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Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma

Glutathione S‐transferase omega 2 (GSTO2) lacks any appreciable GST activity, but it exhibits thioltransferase activity. The significance of GSTO2 in lung function has been reported; however, the precise expression and molecular function of GSTO2 in the lungs remain unclear. In the present study, we...

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Autores principales: Sumiya, Ryusuke, Terayama, Masayoshi, Hagiwara, Teruki, Nakata, Kazuaki, Sekihara, Keigo, Nagasaka, Satoshi, Miyazaki, Hideki, Igari, Toru, Yamada, Kazuhiko, Kawamura, Yuki I.
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/PMC8748250/
https://www.ncbi.nlm.nih.gov/pubmed/34726807
http://dx.doi.org/10.1111/cas.15189
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author Sumiya, Ryusuke
Terayama, Masayoshi
Hagiwara, Teruki
Nakata, Kazuaki
Sekihara, Keigo
Nagasaka, Satoshi
Miyazaki, Hideki
Igari, Toru
Yamada, Kazuhiko
Kawamura, Yuki I.
author_facet Sumiya, Ryusuke
Terayama, Masayoshi
Hagiwara, Teruki
Nakata, Kazuaki
Sekihara, Keigo
Nagasaka, Satoshi
Miyazaki, Hideki
Igari, Toru
Yamada, Kazuhiko
Kawamura, Yuki I.
author_sort Sumiya, Ryusuke
collection PubMed
description Glutathione S‐transferase omega 2 (GSTO2) lacks any appreciable GST activity, but it exhibits thioltransferase activity. The significance of GSTO2 in lung function has been reported; however, the precise expression and molecular function of GSTO2 in the lungs remain unclear. In the present study, we found that GSTO2 is expressed in airway basal cells, non–ciliated, columnar Clara cells, and type II alveolar cells, which have self‐renewal capacity in the lungs. Contrastingly, no GSTO2 expression was observed in 94 lung squamous cell carcinoma (LSCC) samples. When human LSCC cell lines were treated with 5‐aza‐2′‐deoxycytidine, a DNA‐methyltransferase inhibitor, GSTO2 transcription was induced, suggesting that aberrant GSTO2 hypermethylation in LSCC is the cause of its downregulation. Forced GSTO2 expression in LSCC cell lines inhibited cell growth and colony formation in vitro. In a subcutaneous xenograft model, GSTO2‐transfected cells formed smaller tumors in nude mice than mock‐transfected cells. Upon intravenous injection into nude mice, the incidence of liver metastasis was lower in mice injected with GSTO2‐transfected cells than in those injected with mock‐transfected cells. In addition, GSTO2 induction suppressed the expression of β‐catenin and the oxygen consumption rate, but it did not affect the extracellular acidification rate. Furthermore, GSTO2‐transfected cells displayed lower mitochondrial membrane potential than mock‐transfected cells. When GSTO2‐transfected cells were treated with a p38 inhibitor, β‐catenin expression and mitochondrial membrane potential were recovered. Our study indicated that the loss of GSTO2 via DNA hypermethylation contributes to the growth and progression of LSCC, probably by modulating cancer metabolism via the p38/β‐catenin signaling pathway.
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spelling pubmed-87482502022-01-14 Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma Sumiya, Ryusuke Terayama, Masayoshi Hagiwara, Teruki Nakata, Kazuaki Sekihara, Keigo Nagasaka, Satoshi Miyazaki, Hideki Igari, Toru Yamada, Kazuhiko Kawamura, Yuki I. Cancer Sci Original Articles Glutathione S‐transferase omega 2 (GSTO2) lacks any appreciable GST activity, but it exhibits thioltransferase activity. The significance of GSTO2 in lung function has been reported; however, the precise expression and molecular function of GSTO2 in the lungs remain unclear. In the present study, we found that GSTO2 is expressed in airway basal cells, non–ciliated, columnar Clara cells, and type II alveolar cells, which have self‐renewal capacity in the lungs. Contrastingly, no GSTO2 expression was observed in 94 lung squamous cell carcinoma (LSCC) samples. When human LSCC cell lines were treated with 5‐aza‐2′‐deoxycytidine, a DNA‐methyltransferase inhibitor, GSTO2 transcription was induced, suggesting that aberrant GSTO2 hypermethylation in LSCC is the cause of its downregulation. Forced GSTO2 expression in LSCC cell lines inhibited cell growth and colony formation in vitro. In a subcutaneous xenograft model, GSTO2‐transfected cells formed smaller tumors in nude mice than mock‐transfected cells. Upon intravenous injection into nude mice, the incidence of liver metastasis was lower in mice injected with GSTO2‐transfected cells than in those injected with mock‐transfected cells. In addition, GSTO2 induction suppressed the expression of β‐catenin and the oxygen consumption rate, but it did not affect the extracellular acidification rate. Furthermore, GSTO2‐transfected cells displayed lower mitochondrial membrane potential than mock‐transfected cells. When GSTO2‐transfected cells were treated with a p38 inhibitor, β‐catenin expression and mitochondrial membrane potential were recovered. Our study indicated that the loss of GSTO2 via DNA hypermethylation contributes to the growth and progression of LSCC, probably by modulating cancer metabolism via the p38/β‐catenin signaling pathway. John Wiley and Sons Inc. 2021-11-21 2022-01 /pmc/articles/PMC8748250/ /pubmed/34726807 http://dx.doi.org/10.1111/cas.15189 Text en © 2021 The Authors. Cancer Science published by John Wiley & Sons Australia, Ltd on behalf of Japanese Cancer Association. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Original Articles
Sumiya, Ryusuke
Terayama, Masayoshi
Hagiwara, Teruki
Nakata, Kazuaki
Sekihara, Keigo
Nagasaka, Satoshi
Miyazaki, Hideki
Igari, Toru
Yamada, Kazuhiko
Kawamura, Yuki I.
Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title_full Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title_fullStr Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title_full_unstemmed Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title_short Loss of GSTO2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
title_sort loss of gsto2 contributes to cell growth and mitochondria function via the p38 signaling in lung squamous cell carcinoma
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8748250/
https://www.ncbi.nlm.nih.gov/pubmed/34726807
http://dx.doi.org/10.1111/cas.15189
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