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The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner

Drosophila CG10915 is an uncharacterized protein coding gene with sequence similarity to human Cortactin-binding protein 2 (CTTNBP2) and Cortactin-binding protein 2 N-terminal-like (CTTNBP2NL). Here, we have named this gene Nausicaa (naus) and characterize it through a combination of quantitative li...

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Autores principales: O'Connell, Meghan E., Sridharan, Divya, Driscoll, Tristan, Krishnamurthy, Ipsita, Perry, Wick G., Applewhite, Derek A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6602326/
https://www.ncbi.nlm.nih.gov/pubmed/31164339
http://dx.doi.org/10.1242/bio.038232
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author O'Connell, Meghan E.
Sridharan, Divya
Driscoll, Tristan
Krishnamurthy, Ipsita
Perry, Wick G.
Applewhite, Derek A.
author_facet O'Connell, Meghan E.
Sridharan, Divya
Driscoll, Tristan
Krishnamurthy, Ipsita
Perry, Wick G.
Applewhite, Derek A.
author_sort O'Connell, Meghan E.
collection PubMed
description Drosophila CG10915 is an uncharacterized protein coding gene with sequence similarity to human Cortactin-binding protein 2 (CTTNBP2) and Cortactin-binding protein 2 N-terminal-like (CTTNBP2NL). Here, we have named this gene Nausicaa (naus) and characterize it through a combination of quantitative live-cell total internal reflection fluorescence microscopy, electron microscopy, RNAi depletion and genetics. We found that Naus co-localizes with F-actin and Cortactin in the lamellipodia of Drosophila S2R+ and D25c2 cells and this localization is lost following Cortactin or Arp2/3 depletion or by mutations that disrupt a conserved proline patch found in its mammalian homologs. Using permeabilization activated reduction in fluorescence and fluorescence recovery after photobleaching, we find that depletion of Cortactin alters Naus dynamics leading to a decrease in its half-life. Furthermore, we discovered that Naus depletion in S2R+ cells led to a decrease in actin retrograde flow and a lamellipodia characterized by long, unbranched filaments. We demonstrate that these alterations to the dynamics and underlying actin architecture also affect D25c2 cell migration and decrease arborization in Drosophila neurons. We present the hypothesis that Naus functions to slow Cortactin's disassociation from Arp2/3 nucleated branch junctions, thereby increasing both branch nucleation and junction stability.
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spelling pubmed-66023262019-07-02 The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner O'Connell, Meghan E. Sridharan, Divya Driscoll, Tristan Krishnamurthy, Ipsita Perry, Wick G. Applewhite, Derek A. Biol Open Research Article Drosophila CG10915 is an uncharacterized protein coding gene with sequence similarity to human Cortactin-binding protein 2 (CTTNBP2) and Cortactin-binding protein 2 N-terminal-like (CTTNBP2NL). Here, we have named this gene Nausicaa (naus) and characterize it through a combination of quantitative live-cell total internal reflection fluorescence microscopy, electron microscopy, RNAi depletion and genetics. We found that Naus co-localizes with F-actin and Cortactin in the lamellipodia of Drosophila S2R+ and D25c2 cells and this localization is lost following Cortactin or Arp2/3 depletion or by mutations that disrupt a conserved proline patch found in its mammalian homologs. Using permeabilization activated reduction in fluorescence and fluorescence recovery after photobleaching, we find that depletion of Cortactin alters Naus dynamics leading to a decrease in its half-life. Furthermore, we discovered that Naus depletion in S2R+ cells led to a decrease in actin retrograde flow and a lamellipodia characterized by long, unbranched filaments. We demonstrate that these alterations to the dynamics and underlying actin architecture also affect D25c2 cell migration and decrease arborization in Drosophila neurons. We present the hypothesis that Naus functions to slow Cortactin's disassociation from Arp2/3 nucleated branch junctions, thereby increasing both branch nucleation and junction stability. The Company of Biologists Ltd 2019-06-04 /pmc/articles/PMC6602326/ /pubmed/31164339 http://dx.doi.org/10.1242/bio.038232 Text en © 2019. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
O'Connell, Meghan E.
Sridharan, Divya
Driscoll, Tristan
Krishnamurthy, Ipsita
Perry, Wick G.
Applewhite, Derek A.
The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title_full The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title_fullStr The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title_full_unstemmed The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title_short The Drosophila protein, Nausicaa, regulates lamellipodial actin dynamics in a Cortactin-dependent manner
title_sort drosophila protein, nausicaa, regulates lamellipodial actin dynamics in a cortactin-dependent manner
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6602326/
https://www.ncbi.nlm.nih.gov/pubmed/31164339
http://dx.doi.org/10.1242/bio.038232
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