Cargando…

The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells

The free radical theory of aging proposes that ROS (reactive oxygen species) are major driving forces of aging, and are also critically involved in cellular senescence. Besides the mitochondrial respiratory chain, alternative sources of ROS have been described that might contribute to cellular senes...

Descripción completa

Detalles Bibliográficos
Autores principales: Lener, Barbara, Kozieł, Rafał, Pircher, Haymo, Hütter, Eveline, Greussing, Ruth, Herndler-Brandstetter, Dietmar, Hermann, Martin, Unterluggauer, Hermann, Jansen-Dürr, Pidder
Formato: Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2762686/
https://www.ncbi.nlm.nih.gov/pubmed/19681754
http://dx.doi.org/10.1042/BJ20090666
_version_ 1782172947687931904
author Lener, Barbara
Kozieł, Rafał
Pircher, Haymo
Hütter, Eveline
Greussing, Ruth
Herndler-Brandstetter, Dietmar
Hermann, Martin
Unterluggauer, Hermann
Jansen-Dürr, Pidder
author_facet Lener, Barbara
Kozieł, Rafał
Pircher, Haymo
Hütter, Eveline
Greussing, Ruth
Herndler-Brandstetter, Dietmar
Hermann, Martin
Unterluggauer, Hermann
Jansen-Dürr, Pidder
author_sort Lener, Barbara
collection PubMed
description The free radical theory of aging proposes that ROS (reactive oxygen species) are major driving forces of aging, and are also critically involved in cellular senescence. Besides the mitochondrial respiratory chain, alternative sources of ROS have been described that might contribute to cellular senescence. Noxs (NADPH oxidases) are well-known sources of superoxide, which contribute to the antimicrobial capabilities of macrophages, a process involving the prototypical member of the family referred to as Nox2. However, in recent years non-phagocytic homologues of Nox2 have been identified that are involved in processes other than the host defence. Superoxide anions produced by these enzymes are believed to play a major role in signalling by MAPKs (mitogen-activated protein kinases) and stress-activated kinases, but could also contribute to cellular senescence, which is known to involve oxygen radicals. In HUVECs (human umbilical vein endothelial cells), Nox4 is predominantly expressed, but its role in replicative senescence of HUVECs remains to be elucidated. Using shRNA (small-hairpin RNA)-mediated knockdown of Nox4, implicating lentiviral vectors, we addressed the question of whether lifelong depletion of Nox4 in HUVECs would influence the senescent phenotype. We found a significant extension of the replicative lifespan of HUVECs upon knockdown of Nox4. Surprisingly, mean telomere length was significantly reduced in Nox4-depleted cells. Nox4 depletion had no discernable influence on the activity of MAPKs and stress-activated kinases, but reduced the degree of oxidative DNA damage. These results suggest that Nox4 activity increases oxidative damage in HUVECs, leading to loss of replicative potential, which is at least partly independent of telomere attrition.
format Text
id pubmed-2762686
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher Portland Press Ltd.
record_format MEDLINE/PubMed
spelling pubmed-27626862009-10-19 The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells Lener, Barbara Kozieł, Rafał Pircher, Haymo Hütter, Eveline Greussing, Ruth Herndler-Brandstetter, Dietmar Hermann, Martin Unterluggauer, Hermann Jansen-Dürr, Pidder Biochem J Research Article The free radical theory of aging proposes that ROS (reactive oxygen species) are major driving forces of aging, and are also critically involved in cellular senescence. Besides the mitochondrial respiratory chain, alternative sources of ROS have been described that might contribute to cellular senescence. Noxs (NADPH oxidases) are well-known sources of superoxide, which contribute to the antimicrobial capabilities of macrophages, a process involving the prototypical member of the family referred to as Nox2. However, in recent years non-phagocytic homologues of Nox2 have been identified that are involved in processes other than the host defence. Superoxide anions produced by these enzymes are believed to play a major role in signalling by MAPKs (mitogen-activated protein kinases) and stress-activated kinases, but could also contribute to cellular senescence, which is known to involve oxygen radicals. In HUVECs (human umbilical vein endothelial cells), Nox4 is predominantly expressed, but its role in replicative senescence of HUVECs remains to be elucidated. Using shRNA (small-hairpin RNA)-mediated knockdown of Nox4, implicating lentiviral vectors, we addressed the question of whether lifelong depletion of Nox4 in HUVECs would influence the senescent phenotype. We found a significant extension of the replicative lifespan of HUVECs upon knockdown of Nox4. Surprisingly, mean telomere length was significantly reduced in Nox4-depleted cells. Nox4 depletion had no discernable influence on the activity of MAPKs and stress-activated kinases, but reduced the degree of oxidative DNA damage. These results suggest that Nox4 activity increases oxidative damage in HUVECs, leading to loss of replicative potential, which is at least partly independent of telomere attrition. Portland Press Ltd. 2009-10-12 2009-11-01 /pmc/articles/PMC2762686/ /pubmed/19681754 http://dx.doi.org/10.1042/BJ20090666 Text en © 2009 The Author(s) The author(s) has paid for this article to be freely available under the terms of the Creative Commons Attribution Non-Commercial Licence (http://creativecommons.org/licenses/by-nc/2.5/) which permits unrestricted non-commercial use, distribution and reproduction in any medium, provided the original work is properly cited. http://creativecommons.org/licenses/by-nc/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Lener, Barbara
Kozieł, Rafał
Pircher, Haymo
Hütter, Eveline
Greussing, Ruth
Herndler-Brandstetter, Dietmar
Hermann, Martin
Unterluggauer, Hermann
Jansen-Dürr, Pidder
The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title_full The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title_fullStr The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title_full_unstemmed The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title_short The NADPH oxidase Nox4 restricts the replicative lifespan of human endothelial cells
title_sort nadph oxidase nox4 restricts the replicative lifespan of human endothelial cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2762686/
https://www.ncbi.nlm.nih.gov/pubmed/19681754
http://dx.doi.org/10.1042/BJ20090666
work_keys_str_mv AT lenerbarbara thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT koziełrafał thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT pircherhaymo thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT huttereveline thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT greussingruth thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT herndlerbrandstetterdietmar thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT hermannmartin thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT unterluggauerhermann thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT jansendurrpidder thenadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT lenerbarbara nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT koziełrafał nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT pircherhaymo nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT huttereveline nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT greussingruth nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT herndlerbrandstetterdietmar nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT hermannmartin nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT unterluggauerhermann nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells
AT jansendurrpidder nadphoxidasenox4restrictsthereplicativelifespanofhumanendothelialcells