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Interplay between Cytoskeletal Stresses and Cell Adaptation under Chronic Flow

  • Deepika Verma
  • , Nannan Ye
  • , Fanjie Meng
  • , Frederick Sachs
  • , Jason Rahimzadeh
  • , Susan Z. Hua
  • SUNY Buffalo

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

Using stress sensitive FRET sensors we have measured cytoskeletal stresses in α-actinin and the associated reorganization of the actin cytoskeleton in cells subjected to chronic shear stress. We show that long-term shear stress reduces the average actinin stress and this effect is reversible with removal of flow. The flow-induced changes in cytoskeletal stresses are found to be dynamic, involving a transient decrease in stress (phase-I), a short-term increase (3-6 min) (Phase-II), followed by a longer-term decrease that reaches a minimum in ~20 min (Phase-III), before saturating. These changes are accompanied by reorganization of the actin cytoskeleton from parallel F-actin bundles to peripheral bundles. Blocking mechanosensitive ion channels (MSCs) with Gd3+ and GsMTx4 (a specific inhibitor) eliminated the changes in cytoskeletal stress and the corresponding actin reorganization, indicating that Ca2+ permeable MSCs participate in the signaling cascades. This study shows that shear stress induced cell adaptation is mediated via MSCs.

Original languageEnglish
Article numbere44167
JournalPLOS ONE
Volume7
Issue number9
DOIs
StatePublished - Sep 19 2012

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