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Analysis by transcriptomics and metabolomics for the proliferation inhibition and dysfunction through redox imbalance-mediated DNA damage response and ferroptosis in male reproduction of mice and TM4 Sertoli cells exposed to PM2.5.

Authors :
Shi, Fuquan
Zhang, Zhonghao
Cui, Haonan
Wang, Jiankang
Wang, Yimeng
Tang, Ying
Yang, Wang
Zou, Peng
Ling, Xi
Han, Fei
Liu, Jinyi
Chen, Qing
liu, Cuiqing
Cao, Jia
Ao, Lin
Source :
Ecotoxicology & Environmental Safety; Jun2022, Vol. 238, pN.PAG-N.PAG, 1p
Publication Year :
2022

Abstract

Sertoli cells play a pivotal role in the complex spermatogenesis process. This study aimed to investigate the effects of PM 2.5 on Sertoli cells using the TM4 cell line and a real time whole-body PM 2.5 exposure mouse model, and further explore the underlying mechanisms through the application of metabolomics and transcriptomics. The results in vivo and in vitro showed that PM 2.5 reduced Sertoli cells number in seminiferous tubules and inhibited cell proliferation. PM 2.5 exposure also induced Sertoli cell dysfunction by increasing androgen binding protein (ABP) concentration, reducing the blood-testis barrier (BTB)-related protein expression, and decreasing glycolysis capacity and lactate production. The results of transcriptomics, metabolomics, and integrative analysis of multi-omics in the TM4 Sertoli cells revealed the activation of xenobiotic metabolism, and the disturbance of glutathione and purine metabolism after PM 2.5 exposure. Further tests verified the reduced GSH/GSSG ratio and the elevation of xanthine oxidase (XO) activity in the PM 2.5 -exposed TM4 cells, indicating that excessive reactive oxygen species (ROS) was generated via metabolic disorder caused by PM 2.5. Moreover, the redox imbalance was proved by the increase in the mitochondrial ROS level, superoxide dismutase (SOD) and catalase (CAT) activity, as well as the activation of the Nrf2 antioxidative pathway. Further study found that the redox imbalance caused by PM 2.5 induced DNA damage response and cell cycle arrest. Additionally, PM 2.5 induced ferroptosis through iron overload and lipid peroxidation. Taken all together, our study provided new insights for understanding proliferation inhibition and dysfunction of TM4 Sertoli cells exposed to PM 2.5 via metabolic disorder and redox imbalance-mediated DNA damage response and ferroptosis. [Display omitted] • PM 2.5 exposure induces Sertoli cell proliferation inhibition and dysfunction. • PM 2.5 disturbs glutathione, purine, and xenobiotic metabolism in TM4 cells. • PM 2.5 induces redox imbalance and causes ferroptosis and DNA damage response in TM4 cells. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01476513
Volume :
238
Database :
Supplemental Index
Journal :
Ecotoxicology & Environmental Safety
Publication Type :
Academic Journal
Accession number :
156859809
Full Text :
https://doi.org/10.1016/j.ecoenv.2022.113569