Literature DB >> 21557512

The actin nucleating Arp2/3 complex contributes to the formation of axonal filopodia and branches through the regulation of actin patch precursors to filopodia.

Mirela Spillane1, Andrea Ketschek, Steven L Jones, Farida Korobova, Bonnie Marsick, Lorene Lanier, Tatyana Svitkina, Gianluca Gallo.   

Abstract

The emergence of axonal filopodia is the first step in the formation of axon collateral branches. In vitro, axonal filopodia emerge from precursor cytoskeletal structures termed actin patches. However, nothing is known about the cytoskeletal dynamics of the axon leading to the formation of filopodia in the relevant tissue environment. In this study we investigated the role of the actin nucleating Arp2/3 complex in the formation of sensory axon actin patches, filopodia, and branches. By combining in ovo chicken embryo electroporation mediated gene delivery with a novel acute ex vivo spinal cord preparation, we demonstrate that actin patches form along sensory axons and give rise to filopodia in situ. Inhibition of Arp2/3 complex function in vitro and in vivo decreases the number of axonal filopodia. In vitro, Arp2/3 complex subunits and upstream regulators localize to actin patches. Analysis of the organization of actin filaments in actin patches using platinum replica electron microscopy reveals that patches consist of networks of actin filaments, and filaments in axonal filopodia exhibit an organization consistent with the Arp2/3-based convergent elongation mechanism. Nerve growth factor (NGF) promotes formation of axonal filopodia and branches through phosphoinositide 3-kinase (PI3K). Inhibition of the Arp2/3 complex impairs NGF/PI3K-induced formation of axonal actin patches, filopodia, and the formation of collateral branches. Collectively, these data reveal that the Arp2/3 complex contributes to the formation of axon collateral branches through its involvement in the formation of actin patches leading to the emergence of axonal filopodia.
Copyright © 2011 Wiley Periodicals, Inc.

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Year:  2011        PMID: 21557512      PMCID: PMC3154400          DOI: 10.1002/dneu.20907

Source DB:  PubMed          Journal:  Dev Neurobiol        ISSN: 1932-8451            Impact factor:   3.964


  47 in total

1.  RhoA-kinase and myosin II are required for the maintenance of growth cone polarity and guidance by nerve growth factor.

Authors:  Robert P Loudon; Lee D Silver; Hal F Yee; Gianluca Gallo
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2.  RhoA-kinase coordinates F-actin organization and myosin II activity during semaphorin-3A-induced axon retraction.

Authors:  Gianluca Gallo
Journal:  J Cell Sci       Date:  2006-08-15       Impact factor: 5.285

3.  Dynamics of target recognition by interstitial axon branching along developing cortical axons.

Authors:  M Bastmeyer; D D O'Leary
Journal:  J Neurosci       Date:  1996-02-15       Impact factor: 6.167

4.  Pten regulates neuronal arborization and social interaction in mice.

Authors:  Chang-Hyuk Kwon; Bryan W Luikart; Craig M Powell; Jing Zhou; Sharon A Matheny; Wei Zhang; Yanjiao Li; Suzanne J Baker; Luis F Parada
Journal:  Neuron       Date:  2006-05-04       Impact factor: 17.173

5.  Nerve growth factor induces axonal filopodia through localized microdomains of phosphoinositide 3-kinase activity that drive the formation of cytoskeletal precursors to filopodia.

Authors:  Andrea Ketschek; Gianluca Gallo
Journal:  J Neurosci       Date:  2010-09-08       Impact factor: 6.167

6.  Cordon-bleu is an actin nucleation factor and controls neuronal morphology.

Authors:  Rashmi Ahuja; Roser Pinyol; Nicole Reichenbach; Laura Custer; John Klingensmith; Michael M Kessels; Britta Qualmann
Journal:  Cell       Date:  2007-10-19       Impact factor: 41.582

7.  E3 ligase Nedd4 promotes axon branching by downregulating PTEN.

Authors:  Jovana Drinjakovic; Hosung Jung; Douglas S Campbell; Laure Strochlic; Asha Dwivedy; Christine E Holt
Journal:  Neuron       Date:  2010-02-11       Impact factor: 17.173

