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Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis

Fibrosis-driven solid organ failure is an enormous burden on global health. Spiny mice (Acomys) are terrestrial mammals that can regenerate severe skin wounds without scars to avoid predation. Whether spiny mice also regenerate internal organ injuries is unknown. Here, we show that despite equivalen...

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Autores principales: Okamura, Daryl M., Brewer, Chris M., Wakenight, Paul, Bahrami, Nadia, Bernardi, Kristina, Tran, Amy, Olson, Jill, Shi, Xiaogang, Yeh, Szu-Ying, Piliponsky, Adrian, Collins, Sarah J., Nguyen, Elizabeth D., Timms, Andrew E., MacDonald, James W., Bammler, Theo K., Nelson, Branden R., Millen, Kathleen J., Beier, David R., Majesky, Mark W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8609232/
https://www.ncbi.nlm.nih.gov/pubmed/34849462
http://dx.doi.org/10.1016/j.isci.2021.103269
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author Okamura, Daryl M.
Brewer, Chris M.
Wakenight, Paul
Bahrami, Nadia
Bernardi, Kristina
Tran, Amy
Olson, Jill
Shi, Xiaogang
Yeh, Szu-Ying
Piliponsky, Adrian
Collins, Sarah J.
Nguyen, Elizabeth D.
Timms, Andrew E.
MacDonald, James W.
Bammler, Theo K.
Nelson, Branden R.
Millen, Kathleen J.
Beier, David R.
Majesky, Mark W.
author_facet Okamura, Daryl M.
Brewer, Chris M.
Wakenight, Paul
Bahrami, Nadia
Bernardi, Kristina
Tran, Amy
Olson, Jill
Shi, Xiaogang
Yeh, Szu-Ying
Piliponsky, Adrian
Collins, Sarah J.
Nguyen, Elizabeth D.
Timms, Andrew E.
MacDonald, James W.
Bammler, Theo K.
Nelson, Branden R.
Millen, Kathleen J.
Beier, David R.
Majesky, Mark W.
author_sort Okamura, Daryl M.
collection PubMed
description Fibrosis-driven solid organ failure is an enormous burden on global health. Spiny mice (Acomys) are terrestrial mammals that can regenerate severe skin wounds without scars to avoid predation. Whether spiny mice also regenerate internal organ injuries is unknown. Here, we show that despite equivalent acute obstructive or ischemic kidney injury, spiny mice fully regenerate nephron structure and organ function without fibrosis, whereas C57Bl/6 or CD1 mice progress to complete organ failure with extensive renal fibrosis. Two mechanisms for vertebrate regeneration have been proposed that emphasize either extrinsic (pro-regenerative macrophages) or intrinsic (surviving cells of the organ itself) controls. Comparative transcriptome analysis revealed that the Acomys genome appears poised at the time of injury to initiate regeneration by surviving kidney cells, whereas macrophage accumulation was not detected until about day 7. Thus, we provide evidence for rapid activation of a gene expression signature for regenerative wound healing in the spiny mouse kidney.
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spelling pubmed-86092322021-11-29 Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis Okamura, Daryl M. Brewer, Chris M. Wakenight, Paul Bahrami, Nadia Bernardi, Kristina Tran, Amy Olson, Jill Shi, Xiaogang Yeh, Szu-Ying Piliponsky, Adrian Collins, Sarah J. Nguyen, Elizabeth D. Timms, Andrew E. MacDonald, James W. Bammler, Theo K. Nelson, Branden R. Millen, Kathleen J. Beier, David R. Majesky, Mark W. iScience Article Fibrosis-driven solid organ failure is an enormous burden on global health. Spiny mice (Acomys) are terrestrial mammals that can regenerate severe skin wounds without scars to avoid predation. Whether spiny mice also regenerate internal organ injuries is unknown. Here, we show that despite equivalent acute obstructive or ischemic kidney injury, spiny mice fully regenerate nephron structure and organ function without fibrosis, whereas C57Bl/6 or CD1 mice progress to complete organ failure with extensive renal fibrosis. Two mechanisms for vertebrate regeneration have been proposed that emphasize either extrinsic (pro-regenerative macrophages) or intrinsic (surviving cells of the organ itself) controls. Comparative transcriptome analysis revealed that the Acomys genome appears poised at the time of injury to initiate regeneration by surviving kidney cells, whereas macrophage accumulation was not detected until about day 7. Thus, we provide evidence for rapid activation of a gene expression signature for regenerative wound healing in the spiny mouse kidney. Elsevier 2021-11-03 /pmc/articles/PMC8609232/ /pubmed/34849462 http://dx.doi.org/10.1016/j.isci.2021.103269 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Okamura, Daryl M.
Brewer, Chris M.
Wakenight, Paul
Bahrami, Nadia
Bernardi, Kristina
Tran, Amy
Olson, Jill
Shi, Xiaogang
Yeh, Szu-Ying
Piliponsky, Adrian
Collins, Sarah J.
Nguyen, Elizabeth D.
Timms, Andrew E.
MacDonald, James W.
Bammler, Theo K.
Nelson, Branden R.
Millen, Kathleen J.
Beier, David R.
Majesky, Mark W.
Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title_full Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title_fullStr Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title_full_unstemmed Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title_short Spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
title_sort spiny mice activate unique transcriptional programs after severe kidney injury regenerating organ function without fibrosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8609232/
https://www.ncbi.nlm.nih.gov/pubmed/34849462
http://dx.doi.org/10.1016/j.isci.2021.103269
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