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Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice

The WWC protein family is an upstream regulator of the Hippo signalling pathway that is involved in many cellular processes. We examined the effect of an endothelium-specific WWC1 and/or WWC2 knock-out on ocular angiogenesis. Knock-outs were induced in C57BL/6 mice at the age of one day (P1) and eva...

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Autores principales: Brücher, Viktoria Constanze, Egbring, Charlotte, Plagemann, Tanja, Nedvetsky, Pavel I., Höffken, Verena, Pavenstädt, Hermann, Eter, Nicole, Kremerskothen, Joachim, Heiduschka, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8158494/
https://www.ncbi.nlm.nih.gov/pubmed/34070186
http://dx.doi.org/10.3390/ijms22105321
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author Brücher, Viktoria Constanze
Egbring, Charlotte
Plagemann, Tanja
Nedvetsky, Pavel I.
Höffken, Verena
Pavenstädt, Hermann
Eter, Nicole
Kremerskothen, Joachim
Heiduschka, Peter
author_facet Brücher, Viktoria Constanze
Egbring, Charlotte
Plagemann, Tanja
Nedvetsky, Pavel I.
Höffken, Verena
Pavenstädt, Hermann
Eter, Nicole
Kremerskothen, Joachim
Heiduschka, Peter
author_sort Brücher, Viktoria Constanze
collection PubMed
description The WWC protein family is an upstream regulator of the Hippo signalling pathway that is involved in many cellular processes. We examined the effect of an endothelium-specific WWC1 and/or WWC2 knock-out on ocular angiogenesis. Knock-outs were induced in C57BL/6 mice at the age of one day (P1) and evaluated at P6 (postnatal mice) or induced at the age of five weeks and evaluated at three months of age (adult mice). We analysed morphology of retinal vasculature in retinal flat mounts. In addition, in vivo imaging and functional testing by electroretinography were performed in adult mice. Adult WWC1/2 double knock-out mice differed neither functionally nor morphologically from the control group. In contrast, the retinas of the postnatal WWC knock-out mice showed a hyperproliferative phenotype with significantly enlarged areas of sprouting angiogenesis and a higher number of tip cells. The branching and end points in the peripheral plexus were significantly increased compared to the control group. The deletion of the WWC2 gene was decisive for these effects; while knocking out WWC1 showed no significant differences. The results hint strongly that WWC2 is an essential regulator of ocular angiogenesis in mice. As an activator of the Hippo signalling pathway, it prevents excessive proliferation during physiological angiogenesis. In adult animals, WWC proteins do not seem to be important for the maintenance of the mature vascular plexus.
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spelling pubmed-81584942021-05-28 Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice Brücher, Viktoria Constanze Egbring, Charlotte Plagemann, Tanja Nedvetsky, Pavel I. Höffken, Verena Pavenstädt, Hermann Eter, Nicole Kremerskothen, Joachim Heiduschka, Peter Int J Mol Sci Article The WWC protein family is an upstream regulator of the Hippo signalling pathway that is involved in many cellular processes. We examined the effect of an endothelium-specific WWC1 and/or WWC2 knock-out on ocular angiogenesis. Knock-outs were induced in C57BL/6 mice at the age of one day (P1) and evaluated at P6 (postnatal mice) or induced at the age of five weeks and evaluated at three months of age (adult mice). We analysed morphology of retinal vasculature in retinal flat mounts. In addition, in vivo imaging and functional testing by electroretinography were performed in adult mice. Adult WWC1/2 double knock-out mice differed neither functionally nor morphologically from the control group. In contrast, the retinas of the postnatal WWC knock-out mice showed a hyperproliferative phenotype with significantly enlarged areas of sprouting angiogenesis and a higher number of tip cells. The branching and end points in the peripheral plexus were significantly increased compared to the control group. The deletion of the WWC2 gene was decisive for these effects; while knocking out WWC1 showed no significant differences. The results hint strongly that WWC2 is an essential regulator of ocular angiogenesis in mice. As an activator of the Hippo signalling pathway, it prevents excessive proliferation during physiological angiogenesis. In adult animals, WWC proteins do not seem to be important for the maintenance of the mature vascular plexus. MDPI 2021-05-18 /pmc/articles/PMC8158494/ /pubmed/34070186 http://dx.doi.org/10.3390/ijms22105321 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Brücher, Viktoria Constanze
Egbring, Charlotte
Plagemann, Tanja
Nedvetsky, Pavel I.
Höffken, Verena
Pavenstädt, Hermann
Eter, Nicole
Kremerskothen, Joachim
Heiduschka, Peter
Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title_full Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title_fullStr Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title_full_unstemmed Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title_short Lack of WWC2 Protein Leads to Aberrant Angiogenesis in Postnatal Mice
title_sort lack of wwc2 protein leads to aberrant angiogenesis in postnatal mice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8158494/
https://www.ncbi.nlm.nih.gov/pubmed/34070186
http://dx.doi.org/10.3390/ijms22105321
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