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Updated: Aug 28, 2025

Analyzing Oxidative Stress in Murine Intestinal Organoids using Reactive Oxygen Species-Sensitive Fluorogenic Probe
Published on: September 17, 2021
Oxidative Stress Induces Bovine Endometrial Epithelial Cell Damage through Mitochondria-Dependent Pathways
Pengjie Song1, Chen Liu1, Mingkun Sun1
1Key Laboratory of Animal Biotechnology of the Ministry of Agriculture, College of Veterinary Medicine, Northwest A&F University, Xianyang 712100, China.
Abstract:
Bovine endometritis is a mucosal inflammation that is characterized by sustained polymorphonuclear neutrophil (PMN) infiltration. Elevated PMN counts in the uterine discharge of dairy cows affected by endometritis suggest that oxidative stress may be among the causes of impaired fertility due to the condition. Nevertheless, the effects of oxidative stress-mediated endometritis in dairy cows largely remain uninvestigated. Therefore, fresh uterine tissue and uterine discharge samples were collected to diagnose the severity of endometritis according to the numbers of inflammatory cells in the samples. Twenty-six fresh uteri were classified into healthy, mild, moderate, and severe endometritis groups based on hematoxylin and eosin stain characteristics and the percentage of PMNs in discharge. BEECs were treated with graded concentrations of H2O2 from 50 μM to 200 μM in vitro as a model to explore the mechanism of oxidative stress during bovine graded endometritis. The expressions of antioxidant stress kinases were detected by quantitative fluorescence PCR to verify the oxidative stress level in uteri with endometritis. Reactive oxygen species were detected by fluorescence microscope, and inflammation-related mRNA expression increased significantly after H2O2 stimulation. Moreover, mRNA expression levels of antioxidant oxidative stress-related enzymes (glutathione peroxidase, superoxide dismutase, and catalase) and mitochondrial membrane potential both decreased. Further investigation revealed that expression of the apoptosis regulator Bcl-2/Bax decreased, whereas expression of the mitochondrial apoptosis-related proteins cytochrome c and caspase-3 increased in response to oxidative stress. Our results indicate that an imbalance exists between oxidation and antioxidation during bovine endometritis. Moreover, apoptosis induced in vitro by oxidative stress was characterized by mitochondrial damage in BEECs.
Insights
Oxidative stress contributes to bovine endometritis, impairing fertility in dairy cows. This study reveals that oxidative stress damages bovine endometrial epithelial cells (BEECs) by disrupting antioxidant defenses and triggering apoptosis.
Area of Science:
- Veterinary Medicine
- Reproductive Biology
- Cellular Pathology
Background:
- Bovine endometritis involves persistent polymorphonuclear neutrophil (PMN) infiltration and is linked to impaired fertility.
- Oxidative stress is suspected to contribute to endometritis, but its mechanisms in dairy cows are largely uninvestigated.
Purpose of the Study:
- To investigate the role and mechanisms of oxidative stress in bovine endometritis.
- To assess the impact of oxidative stress on bovine endometrial epithelial cells (BEECs) in vitro.
Main Methods:
- Uterine tissues and discharge from 26 dairy cows were analyzed to classify endometritis severity.
- BEECs were exposed to hydrogen peroxide (H2O2) in vitro to model oxidative stress.
- Quantitative fluorescence PCR, fluorescence microscopy, and analysis of apoptosis markers were employed.
Main Results:
- In vitro H2O2 stimulation increased reactive oxygen species and inflammation-related mRNA.
- Antioxidant enzyme expression and mitochondrial membrane potential decreased with increasing H2O2 concentrations.
- Oxidative stress induced apoptosis in BEECs, evidenced by altered Bcl-2/Bax ratios and increased cytochrome c and caspase-3.
Conclusions:
- Bovine endometritis is associated with an imbalance between oxidation and antioxidation.
- Oxidative stress in endometritis leads to mitochondrial damage and apoptosis in BEECs, contributing to impaired fertility.
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