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Force-exerting perpendicular lateral protrusions in fibroblastic cell contraction

  • Abinash Padhi
  • , Karanpreet Singh
  • , Janusz Franco-Barraza
  • , Daniel J. Marston
  • , Edna Cukierman
  • , Klaus M. Hahn
  • , Rakesh K. Kapania
  • , Amrinder S. Nain
  • Virginia Polytechnic Institute and State University
  • Fox Chase Cancer Center
  • University of North Carolina at Chapel Hill

Research output: Contribution to journalArticlepeer-review

28 Scopus citations

Abstract

Aligned extracellular matrix fibers enable fibroblasts to undergo myofibroblastic activation and achieve elongated shapes. Activated fibroblasts are able to contract, perpetuating the alignment of these fibers. This poorly understood feedback process is critical in chronic fibrosis conditions, including cancer. Here, using fiber networks that serve as force sensors, we identify “3D perpendicular lateral protrusions” (3D-PLPs) that evolve from lateral cell extensions named twines. Twines originate from stratification of cyclic-actin waves traversing the cell and swing freely in 3D to engage neighboring fibers. Once engaged, a lamellum forms and extends multiple secondary twines, which fill in to form a sheet-like PLP, in a force-entailing process that transitions focal adhesions to activated (i.e., pathological) 3D-adhesions. The specific morphology of PLPs enables cells to increase contractility and force on parallel fibers. Controlling geometry of extracellular networks confirms that anisotropic fibrous environments support 3D-PLP formation and function, suggesting an explanation for cancer-associated desmoplastic expansion.

Original languageEnglish
Article number390
Pages (from-to)390
JournalCommunications Biology
Volume3
Issue number1
DOIs
StatePublished - Jun 21 2020

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Actins/genetics
  • Cell Adhesion/genetics
  • Cytoskeleton/genetics
  • Extracellular Matrix/genetics
  • Fibroblasts/metabolism
  • Focal Adhesions/genetics
  • Humans
  • Myofibroblasts/metabolism
  • Neoplasms/genetics
  • Tumor Microenvironment/genetics

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