipinos; B T Baxter; Y S Chatzizisis; S J Ryu; R I Leighton; T Wei
Journal:  Biomicrofluidics       Date:  2018-11-09       Impact factor: 2.800

8.  Shear-induced force transmission in a multicomponent, multicell model of the endothelium.

Authors:  Mahsa Dabagh; Payman Jalali; Peter J Butler; John M Tarbell
Journal:  J R Soc Interface       Date:  2014-09-06       Impact factor: 4.118

9.  Endothelial Cell Membrane Sensitivity to Shear Stress is Lipid Domain Dependent.

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Journal:  Cell Mol Bioeng       Date:  2011-06-01       Impact factor: 2.321

10.  Coordinated Mechanosensitivity of Membrane Rafts and Focal Adhesions.

Authors:  Daniela E Fuentes; Peter J Butler
Journal:  Cell Mol Bioeng       Date:  2012-06-01       Impact factor: 2.321

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