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Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila

Understanding the effects of microgravity on human organs is crucial to exploration of low-earth orbit, the moon, and beyond. Drosophila can be sent to space in large numbers to examine the effects of microgravity on heart structure and function, which is fundamentally conserved from flies to humans...

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Autores principales: Walls, Stanley, Diop, Soda, Birse, Ryan, Elmen, Lisa, Gan, Zhuohui, Kalvakuri, Sreehari, Pineda, Santiago, Reddy, Curran, Taylor, Erika, Trinh, Bosco, Vogler, Georg, Zarndt, Rachel, McCulloch, Andrew, Lee, Peter, Bhattacharya, Sharmila, Bodmer, Rolf, Ocorr, Karen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7787258/
https://www.ncbi.nlm.nih.gov/pubmed/33242407
http://dx.doi.org/10.1016/j.celrep.2020.108445
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author Walls, Stanley
Diop, Soda
Birse, Ryan
Elmen, Lisa
Gan, Zhuohui
Kalvakuri, Sreehari
Pineda, Santiago
Reddy, Curran
Taylor, Erika
Trinh, Bosco
Vogler, Georg
Zarndt, Rachel
McCulloch, Andrew
Lee, Peter
Bhattacharya, Sharmila
Bodmer, Rolf
Ocorr, Karen
author_facet Walls, Stanley
Diop, Soda
Birse, Ryan
Elmen, Lisa
Gan, Zhuohui
Kalvakuri, Sreehari
Pineda, Santiago
Reddy, Curran
Taylor, Erika
Trinh, Bosco
Vogler, Georg
Zarndt, Rachel
McCulloch, Andrew
Lee, Peter
Bhattacharya, Sharmila
Bodmer, Rolf
Ocorr, Karen
author_sort Walls, Stanley
collection PubMed
description Understanding the effects of microgravity on human organs is crucial to exploration of low-earth orbit, the moon, and beyond. Drosophila can be sent to space in large numbers to examine the effects of microgravity on heart structure and function, which is fundamentally conserved from flies to humans. Flies reared in microgravity exhibit cardiac constriction with myofibrillar remodeling and diminished output. RNA sequencing (RNA-seq) in isolated hearts revealed reduced expression of sarcomeric/extracellular matrix (ECM) genes and dramatically increased proteasomal gene expression, consistent with the observed compromised, smaller hearts and suggesting abnormal proteostasis. This was examined further on a second flight in which we found dramatically elevated proteasome aggregates co-localizing with increased amyloid and polyQ deposits. Remarkably, in long-QT causing sei/hERG mutants, proteasomal gene expression at 1g, although less than the wild-type expression, was nevertheless increased in microgravity. Therefore, cardiac remodeling and proteostatic stress may be a fundamental response of heart muscle to microgravity.
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spelling pubmed-77872582021-01-06 Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila Walls, Stanley Diop, Soda Birse, Ryan Elmen, Lisa Gan, Zhuohui Kalvakuri, Sreehari Pineda, Santiago Reddy, Curran Taylor, Erika Trinh, Bosco Vogler, Georg Zarndt, Rachel McCulloch, Andrew Lee, Peter Bhattacharya, Sharmila Bodmer, Rolf Ocorr, Karen Cell Rep Article Understanding the effects of microgravity on human organs is crucial to exploration of low-earth orbit, the moon, and beyond. Drosophila can be sent to space in large numbers to examine the effects of microgravity on heart structure and function, which is fundamentally conserved from flies to humans. Flies reared in microgravity exhibit cardiac constriction with myofibrillar remodeling and diminished output. RNA sequencing (RNA-seq) in isolated hearts revealed reduced expression of sarcomeric/extracellular matrix (ECM) genes and dramatically increased proteasomal gene expression, consistent with the observed compromised, smaller hearts and suggesting abnormal proteostasis. This was examined further on a second flight in which we found dramatically elevated proteasome aggregates co-localizing with increased amyloid and polyQ deposits. Remarkably, in long-QT causing sei/hERG mutants, proteasomal gene expression at 1g, although less than the wild-type expression, was nevertheless increased in microgravity. Therefore, cardiac remodeling and proteostatic stress may be a fundamental response of heart muscle to microgravity. 2020-11-25 2020-12-08 /pmc/articles/PMC7787258/ /pubmed/33242407 http://dx.doi.org/10.1016/j.celrep.2020.108445 Text en This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Walls, Stanley
Diop, Soda
Birse, Ryan
Elmen, Lisa
Gan, Zhuohui
Kalvakuri, Sreehari
Pineda, Santiago
Reddy, Curran
Taylor, Erika
Trinh, Bosco
Vogler, Georg
Zarndt, Rachel
McCulloch, Andrew
Lee, Peter
Bhattacharya, Sharmila
Bodmer, Rolf
Ocorr, Karen
Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title_full Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title_fullStr Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title_full_unstemmed Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title_short Prolonged Exposure to Microgravity Reduces Cardiac Contractility and Initiates Remodeling in Drosophila
title_sort prolonged exposure to microgravity reduces cardiac contractility and initiates remodeling in drosophila
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7787258/
https://www.ncbi.nlm.nih.gov/pubmed/33242407
http://dx.doi.org/10.1016/j.celrep.2020.108445
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