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Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness

Long duration spaceflight poses potential health risks to astronauts during flight and re-adaptation after return to Earth. There is an emerging need for NASA to provide successful and reliable therapeutics for long duration missions when capability for medical intervention will be limited. Clinical...

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Autores principales: Rubinstein, Linda, Paul, Amber M., Houseman, Charles, Abegaz, Metadel, Tabares Ruiz, Steffy, O’Neil, Nathan, Kunis, Gilad, Ofir, Racheli, Cohen, Jacob, Ronca, April E., Globus, Ruth K., Tahimic, Candice G. T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8073415/
https://www.ncbi.nlm.nih.gov/pubmed/33921854
http://dx.doi.org/10.3390/cells10040940
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author Rubinstein, Linda
Paul, Amber M.
Houseman, Charles
Abegaz, Metadel
Tabares Ruiz, Steffy
O’Neil, Nathan
Kunis, Gilad
Ofir, Racheli
Cohen, Jacob
Ronca, April E.
Globus, Ruth K.
Tahimic, Candice G. T.
author_facet Rubinstein, Linda
Paul, Amber M.
Houseman, Charles
Abegaz, Metadel
Tabares Ruiz, Steffy
O’Neil, Nathan
Kunis, Gilad
Ofir, Racheli
Cohen, Jacob
Ronca, April E.
Globus, Ruth K.
Tahimic, Candice G. T.
author_sort Rubinstein, Linda
collection PubMed
description Long duration spaceflight poses potential health risks to astronauts during flight and re-adaptation after return to Earth. There is an emerging need for NASA to provide successful and reliable therapeutics for long duration missions when capability for medical intervention will be limited. Clinically relevant, human placenta-derived therapeutic stromal cells (PLX-PAD) are a promising therapeutic alternative. We found that treatment of adult female mice with PLX-PAD near the onset of simulated weightlessness by hindlimb unloading (HU, 30 d) was well-tolerated and partially mitigated decrements caused by HU. Specifically, PLX-PAD treatment rescued HU-induced thymic atrophy, and mitigated HU-induced changes in percentages of circulating neutrophils, but did not rescue changes in the percentages of lymphocytes, monocytes, natural killer (NK) cells, T-cells and splenic atrophy. Further, PLX-PAD partially mitigated HU effects on the expression of select cytokines in the hippocampus. In contrast, PLX-PAD failed to protect bone and muscle from HU-induced effects, suggesting that the mechanisms which regulate the structure of these mechanosensitive tissues in response to disuse are discrete from those that regulate the immune- and central nervous system (CNS). These findings support the therapeutic potential of placenta-derived stromal cells for select physiological deficits during simulated spaceflight. Multiple countermeasures are likely needed for comprehensive protection from the deleterious effects of prolonged spaceflight.
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spelling pubmed-80734152021-04-27 Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness Rubinstein, Linda Paul, Amber M. Houseman, Charles Abegaz, Metadel Tabares Ruiz, Steffy O’Neil, Nathan Kunis, Gilad Ofir, Racheli Cohen, Jacob Ronca, April E. Globus, Ruth K. Tahimic, Candice G. T. Cells Article Long duration spaceflight poses potential health risks to astronauts during flight and re-adaptation after return to Earth. There is an emerging need for NASA to provide successful and reliable therapeutics for long duration missions when capability for medical intervention will be limited. Clinically relevant, human placenta-derived therapeutic stromal cells (PLX-PAD) are a promising therapeutic alternative. We found that treatment of adult female mice with PLX-PAD near the onset of simulated weightlessness by hindlimb unloading (HU, 30 d) was well-tolerated and partially mitigated decrements caused by HU. Specifically, PLX-PAD treatment rescued HU-induced thymic atrophy, and mitigated HU-induced changes in percentages of circulating neutrophils, but did not rescue changes in the percentages of lymphocytes, monocytes, natural killer (NK) cells, T-cells and splenic atrophy. Further, PLX-PAD partially mitigated HU effects on the expression of select cytokines in the hippocampus. In contrast, PLX-PAD failed to protect bone and muscle from HU-induced effects, suggesting that the mechanisms which regulate the structure of these mechanosensitive tissues in response to disuse are discrete from those that regulate the immune- and central nervous system (CNS). These findings support the therapeutic potential of placenta-derived stromal cells for select physiological deficits during simulated spaceflight. Multiple countermeasures are likely needed for comprehensive protection from the deleterious effects of prolonged spaceflight. MDPI 2021-04-19 /pmc/articles/PMC8073415/ /pubmed/33921854 http://dx.doi.org/10.3390/cells10040940 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rubinstein, Linda
Paul, Amber M.
Houseman, Charles
Abegaz, Metadel
Tabares Ruiz, Steffy
O’Neil, Nathan
Kunis, Gilad
Ofir, Racheli
Cohen, Jacob
Ronca, April E.
Globus, Ruth K.
Tahimic, Candice G. T.
Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title_full Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title_fullStr Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title_full_unstemmed Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title_short Placenta-Expanded Stromal Cell Therapy in a Rodent Model of Simulated Weightlessness
title_sort placenta-expanded stromal cell therapy in a rodent model of simulated weightlessness
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8073415/
https://www.ncbi.nlm.nih.gov/pubmed/33921854
http://dx.doi.org/10.3390/cells10040940
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