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    A minimal actomyosin-based model predicts the dynamics of filopodia on neuronal dendrites

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    Name:
    Mol.Biol.Cell-2017-Marchenko-1 ...
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    Author
    Marchenko, Olena O.
    Das, Sulagna
    Yu, Ji
    Novak, Igor L.
    Rodionov, Vladimir I.
    Efimova, Nadia
    Svitkina, Tatyana
    Wolgemuth, Charles W.
    Loew, Leslie M.
    Affiliation
    Univ Arizona, Dept Phys
    Univ Arizona, Dept Mol & Cellular Biol
    Issue Date
    2017-04-15
    
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    Show full item record
    Publisher
    AMER SOC CELL BIOLOGY
    Citation
    A minimal actomyosin-based model predicts the dynamics of filopodia on neuronal dendrites 2017, 28 (8):1021 Molecular Biology of the Cell
    Journal
    Molecular Biology of the Cell
    Rights
    © American Society for Cell Biology.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Dendritic filopodia are actin-filled dynamic subcellular structures that sprout on neuronal dendrites during neurogenesis. The exploratory motion of the filopodia is crucial for synaptogenesis, but the underlying mechanisms are poorly understood. To study filopodial motility, we collected and analyzed image data on filopodia in cultured rat hippocampal neurons. We hypothesized that mechanical feedback among the actin retrograde flow, myosin activity, and substrate adhesion gives rise to various filopodial behaviors. We formulated a minimal one-dimensional partial differential equation model that reproduced the range of observed motility. To validate our model, we systematically manipulated experimental correlates of parameters in the model: substrate adhesion strength, actin polymerization rate, myosin contractility, and the integrity of the putative microtubule-based barrier at the filopodium base. The model predicts the response of the system to each of these experimental perturbations, supporting the hypothesis that our actomyosin-driven mechanism controls dendritic filopodia dynamics.
    ISSN
    1059-1524
    1939-4586
    PubMed ID
    28228546
    DOI
    10.1091/mbc.E16-06-0461
    Version
    Final published version
    Additional Links
    http://www.molbiolcell.org/lookup/doi/10.1091/mbc.E16-06-0461
    ae974a485f413a2113503eed53cd6c53
    10.1091/mbc.E16-06-0461
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