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Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts

Progenitors of the thoracic tracheal system of adult Drosophila (tracheoblasts) arrest in G2 during larval life and rekindle a mitotic program subsequently. G2 arrest is dependent on ataxia telangiectasia mutated and rad3-related kinase (ATR)-dependent phosphorylation of checkpoint kinase 1 (Chk1) t...

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Autores principales: Kizhedathu, Amrutha, Chhajed, Piyush, Yeramala, Lahari, Sain Basu, Deblina, Mukherjee, Tina, Vinothkumar, Kutti R, Guha, Arjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8594940/
https://www.ncbi.nlm.nih.gov/pubmed/34622778
http://dx.doi.org/10.7554/eLife.68636
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author Kizhedathu, Amrutha
Chhajed, Piyush
Yeramala, Lahari
Sain Basu, Deblina
Mukherjee, Tina
Vinothkumar, Kutti R
Guha, Arjun
author_facet Kizhedathu, Amrutha
Chhajed, Piyush
Yeramala, Lahari
Sain Basu, Deblina
Mukherjee, Tina
Vinothkumar, Kutti R
Guha, Arjun
author_sort Kizhedathu, Amrutha
collection PubMed
description Progenitors of the thoracic tracheal system of adult Drosophila (tracheoblasts) arrest in G2 during larval life and rekindle a mitotic program subsequently. G2 arrest is dependent on ataxia telangiectasia mutated and rad3-related kinase (ATR)-dependent phosphorylation of checkpoint kinase 1 (Chk1) that is actuated in the absence of detectable DNA damage. We are interested in the mechanisms that activate ATR/Chk1 (Kizhedathu et al., 2018; Kizhedathu et al., 2020). Here we report that levels of reactive oxygen species (ROS) are high in arrested tracheoblasts and decrease upon mitotic re-entry. High ROS is dependent on expression of Duox, an H(2)O(2) generating dual oxidase. ROS quenching by overexpression of superoxide dismutase 1, or by knockdown of Duox, abolishes Chk1 phosphorylation and results in precocious proliferation. Tracheae deficient in Duox, or deficient in both Duox and regulators of DNA damage-dependent ATR/Chk1 activation (ATRIP/TOPBP1/claspin), can induce phosphorylation of Chk1 in response to micromolar concentrations of H(2)O(2) in minutes. The findings presented reveal that H(2)O(2) activates ATR/Chk1 in tracheoblasts by a non-canonical, potentially direct, mechanism.
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spelling pubmed-85949402021-11-17 Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts Kizhedathu, Amrutha Chhajed, Piyush Yeramala, Lahari Sain Basu, Deblina Mukherjee, Tina Vinothkumar, Kutti R Guha, Arjun eLife Cell Biology Progenitors of the thoracic tracheal system of adult Drosophila (tracheoblasts) arrest in G2 during larval life and rekindle a mitotic program subsequently. G2 arrest is dependent on ataxia telangiectasia mutated and rad3-related kinase (ATR)-dependent phosphorylation of checkpoint kinase 1 (Chk1) that is actuated in the absence of detectable DNA damage. We are interested in the mechanisms that activate ATR/Chk1 (Kizhedathu et al., 2018; Kizhedathu et al., 2020). Here we report that levels of reactive oxygen species (ROS) are high in arrested tracheoblasts and decrease upon mitotic re-entry. High ROS is dependent on expression of Duox, an H(2)O(2) generating dual oxidase. ROS quenching by overexpression of superoxide dismutase 1, or by knockdown of Duox, abolishes Chk1 phosphorylation and results in precocious proliferation. Tracheae deficient in Duox, or deficient in both Duox and regulators of DNA damage-dependent ATR/Chk1 activation (ATRIP/TOPBP1/claspin), can induce phosphorylation of Chk1 in response to micromolar concentrations of H(2)O(2) in minutes. The findings presented reveal that H(2)O(2) activates ATR/Chk1 in tracheoblasts by a non-canonical, potentially direct, mechanism. eLife Sciences Publications, Ltd 2021-10-08 /pmc/articles/PMC8594940/ /pubmed/34622778 http://dx.doi.org/10.7554/eLife.68636 Text en © 2021, Kizhedathu et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Kizhedathu, Amrutha
Chhajed, Piyush
Yeramala, Lahari
Sain Basu, Deblina
Mukherjee, Tina
Vinothkumar, Kutti R
Guha, Arjun
Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title_full Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title_fullStr Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title_full_unstemmed Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title_short Duox-generated reactive oxygen species activate ATR/Chk1 to induce G2 arrest in Drosophila tracheoblasts
title_sort duox-generated reactive oxygen species activate atr/chk1 to induce g2 arrest in drosophila tracheoblasts
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8594940/
https://www.ncbi.nlm.nih.gov/pubmed/34622778
http://dx.doi.org/10.7554/eLife.68636
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