8.  Subcellular profiling reveals distinct and developmentally regulated repertoire of growth cone mRNAs.

Authors:  Krishna H Zivraj; Yi Chun Loraine Tung; Michael Piper; Laura Gumy; James W Fawcett; Giles S H Yeo; Christine E Holt
Journal:  J Neurosci       Date:  2010-11-17       Impact factor: 6.167

9.  Role of fascin in filopodial protrusion.

Authors:  Danijela Vignjevic; Shin-ichiro Kojima; Yvonne Aratyn; Oana Danciu; Tatyana Svitkina; Gary G Borisy
Journal:  J Cell Biol       Date:  2006-09-11       Impact factor: 10.539

10.  Extracellular stimuli specifically regulate localized levels of individual neuronal mRNAs.

Authors:  Dianna E Willis; Erna A van Niekerk; Yukio Sasaki; Mariano Mesngon; Tanuja T Merianda; Gervan G Williams; Marvin Kendall; Deanna S Smith; Gary J Bassell; Jeffery L Twiss
Journal:  J Cell Biol       Date:  2007-09-04       Impact factor: 10.539

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  63 in total

1.  Nerve growth factor promotes reorganization of the axonal microtubule array at sites of axon collateral branching.

Authors:  Andrea Ketschek; Steven Jones; Mirela Spillane; Farida Korobova; Tatyana Svitkina; Gianluca Gallo
Journal:  Dev Neurobiol       Date:  2015-05-27       Impact factor: 3.964

2.  Bidirectional actin transport is influenced by microtubule and actin stability.

Authors:  Joshua Chetta; James M Love; Brian G Bober; Sameer B Shah
Journal:  Cell Mol Life Sci       Date:  2015-06-05       Impact factor: 9.261

3.  Regulation of ECM degradation and axon guidance by growth cone invadosomes.

Authors:  Miguel Santiago-Medina; Kelly A Gregus; Robert H Nichol; Sean M O'Toole; Timothy M Gomez
Journal:  Development       Date:  2015-01-06       Impact factor: 6.868

Review 4.  Building branched tissue structures: from single cell guidance to coordinated construction.

Authors:  James W Spurlin; Celeste M Nelson
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2017-05-19       Impact factor: 6.237

Review 5.  The Arp2/3 complex is essential at multiple stages of neural development.

Authors:  Fu-Sheng Chou; Pei-Shan Wang
Journal:  Neurogenesis (Austin)       Date:  2016-12-27

Review 6.  Expanding Axonal Transcriptome Brings New Functions for Axonally Synthesized Proteins in Health and Disease.

Authors:  Amar N Kar; Seung Joon Lee; Jeffery L Twiss
Journal:  Neuroscientist       Date:  2017-06-08       Impact factor: 7.519

Review 7.  Intra-axonal mechanisms driving axon regeneration.

Authors:  Terika P Smith; Pabitra K Sahoo; Amar N Kar; Jeffery L Twiss
Journal:  Brain Res       Date:  2020-04-28       Impact factor: 3.252

8.  Structure and Function of an Actin-Based Filter in the Proximal Axon.

Authors:  Varuzhan Balasanyan; Kaori Watanabe; William P Dempsey; Tommy L Lewis; Le A Trinh; Don B Arnold
Journal:  Cell Rep       Date:  2017-12-05       Impact factor: 9.423

9.  Nerve growth factor-induced formation of axonal filopodia and collateral branches involves the intra-axonal synthesis of regulators of the actin-nucleating Arp2/3 complex.

Authors:  Mirela Spillane; Andrea Ketschek; Chris J Donnelly; Almudena Pacheco; Jeffrey L Twiss; Gianluca Gallo
Journal:  J Neurosci       Date:  2012-12-05       Impact factor: 6.167

10.  Axonally synthesized β-actin and GAP-43 proteins support distinct modes of axonal growth.

Authors:  Christopher J Donnelly; Michael Park; Mirela Spillane; Soonmoon Yoo; Almudena Pacheco; Cynthia Gomes; Deepika Vuppalanchi; Marguerite McDonald; Hak Hee Kim; Hak Kee Kim; Tanuja T Merianda; Gianluca Gallo; Jeffery L Twiss
Journal:  J Neurosci       Date:  2013-02-20       Impact factor: 6.167

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