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β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability

β-carotene, precursor of vitamin A, is an excellent antioxidant with many beneficial properties. It is a lipid-soluble antioxidant and a very effective quencher of reactive oxygen species (ROS) to reduce the oxidative stress. In contrast to vitamin A, β-carotene is not toxic even consumed in higher...

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Autores principales: Ma, Dongxue, Han, Pengfei, Song, Mingji, Zhang, Hongfu, Shen, Wei, Huang, Guian, Zhao, Minghui, Sun, Qingyuan, Zhao, Yong, Min, Lingjiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7917239/
https://www.ncbi.nlm.nih.gov/pubmed/33658940
http://dx.doi.org/10.3389/fphar.2021.593953
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author Ma, Dongxue
Han, Pengfei
Song, Mingji
Zhang, Hongfu
Shen, Wei
Huang, Guian
Zhao, Minghui
Sun, Qingyuan
Zhao, Yong
Min, Lingjiang
author_facet Ma, Dongxue
Han, Pengfei
Song, Mingji
Zhang, Hongfu
Shen, Wei
Huang, Guian
Zhao, Minghui
Sun, Qingyuan
Zhao, Yong
Min, Lingjiang
author_sort Ma, Dongxue
collection PubMed
description β-carotene, precursor of vitamin A, is an excellent antioxidant with many beneficial properties. It is a lipid-soluble antioxidant and a very effective quencher of reactive oxygen species (ROS) to reduce the oxidative stress. In contrast to vitamin A, β-carotene is not toxic even consumed in higher amount when it is delivered from natural plant products. Recently, we found that β-carotene acts as a potential antioxidant in the oocyte to improve its quality. Even though many studies have been reported that β-carotene has the beneficial contribution to the ovarian development and steroidogenesis, it is unknown the effects of β-carotene on the spermatogenesis. This investigation aimed to explore the hypothesis that β-carotene could improve spermatogenesis and the underlying mechanism. And we found that β-carotene rescued busulfan disrupted spermatogenesis in mouse with the increase in the sperm concentration and motility. β-carotene improved the expression of genes/proteins important for spermatogenesis, such as VASA, DAZL, SYCP3, PGK2. Moreover, β-carotene elevated the testicular antioxidant capability by the elevation of the antioxidant glutathione and antioxidant enzymes SOD, GPX1, catalase levels. In conclusion, β-carotene may be applied for the infertile couples by the improvement of spermatogenesis, since, worldly many couples are infertile due to the idiopathic failed gametogenesis (spermatogenesis).
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spelling pubmed-79172392021-03-02 β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability Ma, Dongxue Han, Pengfei Song, Mingji Zhang, Hongfu Shen, Wei Huang, Guian Zhao, Minghui Sun, Qingyuan Zhao, Yong Min, Lingjiang Front Pharmacol Pharmacology β-carotene, precursor of vitamin A, is an excellent antioxidant with many beneficial properties. It is a lipid-soluble antioxidant and a very effective quencher of reactive oxygen species (ROS) to reduce the oxidative stress. In contrast to vitamin A, β-carotene is not toxic even consumed in higher amount when it is delivered from natural plant products. Recently, we found that β-carotene acts as a potential antioxidant in the oocyte to improve its quality. Even though many studies have been reported that β-carotene has the beneficial contribution to the ovarian development and steroidogenesis, it is unknown the effects of β-carotene on the spermatogenesis. This investigation aimed to explore the hypothesis that β-carotene could improve spermatogenesis and the underlying mechanism. And we found that β-carotene rescued busulfan disrupted spermatogenesis in mouse with the increase in the sperm concentration and motility. β-carotene improved the expression of genes/proteins important for spermatogenesis, such as VASA, DAZL, SYCP3, PGK2. Moreover, β-carotene elevated the testicular antioxidant capability by the elevation of the antioxidant glutathione and antioxidant enzymes SOD, GPX1, catalase levels. In conclusion, β-carotene may be applied for the infertile couples by the improvement of spermatogenesis, since, worldly many couples are infertile due to the idiopathic failed gametogenesis (spermatogenesis). Frontiers Media S.A. 2021-02-15 /pmc/articles/PMC7917239/ /pubmed/33658940 http://dx.doi.org/10.3389/fphar.2021.593953 Text en Copyright © 2021 Ma, Han, Song, Zhang, Shen, Huang, Zhao, Sun, Zhao and Min. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Pharmacology
Ma, Dongxue
Han, Pengfei
Song, Mingji
Zhang, Hongfu
Shen, Wei
Huang, Guian
Zhao, Minghui
Sun, Qingyuan
Zhao, Yong
Min, Lingjiang
β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title_full β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title_fullStr β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title_full_unstemmed β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title_short β-carotene Rescues Busulfan Disrupted Spermatogenesis Through Elevation in Testicular Antioxidant Capability
title_sort β-carotene rescues busulfan disrupted spermatogenesis through elevation in testicular antioxidant capability
topic Pharmacology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7917239/
https://www.ncbi.nlm.nih.gov/pubmed/33658940
http://dx.doi.org/10.3389/fphar.2021.593953
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