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Updated: Feb 15, 2026

Assessment of Oxidative Damage in the Primary Mouse Ocular Surface Cells/Stem Cells in Response to Ultraviolet-C UV-C Damage
Published on: February 15, 2020
Melatonin reduces oxidative damage in mouse granulosa cells via restraining JNK-dependent autophagy
Abstract:
Oxidative stress-induced granulosa cell (GCs) injury is believed to be a common trigger for follicular atresia. Emerging evidence indicates that excessive autophagy occurs in mammalian cells with oxidative damage. N-acetyl-5-methoxytrypamine (melatonin) has been shown to prevent GCs from oxidative injury, although the exact mechanism remains to be elucidated. Here, we first demonstrated that the suppression of autophagy through the JNK/BCL-2/BECN1 signaling is engaged in melatonin-mediated GCs protection against oxidative damage. Melatonin inhibited the loss of GCs viability, formation of GFP-MAP1LC3B puncta, accumulation of MAP1LC3B-II blots, degradation of SQSTM1 and the expression of BECN1, which was correlated with impaired activation of JNK during oxidative stress. On the other hand, blocking of autophagy and/or JNK also reduced the level of H2O2-induced GCs death, but failed to further restore GCs viability in the presence of melatonin. Particularly, the suppression of autophagy provided no additional protective effects when GCs were pretreated with JNK inhibitor and/or melatonin. Importantly, we found that the enhanced interaction between BCL-2 and BECN1 might be a responsive mechanism for autophagy suppression via the melatonin/JNK pathway. Moreover, blocking the downstream antioxidant system of melatonin using specific inhibitors further confirmed a direct role of melatonin/JNK/autophagy axis in preserving GCs survival without scavenging reactive oxygen species (ROS). Taken together, our findings uncover a novel function of melatonin in preventing GCs from oxidative damage by targeting JNK-mediated autophagy, which might contribute to develop therapeutic strategies for patients with ovulation failure-related disorders.
Insights
Melatonin protects granulosa cells (GCs) from oxidative damage by suppressing JNK-mediated autophagy. This mechanism preserves GC viability and may offer therapeutic strategies for ovulation failure.
Area of Science:
- Reproductive Biology
- Cellular Stress Response
- Molecular Endocrinology
Background:
- Oxidative stress injures granulosa cells (GCs), a key factor in follicular atresia.
- Excessive autophagy is observed in cells experiencing oxidative damage.
- Melatonin is known to protect GCs from oxidative injury, but its mechanism is unclear.
Purpose of the Study:
- To elucidate the mechanism by which melatonin protects GCs from oxidative damage.
- To investigate the role of autophagy and the JNK/BCL-2/BECN1 signaling pathway in melatonin's protective effects.
Main Methods:
- Assessed GC viability and markers of autophagy (GFP-MAP1LC3B puncta, MAP1LC3B-II, SQSTM1) under oxidative stress.
- Investigated the effects of melatonin, JNK inhibitors, and autophagy inhibitors on GCs.
- Examined the interaction between BCL-2 and BECN1.
- Utilized specific inhibitors for melatonin's downstream antioxidant system.
Main Results:
- Melatonin inhibited GC death, autophagy markers, and BECN1 expression, correlating with reduced JNK activation.
- Blocking autophagy or JNK decreased H2O2-induced GC death but did not enhance melatonin's protective effects.
- Enhanced BCL-2 and BECN1 interaction was observed, suggesting a mechanism for autophagy suppression.
- The melatonin/JNK/autophagy pathway protected GCs independently of ROS scavenging.
Conclusions:
- Melatonin protects GCs from oxidative damage by suppressing JNK-mediated autophagy.
- The findings reveal a novel mechanism involving the melatonin/JNK/autophagy axis.
- This pathway may offer therapeutic targets for ovulation disorders linked to follicular atresia.
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