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N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production

BACKGROUND: Cell therapy is considered a promising strategy for intervertebral disc (IVD) regeneration. However, cell products often require long‐term cryopreservation, which compromises cell viability and potency, thus potentially hindering commercialization and off‐the‐shelf availability. Dimethyl...

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Autores principales: Tamagawa, Shota, Sakai, Daisuke, Schol, Jordy, Sako, Kosuke, Nakamura, Yoshihiko, Matsushita, Erika, Warita, Takayuki, Hazuki, Soma, Nojiri, Hidetoshi, Sato, Masato, Ishijima, Muneaki, Watanabe, Masahiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9799083/
https://www.ncbi.nlm.nih.gov/pubmed/36601378
http://dx.doi.org/10.1002/jsp2.1223
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author Tamagawa, Shota
Sakai, Daisuke
Schol, Jordy
Sako, Kosuke
Nakamura, Yoshihiko
Matsushita, Erika
Warita, Takayuki
Hazuki, Soma
Nojiri, Hidetoshi
Sato, Masato
Ishijima, Muneaki
Watanabe, Masahiko
author_facet Tamagawa, Shota
Sakai, Daisuke
Schol, Jordy
Sako, Kosuke
Nakamura, Yoshihiko
Matsushita, Erika
Warita, Takayuki
Hazuki, Soma
Nojiri, Hidetoshi
Sato, Masato
Ishijima, Muneaki
Watanabe, Masahiko
author_sort Tamagawa, Shota
collection PubMed
description BACKGROUND: Cell therapy is considered a promising strategy for intervertebral disc (IVD) regeneration. However, cell products often require long‐term cryopreservation, which compromises cell viability and potency, thus potentially hindering commercialization and off‐the‐shelf availability. Dimethyl sulfoxide (DMSO) is a commonly used cryoprotectant, however, DMSO is associated with cytotoxicity and cell viability loss. This study aimed to investigate the effects of DMSO on human nucleus pulposus cells (NPC) and the role of oxidative stress in DMSO‐induced cytotoxicity. Furthermore, we examined the potential of antioxidant N‐acetylcysteine (NAC) supplementation to mitigate the negative effects of DMSO. METHODS: NPC were exposed to various concentrations of DMSO with or without a freezing cycle. Cell viability, cell apoptosis and necrosis rates, intracellular reactive oxygen species (ROS) levels, and gene expression of major antioxidant enzymes were evaluated. In addition, NAC was added to cryopreservation medium containing 10% DMSO and its effects on ROS levels and cell viability were assessed. RESULTS: DMSO concentrations ≤1% for 24 h did not significantly affect the NPC viability, whereas exposure to 5 and 10% DMSO (most commonly used concentration) caused cell viability loss (loss of 57% and 68% respectively after 24 h) and cell death in a dose‐ and time‐dependent manner. DMSO increased intracellular and mitochondrial ROS (1.9‐fold and 3.6‐fold respectively after 12 h exposure to 10% DMSO) and downregulated gene expression levels of antioxidant enzymes in a dose‐dependent manner. Tempering ROS through NAC treatment significantly attenuated DMSO‐induced oxidative stress and supported maintenance of cell viability. CONCLUSIONS: This study demonstrated dose‐ and time‐dependent cytotoxic effects of DMSO on human NPC. The addition of NAC to the cryopreservation medium ameliorated cell viability loss by reducing DMSO‐induced oxidative stress in the freeze–thawing cycle. These findings may be useful for future clinical applications of whole cells and cellular products.
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spelling pubmed-97990832023-01-03 N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production Tamagawa, Shota Sakai, Daisuke Schol, Jordy Sako, Kosuke Nakamura, Yoshihiko Matsushita, Erika Warita, Takayuki Hazuki, Soma Nojiri, Hidetoshi Sato, Masato Ishijima, Muneaki Watanabe, Masahiko JOR Spine Research Articles BACKGROUND: Cell therapy is considered a promising strategy for intervertebral disc (IVD) regeneration. However, cell products often require long‐term cryopreservation, which compromises cell viability and potency, thus potentially hindering commercialization and off‐the‐shelf availability. Dimethyl sulfoxide (DMSO) is a commonly used cryoprotectant, however, DMSO is associated with cytotoxicity and cell viability loss. This study aimed to investigate the effects of DMSO on human nucleus pulposus cells (NPC) and the role of oxidative stress in DMSO‐induced cytotoxicity. Furthermore, we examined the potential of antioxidant N‐acetylcysteine (NAC) supplementation to mitigate the negative effects of DMSO. METHODS: NPC were exposed to various concentrations of DMSO with or without a freezing cycle. Cell viability, cell apoptosis and necrosis rates, intracellular reactive oxygen species (ROS) levels, and gene expression of major antioxidant enzymes were evaluated. In addition, NAC was added to cryopreservation medium containing 10% DMSO and its effects on ROS levels and cell viability were assessed. RESULTS: DMSO concentrations ≤1% for 24 h did not significantly affect the NPC viability, whereas exposure to 5 and 10% DMSO (most commonly used concentration) caused cell viability loss (loss of 57% and 68% respectively after 24 h) and cell death in a dose‐ and time‐dependent manner. DMSO increased intracellular and mitochondrial ROS (1.9‐fold and 3.6‐fold respectively after 12 h exposure to 10% DMSO) and downregulated gene expression levels of antioxidant enzymes in a dose‐dependent manner. Tempering ROS through NAC treatment significantly attenuated DMSO‐induced oxidative stress and supported maintenance of cell viability. CONCLUSIONS: This study demonstrated dose‐ and time‐dependent cytotoxic effects of DMSO on human NPC. The addition of NAC to the cryopreservation medium ameliorated cell viability loss by reducing DMSO‐induced oxidative stress in the freeze–thawing cycle. These findings may be useful for future clinical applications of whole cells and cellular products. John Wiley & Sons, Inc. 2022-10-01 /pmc/articles/PMC9799083/ /pubmed/36601378 http://dx.doi.org/10.1002/jsp2.1223 Text en © 2022 The Authors. JOR Spine published by Wiley Periodicals LLC on behalf of Orthopaedic Research Society. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Tamagawa, Shota
Sakai, Daisuke
Schol, Jordy
Sako, Kosuke
Nakamura, Yoshihiko
Matsushita, Erika
Warita, Takayuki
Hazuki, Soma
Nojiri, Hidetoshi
Sato, Masato
Ishijima, Muneaki
Watanabe, Masahiko
N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title_full N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title_fullStr N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title_full_unstemmed N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title_short N‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: A potential solution for mass production
title_sort n‐acetylcysteine attenuates oxidative stress‐mediated cell viability loss induced by dimethyl sulfoxide in cryopreservation of human nucleus pulposus cells: a potential solution for mass production
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9799083/
https://www.ncbi.nlm.nih.gov/pubmed/36601378
http://dx.doi.org/10.1002/jsp2.1223
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