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Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis

Sodium selenite (Na(2)SeO(3)), as an anti-tumor drug for inducing tumor cells' apoptosis, has been widely studied under normoxic conditions and has been shown to exhibit oxidative stress process-induced apoptosis. However, since the real tumor environment is hypoxic, the actual mechanism is sti...

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Autores principales: Gao, Xiaonan, Guo, Wenfei, Ge, Lihong, Kong, Fanpeng, Xu, Kehua, Tang, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9091642/
https://www.ncbi.nlm.nih.gov/pubmed/35557927
http://dx.doi.org/10.1039/c8ra08142e
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author Gao, Xiaonan
Guo, Wenfei
Ge, Lihong
Kong, Fanpeng
Xu, Kehua
Tang, Bo
author_facet Gao, Xiaonan
Guo, Wenfei
Ge, Lihong
Kong, Fanpeng
Xu, Kehua
Tang, Bo
author_sort Gao, Xiaonan
collection PubMed
description Sodium selenite (Na(2)SeO(3)), as an anti-tumor drug for inducing tumor cells' apoptosis, has been widely studied under normoxic conditions and has been shown to exhibit oxidative stress process-induced apoptosis. However, since the real tumor environment is hypoxic, the actual mechanism is still unclear. Hence, considering the main metabolite of Na(2)SeO(3) in the metabolic process to be hydrogen selenide (H(2)Se) and also that it can be converted to superoxide anion (O(2)˙(−)) instantaneously in the presence of oxygen, a dual-ratiometric fluorescence imaging system for simultaneous monitoring of the changes of H(2)Se and O(2)˙(−) induced by Na(2)SeO(3)-guided tumor cell apoptosis under hypoxic conditions was constructed. Two molecular probes NIR-H(2)Se and dihydroethidium were used to detect H(2)Se and O(2)˙(−), respectively, whereas Rhodamine 110 was used as the reference fluorophore. Notably, H(2)Se levels significantly increased under hypoxic conditions, but there was no change in the level of O(2)˙(−), which is inconsistent with the results of the previous researches. Therefore, we hypothesize that the mechanism of Na(2)SeO(3)-induced apoptosis for tumor cells is caused by reductive stress; also, this method can be applied for the future study of other anti-cancer selenium compounds.
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spelling pubmed-90916422022-05-11 Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis Gao, Xiaonan Guo, Wenfei Ge, Lihong Kong, Fanpeng Xu, Kehua Tang, Bo RSC Adv Chemistry Sodium selenite (Na(2)SeO(3)), as an anti-tumor drug for inducing tumor cells' apoptosis, has been widely studied under normoxic conditions and has been shown to exhibit oxidative stress process-induced apoptosis. However, since the real tumor environment is hypoxic, the actual mechanism is still unclear. Hence, considering the main metabolite of Na(2)SeO(3) in the metabolic process to be hydrogen selenide (H(2)Se) and also that it can be converted to superoxide anion (O(2)˙(−)) instantaneously in the presence of oxygen, a dual-ratiometric fluorescence imaging system for simultaneous monitoring of the changes of H(2)Se and O(2)˙(−) induced by Na(2)SeO(3)-guided tumor cell apoptosis under hypoxic conditions was constructed. Two molecular probes NIR-H(2)Se and dihydroethidium were used to detect H(2)Se and O(2)˙(−), respectively, whereas Rhodamine 110 was used as the reference fluorophore. Notably, H(2)Se levels significantly increased under hypoxic conditions, but there was no change in the level of O(2)˙(−), which is inconsistent with the results of the previous researches. Therefore, we hypothesize that the mechanism of Na(2)SeO(3)-induced apoptosis for tumor cells is caused by reductive stress; also, this method can be applied for the future study of other anti-cancer selenium compounds. The Royal Society of Chemistry 2018-12-07 /pmc/articles/PMC9091642/ /pubmed/35557927 http://dx.doi.org/10.1039/c8ra08142e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gao, Xiaonan
Guo, Wenfei
Ge, Lihong
Kong, Fanpeng
Xu, Kehua
Tang, Bo
Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title_full Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title_fullStr Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title_full_unstemmed Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title_short Double-ratiometric fluorescence imaging of H(2)Se and O(2)˙(−) under hypoxia for exploring Na(2)SeO(3)-induced HepG2 cells' apoptosis
title_sort double-ratiometric fluorescence imaging of h(2)se and o(2)˙(−) under hypoxia for exploring na(2)seo(3)-induced hepg2 cells' apoptosis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9091642/
https://www.ncbi.nlm.nih.gov/pubmed/35557927
http://dx.doi.org/10.1039/c8ra08142e
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