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Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models

Thymoquinone (TQ), an active compound from Nigella sativa seeds, is often described as a pharmacologically relevant compound with antioxidative properties, while the synthesis of TQ in the plant via oxidations makes it inapplicable for scavenging radicals. Therefore, the present study was designed t...

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Autores principales: Krewenka, Christopher, Rizzi, Sandra, Nguyen, Chi Huu, Delijewski, Marcin, Gille, Lars, Staniek, Katrin, Duvigneau, Johanna Catharina, Radad, Khaled, Müllebner, Andrea, Kranner, Barbara, Moldzio, Rudolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10135386/
https://www.ncbi.nlm.nih.gov/pubmed/37107234
http://dx.doi.org/10.3390/antiox12040858
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author Krewenka, Christopher
Rizzi, Sandra
Nguyen, Chi Huu
Delijewski, Marcin
Gille, Lars
Staniek, Katrin
Duvigneau, Johanna Catharina
Radad, Khaled
Müllebner, Andrea
Kranner, Barbara
Moldzio, Rudolf
author_facet Krewenka, Christopher
Rizzi, Sandra
Nguyen, Chi Huu
Delijewski, Marcin
Gille, Lars
Staniek, Katrin
Duvigneau, Johanna Catharina
Radad, Khaled
Müllebner, Andrea
Kranner, Barbara
Moldzio, Rudolf
author_sort Krewenka, Christopher
collection PubMed
description Thymoquinone (TQ), an active compound from Nigella sativa seeds, is often described as a pharmacologically relevant compound with antioxidative properties, while the synthesis of TQ in the plant via oxidations makes it inapplicable for scavenging radicals. Therefore, the present study was designed to reassess the radical scavenging properties of TQ and explore a potential mode of action. The effects of TQ were studied in models with mitochondrial impairment and oxidative stress induced by rotenone in N18TG2 neuroblastoma cells and rotenone/MPP(+) in primary mesencephalic cells. Tyrosine hydroxylase staining revealed that TQ significantly protected dopaminergic neurons and preserved their morphology under oxidative stress conditions. Quantification of the formation of superoxide radicals via electron paramagnetic resonance showed an initial increase in the level of superoxide radicals in the cell by TQ. Measurements in both cell culture systems revealed that the mitochondrial membrane potential was tendentially lowered, while ATP production was mostly unaffected. Additionally, the total ROS levels were unaltered. In mesencephalic cell culture under oxidative stress conditions, caspase-3 activity was decreased when TQ was administered. On the contrary, TQ itself tremendously increased the caspase-3 activity in the neuroblastoma cell line. Evaluation of the glutathione level revealed an increased level of total glutathione in both cell culture systems. Therefore, the enhanced resistance against oxidative stress in primary cell culture might be a consequence of a lowered caspase-3 activity combined with an increased pool of reduced glutathione. The described anti-cancer ability of TQ might be a result of the pro-apoptotic condition in neuroblastoma cells. Our study provides evidence that TQ has no direct scavenging effect on superoxide radicals.
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spelling pubmed-101353862023-04-28 Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models Krewenka, Christopher Rizzi, Sandra Nguyen, Chi Huu Delijewski, Marcin Gille, Lars Staniek, Katrin Duvigneau, Johanna Catharina Radad, Khaled Müllebner, Andrea Kranner, Barbara Moldzio, Rudolf Antioxidants (Basel) Article Thymoquinone (TQ), an active compound from Nigella sativa seeds, is often described as a pharmacologically relevant compound with antioxidative properties, while the synthesis of TQ in the plant via oxidations makes it inapplicable for scavenging radicals. Therefore, the present study was designed to reassess the radical scavenging properties of TQ and explore a potential mode of action. The effects of TQ were studied in models with mitochondrial impairment and oxidative stress induced by rotenone in N18TG2 neuroblastoma cells and rotenone/MPP(+) in primary mesencephalic cells. Tyrosine hydroxylase staining revealed that TQ significantly protected dopaminergic neurons and preserved their morphology under oxidative stress conditions. Quantification of the formation of superoxide radicals via electron paramagnetic resonance showed an initial increase in the level of superoxide radicals in the cell by TQ. Measurements in both cell culture systems revealed that the mitochondrial membrane potential was tendentially lowered, while ATP production was mostly unaffected. Additionally, the total ROS levels were unaltered. In mesencephalic cell culture under oxidative stress conditions, caspase-3 activity was decreased when TQ was administered. On the contrary, TQ itself tremendously increased the caspase-3 activity in the neuroblastoma cell line. Evaluation of the glutathione level revealed an increased level of total glutathione in both cell culture systems. Therefore, the enhanced resistance against oxidative stress in primary cell culture might be a consequence of a lowered caspase-3 activity combined with an increased pool of reduced glutathione. The described anti-cancer ability of TQ might be a result of the pro-apoptotic condition in neuroblastoma cells. Our study provides evidence that TQ has no direct scavenging effect on superoxide radicals. MDPI 2023-04-01 /pmc/articles/PMC10135386/ /pubmed/37107234 http://dx.doi.org/10.3390/antiox12040858 Text en © 2023 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
Krewenka, Christopher
Rizzi, Sandra
Nguyen, Chi Huu
Delijewski, Marcin
Gille, Lars
Staniek, Katrin
Duvigneau, Johanna Catharina
Radad, Khaled
Müllebner, Andrea
Kranner, Barbara
Moldzio, Rudolf
Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title_full Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title_fullStr Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title_full_unstemmed Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title_short Radical Scavenging Is Not Involved in Thymoquinone-Induced Cell Protection in Neural Oxidative Stress Models
title_sort radical scavenging is not involved in thymoquinone-induced cell protection in neural oxidative stress models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10135386/
https://www.ncbi.nlm.nih.gov/pubmed/37107234
http://dx.doi.org/10.3390/antiox12040858
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