Quercetin ameliorates oxidative stress-induced apoptosis of granulosa cells in dairy cow follicular cysts by activating autophagy via the SIRT1/ROS/AMPK signaling pathway.

Apoptosis Autophagy Follicular cyst Oxidative stress Quercetin

Journal

Journal of animal science and biotechnology
ISSN: 1674-9782
Titre abrégé: J Anim Sci Biotechnol
Pays: England
ID NLM: 101581293

Informations de publication

Date de publication:
05 Sep 2024
Historique:
received: 18 04 2024
accepted: 14 07 2024
medline: 5 9 2024
pubmed: 5 9 2024
entrez: 5 9 2024
Statut: epublish

Résumé

Follicular cysts contribute significantly to reproductive loss in high-yield dairy cows. This results from the death of follicular granulosa cells (GCs) caused by oxidative stress. Quercetin is known to have significant antioxidant and anti-apoptotic effects. However, the effect of quercetin on follicular cysts has yet been elucidated. Therefore, this study aimed to explore the anti-oxidant and anti-apoptosis effects and potential molecular mechanisms of quercetin in H In this study, compared with estrus cows, cows with follicular cysts showed heightened levels of oxidative stress and increased follicular cell apoptosis, while autophagy levels were reduced. A model of oxidative stress was induced in vitro by H These findings indicate that quercetin can inhibit apoptosis in GCs and restore ovarian function by activating autophagy through the SIRT1/ROS/AMPK signaling pathway, suggesting a new direction for the treatment of ovarian follicular cysts in high-yield dairy cows.

Sections du résumé

BACKGROUND BACKGROUND
Follicular cysts contribute significantly to reproductive loss in high-yield dairy cows. This results from the death of follicular granulosa cells (GCs) caused by oxidative stress. Quercetin is known to have significant antioxidant and anti-apoptotic effects. However, the effect of quercetin on follicular cysts has yet been elucidated. Therefore, this study aimed to explore the anti-oxidant and anti-apoptosis effects and potential molecular mechanisms of quercetin in H
RESULTS RESULTS
In this study, compared with estrus cows, cows with follicular cysts showed heightened levels of oxidative stress and increased follicular cell apoptosis, while autophagy levels were reduced. A model of oxidative stress was induced in vitro by H
CONCLUSIONS CONCLUSIONS
These findings indicate that quercetin can inhibit apoptosis in GCs and restore ovarian function by activating autophagy through the SIRT1/ROS/AMPK signaling pathway, suggesting a new direction for the treatment of ovarian follicular cysts in high-yield dairy cows.

Identifiants

pubmed: 39232832
doi: 10.1186/s40104-024-01078-5
pii: 10.1186/s40104-024-01078-5
doi:

Types de publication

Journal Article

Langues

eng

Pagination

119

Informations de copyright

© 2024. The Author(s).

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Auteurs

Hongwei Duan (H)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Fang Wang (F)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Ke Wang (K)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Institute of Animal Husbandry and Veterinary, Pingliang, 744000, Gansu, China.

Shuai Yang (S)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Rong Zhang (R)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Chen Xue (C)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Lihong Zhang (L)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Xiaofei Ma (X)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Xianghong Du (X)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Jian Kang (J)

School of Animal Science and Technology, Guangdong Polytechnic of Science and Trade, Guangzhou, 510640, Guangdong, China.

Yong Zhang (Y)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Xingxu Zhao (X)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China.

Junjie Hu (J)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China. hujj@gsau.edu.cn.
Gansu Key Laboratory of Animal Generational Physiology and Reproductive Regulation, Lanzhou, 730070, Gansu, China. hujj@gsau.edu.cn.

Longfei Xiao (L)

College of Veterinary Medicine, Gansu Agricultural University, Lanzhou, 730070, Gansu, China. xiaolf1989@bua.edu.cn.
Animal Science and Technology College, Beijing University of Agriculture, Beijing, 102206, China. xiaolf1989@bua.edu.cn.

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