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Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function

Ovarian aging refers to the gradual decline of ovarian function with increasing physiological age, manifested as decreased ovarian reserve, elevated aging-related markers, and reduced oocyte quality. With a declining female fertility and a growing aging population, it is urgent to delay ovarian agin...

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Autores principales: He, Jiahuan, Yao, Guidong, He, Qina, Zhang, Tongwei, Fan, Huiying, Bai, Yucheng, Zhang, Junya, Yang, Guang, Xu, Ziwen, Hu, Jingyi, Sun, Yingpu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674650/
https://www.ncbi.nlm.nih.gov/pubmed/34925699
http://dx.doi.org/10.1155/2021/7064179
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author He, Jiahuan
Yao, Guidong
He, Qina
Zhang, Tongwei
Fan, Huiying
Bai, Yucheng
Zhang, Junya
Yang, Guang
Xu, Ziwen
Hu, Jingyi
Sun, Yingpu
author_facet He, Jiahuan
Yao, Guidong
He, Qina
Zhang, Tongwei
Fan, Huiying
Bai, Yucheng
Zhang, Junya
Yang, Guang
Xu, Ziwen
Hu, Jingyi
Sun, Yingpu
author_sort He, Jiahuan
collection PubMed
description Ovarian aging refers to the gradual decline of ovarian function with increasing physiological age, manifested as decreased ovarian reserve, elevated aging-related markers, and reduced oocyte quality. With a declining female fertility and a growing aging population, it is urgent to delay ovarian aging to maintain fertility and improve the life quality of women. Theaflavin 3, 3′-digallate (TF3) is a naturally bioactive polyphenol compound extracted from black tea, and its antioxidant properties play an important role in maintaining human health and delaying aging; however, the effects of TF3 on female reproduction and ovarian function are not yet clear. Here, we show that TF3 can preserve primordial follicle pool, partially restore the estrous cycle, and increase the offspring number of aged mice. Meanwhile, TF3 gavage increased the number of oocytes retrieved, decreased the level of reactive oxygen species, increased the level of glutathione, and decreased the abnormal rate of oocyte spindle after ovulation induction. Moreover, TF3 inhibited human granulosa cell apoptosis and improved their antioxidative stress ability. High-throughput sequencing and small-molecule-targeted pharmacological prediction show that TF3 affects multiple pathways and gene expression levels, mainly involved in reproductive and developmental processes. It may also affect cellular function by targeting mTOR to regulate the autophagic pathway, thereby delaying the process of ovarian aging. This study shows that TF3 can be used as a potential dietary supplement to protect ovary function from aging and thereby improving the life quality of advanced-age women.
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spelling pubmed-86746502021-12-17 Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function He, Jiahuan Yao, Guidong He, Qina Zhang, Tongwei Fan, Huiying Bai, Yucheng Zhang, Junya Yang, Guang Xu, Ziwen Hu, Jingyi Sun, Yingpu Oxid Med Cell Longev Research Article Ovarian aging refers to the gradual decline of ovarian function with increasing physiological age, manifested as decreased ovarian reserve, elevated aging-related markers, and reduced oocyte quality. With a declining female fertility and a growing aging population, it is urgent to delay ovarian aging to maintain fertility and improve the life quality of women. Theaflavin 3, 3′-digallate (TF3) is a naturally bioactive polyphenol compound extracted from black tea, and its antioxidant properties play an important role in maintaining human health and delaying aging; however, the effects of TF3 on female reproduction and ovarian function are not yet clear. Here, we show that TF3 can preserve primordial follicle pool, partially restore the estrous cycle, and increase the offspring number of aged mice. Meanwhile, TF3 gavage increased the number of oocytes retrieved, decreased the level of reactive oxygen species, increased the level of glutathione, and decreased the abnormal rate of oocyte spindle after ovulation induction. Moreover, TF3 inhibited human granulosa cell apoptosis and improved their antioxidative stress ability. High-throughput sequencing and small-molecule-targeted pharmacological prediction show that TF3 affects multiple pathways and gene expression levels, mainly involved in reproductive and developmental processes. It may also affect cellular function by targeting mTOR to regulate the autophagic pathway, thereby delaying the process of ovarian aging. This study shows that TF3 can be used as a potential dietary supplement to protect ovary function from aging and thereby improving the life quality of advanced-age women. Hindawi 2021-12-08 /pmc/articles/PMC8674650/ /pubmed/34925699 http://dx.doi.org/10.1155/2021/7064179 Text en Copyright © 2021 Jiahuan He et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
He, Jiahuan
Yao, Guidong
He, Qina
Zhang, Tongwei
Fan, Huiying
Bai, Yucheng
Zhang, Junya
Yang, Guang
Xu, Ziwen
Hu, Jingyi
Sun, Yingpu
Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title_full Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title_fullStr Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title_full_unstemmed Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title_short Theaflavin 3, 3′-Digallate Delays Ovarian Aging by Improving Oocyte Quality and Regulating Granulosa Cell Function
title_sort theaflavin 3, 3′-digallate delays ovarian aging by improving oocyte quality and regulating granulosa cell function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8674650/
https://www.ncbi.nlm.nih.gov/pubmed/34925699
http://dx.doi.org/10.1155/2021/7064179
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