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April 1, 1996Journal of Cell Science530 citations

Mechanism of endothelial cell shape change and cytoskeletal remodeling in response to fluid shear stress

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AMAdel M. MalekSISeigo Izumo

Key Result

Fluid shear stress induces endothelial shape change and F-actin network remodeling via a mechanism dependent on tyrosine kinase activity, intracellular calcium, and intact microtubules.

Structured PICO

P
Population
Bovine aortic endothelium (BAE) cells
I
Intervention
Fluid shear stress (FSS) with and without various pharmacological agents (quin2-AM, herbimycin A, chelerythrine, acrylamide, nocodazole, taxol, barium, gadolinium)
C
Comparator
Unstressed cells or cells exposed to FSS without specific inhibitors
O
Outcome
Cell shape change and actin stress fiber inductionsurrogate

Fluid shear stress induces endothelial cell shape change and cytoskeletal remodeling through a mechanism requiring tyrosine kinase activity, intracellular calcium, and intact microtubules.

Abstract

Endothelium exposed to fluid shear stress (FSS) undergoes cell shape change, alignment and microfilament network remodeling in the direction of flow by an unknown mechanism. In this study we explore the role of tyrosine kinase (TK) activity, intracellular calcium (Ca2+i), mechanosensitive channels and cytoskeleton in the mechanism of cell shape change and actin stress fiber induction in bovine aortic endothelium (BAE). We report that FSS induces beta-actin mRNA in a time- and magnitude-dependent fashion. Treatment with quin2-AM to chelate intracellular calcium release and herbimycin A to inhibit TK activity abolished BAE shape change and actin stress fiber induction by FSS, while inhibition of protein kinase C with chelerythrine had no effect. Altering intermediate filament structure with acrylamide did not affect alignment or F-actin induction by FSS. Examining the role of the BAE cytoskeleton revealed a critical role for microtubules (MT). MT disruption with nocodazole blocked both FSS-induced morphological change and actin stress fiber induction. In contrast, MT hyperpolymerization with taxol attenuated the cell shape change but did not prevent actin stress fiber induction under flow. Mechanosensitive channels were found not to be involved in the FSS-induced shape change. Blocking the shear-activated current (IK.S) with barium and the stretch-activated cation channels (ISA) with gadolinium had no effect on the shear-induced changes in morphology and cytoskeleton. In summary, FSS has a profound effect on endothelial shape and F-actin network by a mechanism which depends on TK activity, intracellular calcium, and an intact microtubule network, but is independent of protein kinase C, intermediate filaments and shear- and stretch-activated mechanosensitive channels.

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Cite This Study

Malek et al. (1996) studied Endothelial cell shape change and cytoskeletal remodeling. Fluid shear stress (FSS) and pharmacological inhibitors was evaluated on Cell shape change and actin stress fiber induction. Fluid shear stress induces endothelial shape change and F-actin network remodeling via a mechanism dependent on tyrosine kinase activity, intracellular calcium, and intact microtubules.

synapsesocial.com/papers/6a0d9ea76e03bc61cb09d583https://doi.org/10.1242/jcs.109.4.713
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Orientation of endothelial cells in shear fields in vitro1984 · 132 citations
  2. 2Regulation of endothelin 1 gene by fluid shear stress is transcriptionally mediated and independent of protein kinase C and cAMP.1993 · 212 citations
  3. 3Tyrosine phosphorylation of paxillin and pp125FAK accompanies cell adhesion to extracellular matrix: a role in cytoskeletal assembly.1992 · 1,319 citations
  4. 4Molecular cloning and characterization of the constitutive bovine aortic endothelial cell nitric oxide synthase.1992 · 741 citations
  5. 5Role of Ca2+ and protein kinase C in shear stress-induced actin depolymerization and endothelin 1 gene expression.1994 · 83 citations