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Tuning the depolymerization and restructuring of actin networks via thymosin and cofilin

POSTER

Abstract



Actin is a key component of the cytoskeleton responsible for vital functions ranging from motility to structural support of cells. This multifunctionality is due, in large part, to the dynamic polymerization of actin monomers into semiflexible filaments, the depolymerization of filaments into monomers, and the changing lengths of filaments. Polymerization drives cell migration, while depolymerization and turnover mediate cell growth and restructuring. Thymosin-β4 and cofilin are two key actin-binding proteins that promote depolymerization by sequestering actin monomers or severing filaments, respectively. Here, we incorporate thymosin and cofilin into entangled actin networks and visualize the subsequent in situ depolymerization and restructuring via confocal microscopy. We use fourier image analysis techniques to characterize the time-varying dynamics and restructuring of the networks and map their dependence on the concentrations of actin, cofilin and thymosin. Our results not only shed light on cellular processes that rely on actin polymerization and depolymerization, but also may inspire the engineering of non-equilibrium materials that leverage depolymerization as a route to dynamically transition from gel-like to fluid-like states.

Presenters

  • Alyxandra Vyn

    University of San Diego

Authors

  • Alyxandra Vyn

    University of San Diego

  • Rae M Robertson-Anderson

    University San Diego, University of San Diego, Department of Physics and Biophysics, University of San Diego

  • Mehrzad Sasanpour

    University of San Diego

  • Michael J Rust

    University of Chicago

  • Moumita Das

    Rochester Institute of Technology

  • Jennifer L Ross

    Syracuse University

  • Michelle Chiu

    University of Chicago