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Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family

Many organisms rely on oxygen to generate cellular energy (adenosine triphosphate or ATP). During severe hypoxia, the production of ATP decreases, leading to cell damage or death. Conversely, excessive oxygen causes oxidative stress that is equally damaging to cells. To mitigate pathological outcome...

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Autores principales: Le, Nguyet, Hufford, Timothy M., Park, Jong S., Brewster, Rachel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8573611/
https://www.ncbi.nlm.nih.gov/pubmed/34665878
http://dx.doi.org/10.1096/fj.202100443R
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author Le, Nguyet
Hufford, Timothy M.
Park, Jong S.
Brewster, Rachel M.
author_facet Le, Nguyet
Hufford, Timothy M.
Park, Jong S.
Brewster, Rachel M.
author_sort Le, Nguyet
collection PubMed
description Many organisms rely on oxygen to generate cellular energy (adenosine triphosphate or ATP). During severe hypoxia, the production of ATP decreases, leading to cell damage or death. Conversely, excessive oxygen causes oxidative stress that is equally damaging to cells. To mitigate pathological outcomes, organisms have evolved mechanisms to adapt to fluctuations in oxygen levels. Zebrafish embryos are remarkably hypoxia‐tolerant, surviving anoxia (zero oxygen) for hours in a hypometabolic, energy‐conserving state. To begin to unravel underlying mechanisms, we analyze here the distribution of the N‐myc Downstream Regulated Gene (ndrg) family, ndrg1‐4, and their transcriptional response to hypoxia. These genes have been primarily studied in cancer cells and hence little is understood about their normal function and regulation. We show here using in situ hybridization that ndrgs are expressed in metabolically demanding organs of the zebrafish embryo, such as the brain, kidney, and heart. To investigate whether ndrgs are hypoxia‐responsive, we exposed embryos to different durations and severity of hypoxia and analyzed transcript levels. We observed that ndrgs are differentially regulated by hypoxia and that ndrg1a has the most robust response, with a ninefold increase following prolonged anoxia. We further show that this treatment resulted in de novo expression of ndrg1a in tissues where the transcript is not observed under normoxic conditions and changes in Ndrg1a protein expression post‐reoxygenation. These findings provide an entry point into understanding the role of this conserved gene family in the adaptation of normal cells to hypoxia and reoxygenation.
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spelling pubmed-85736112022-10-14 Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family Le, Nguyet Hufford, Timothy M. Park, Jong S. Brewster, Rachel M. FASEB J Research Articles Many organisms rely on oxygen to generate cellular energy (adenosine triphosphate or ATP). During severe hypoxia, the production of ATP decreases, leading to cell damage or death. Conversely, excessive oxygen causes oxidative stress that is equally damaging to cells. To mitigate pathological outcomes, organisms have evolved mechanisms to adapt to fluctuations in oxygen levels. Zebrafish embryos are remarkably hypoxia‐tolerant, surviving anoxia (zero oxygen) for hours in a hypometabolic, energy‐conserving state. To begin to unravel underlying mechanisms, we analyze here the distribution of the N‐myc Downstream Regulated Gene (ndrg) family, ndrg1‐4, and their transcriptional response to hypoxia. These genes have been primarily studied in cancer cells and hence little is understood about their normal function and regulation. We show here using in situ hybridization that ndrgs are expressed in metabolically demanding organs of the zebrafish embryo, such as the brain, kidney, and heart. To investigate whether ndrgs are hypoxia‐responsive, we exposed embryos to different durations and severity of hypoxia and analyzed transcript levels. We observed that ndrgs are differentially regulated by hypoxia and that ndrg1a has the most robust response, with a ninefold increase following prolonged anoxia. We further show that this treatment resulted in de novo expression of ndrg1a in tissues where the transcript is not observed under normoxic conditions and changes in Ndrg1a protein expression post‐reoxygenation. These findings provide an entry point into understanding the role of this conserved gene family in the adaptation of normal cells to hypoxia and reoxygenation. John Wiley and Sons Inc. 2021-10-19 2021-11 /pmc/articles/PMC8573611/ /pubmed/34665878 http://dx.doi.org/10.1096/fj.202100443R Text en © 2021 The Authors. The FASEB Journal published by Wiley Periodicals LLC on behalf of Federation of American Societies for Experimental Biology. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Le, Nguyet
Hufford, Timothy M.
Park, Jong S.
Brewster, Rachel M.
Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title_full Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title_fullStr Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title_full_unstemmed Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title_short Differential expression and hypoxia‐mediated regulation of the N‐myc downstream regulated gene family
title_sort differential expression and hypoxia‐mediated regulation of the n‐myc downstream regulated gene family
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8573611/
https://www.ncbi.nlm.nih.gov/pubmed/34665878
http://dx.doi.org/10.1096/fj.202100443R
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