Cargando…

Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin

Netrin receptors of the DCC/NEO/UNC-40/Frazzled family have well established roles in cell migration and axon guidance but can also regulate epithelial features such as adhesion, polarity and adherens junction (AJ) stability. Previously, we have shown that overexpression of Drosophila Frazzled (Fra)...

Descripción completa

Detalles Bibliográficos
Autores principales: Golenkina, Sofia, Chaturvedi, Vishal, Saint, Robert, Murray, Michael J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5843272/
https://www.ncbi.nlm.nih.gov/pubmed/29518139
http://dx.doi.org/10.1371/journal.pone.0194003
_version_ 1783305056572932096
author Golenkina, Sofia
Chaturvedi, Vishal
Saint, Robert
Murray, Michael J.
author_facet Golenkina, Sofia
Chaturvedi, Vishal
Saint, Robert
Murray, Michael J.
author_sort Golenkina, Sofia
collection PubMed
description Netrin receptors of the DCC/NEO/UNC-40/Frazzled family have well established roles in cell migration and axon guidance but can also regulate epithelial features such as adhesion, polarity and adherens junction (AJ) stability. Previously, we have shown that overexpression of Drosophila Frazzled (Fra) in the peripodial epithelium (PE) inhibits wing disc eversion and also generates cellular protrusions typical of motile cells. Here, we tested whether the molecular pathways by which Fra inhibits eversion are distinct from those driving motility. We show that in disc proper (DP) epithelial cells Fra, in addition to inducing F-Actin rich protrusions, can affect localization of AJ components and columnar cell shape. We then show that these phenotypes have different requirements for the three conserved Fra cytoplasmic P-motifs and for downstream genes. The formation of protrusions required the P3 motif of Fra, as well as integrins (mys and mew), the Rac pathway (Rac1, wave and, arpc3) and myosin regulatory light chain (Sqh). In contrast, apico-basal cell shape change, which was accompanied by increased myosin phosphorylation, was critically dependent upon the P1 motif and was promoted by RhoGef2 but inhibited by Rac1. Fra also caused a loss of AJ proteins (DE-Cad and Arm) from basolateral regions of epithelial cells. This phenotype required all 3 P-motifs, and was dependent upon the polarity factor par6. par6 was not required for protrusions or cell shape change, but was required to block eversion suggesting that control of AJ components may underlie the ability of Fra to promote epithelial stability. The results imply that multiple molecular pathways act downstream of Fra in epithelial cells.
format Online
Article
Text
id pubmed-5843272
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-58432722018-03-23 Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin Golenkina, Sofia Chaturvedi, Vishal Saint, Robert Murray, Michael J. PLoS One Research Article Netrin receptors of the DCC/NEO/UNC-40/Frazzled family have well established roles in cell migration and axon guidance but can also regulate epithelial features such as adhesion, polarity and adherens junction (AJ) stability. Previously, we have shown that overexpression of Drosophila Frazzled (Fra) in the peripodial epithelium (PE) inhibits wing disc eversion and also generates cellular protrusions typical of motile cells. Here, we tested whether the molecular pathways by which Fra inhibits eversion are distinct from those driving motility. We show that in disc proper (DP) epithelial cells Fra, in addition to inducing F-Actin rich protrusions, can affect localization of AJ components and columnar cell shape. We then show that these phenotypes have different requirements for the three conserved Fra cytoplasmic P-motifs and for downstream genes. The formation of protrusions required the P3 motif of Fra, as well as integrins (mys and mew), the Rac pathway (Rac1, wave and, arpc3) and myosin regulatory light chain (Sqh). In contrast, apico-basal cell shape change, which was accompanied by increased myosin phosphorylation, was critically dependent upon the P1 motif and was promoted by RhoGef2 but inhibited by Rac1. Fra also caused a loss of AJ proteins (DE-Cad and Arm) from basolateral regions of epithelial cells. This phenotype required all 3 P-motifs, and was dependent upon the polarity factor par6. par6 was not required for protrusions or cell shape change, but was required to block eversion suggesting that control of AJ components may underlie the ability of Fra to promote epithelial stability. The results imply that multiple molecular pathways act downstream of Fra in epithelial cells. Public Library of Science 2018-03-08 /pmc/articles/PMC5843272/ /pubmed/29518139 http://dx.doi.org/10.1371/journal.pone.0194003 Text en © 2018 Golenkina et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Golenkina, Sofia
Chaturvedi, Vishal
Saint, Robert
Murray, Michael J.
Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title_full Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title_fullStr Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title_full_unstemmed Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title_short Frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of E-Cadherin
title_sort frazzled can act through distinct molecular pathways in epithelial cells to regulate motility, apical constriction, and localisation of e-cadherin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5843272/
https://www.ncbi.nlm.nih.gov/pubmed/29518139
http://dx.doi.org/10.1371/journal.pone.0194003
work_keys_str_mv AT golenkinasofia frazzledcanactthroughdistinctmolecularpathwaysinepithelialcellstoregulatemotilityapicalconstrictionandlocalisationofecadherin
AT chaturvedivishal frazzledcanactthroughdistinctmolecularpathwaysinepithelialcellstoregulatemotilityapicalconstrictionandlocalisationofecadherin
AT saintrobert frazzledcanactthroughdistinctmolecularpathwaysinepithelialcellstoregulatemotilityapicalconstrictionandlocalisationofecadherin
AT murraymichaelj frazzledcanactthroughdistinctmolecularpathwaysinepithelialcellstoregulatemotilityapicalconstrictionandlocalisationofecadherin