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Updated: Mar 3, 2026

Visualizing Mitophagy with Fluorescent Dyes for Mitochondria and Lysosome
Published on: November 30, 2022
Obesity-exposed oocytes accumulate and transmit damaged mitochondria due to an inability to activate mitophagy
Anna L Boudoures1, Jessica Saben1, Andrea Drury1
1Center for Reproductive and Health Sciences, Washington University in St. Louis, St. Louis, MO, USA.
Abstract:
Mitochondria are the most prominent organelle in the oocyte. Somatic cells maintain a healthy population of mitochondria by degrading damaged mitochondria via mitophagy, a specialized autophagy pathway. However, evidence from previous work investigating the more general macroautophagy pathway in oocytes suggests that mitophagy may not be active in the oocyte. This would leave the vast numbers of mitochondria - poised to be inherited by the offspring - vulnerable to damage. Here we test the hypothesis that inactive mitophagy in the oocyte underlies maternal transmission of dysfunctional mitochondria. To determine whether oocytes can complete mitophagy, we used either CCCP or AntimycinA to depolarize mitochondria and trigger mitophagy. After depolarization, we did not detect co-localization of mitochondria with autophagosomes and mitochondrial DNA copy number remained unchanged, indicating the non-functional mitochondrial population was not removed. To investigate the impact of an absence of mitophagy in oocytes with damaged mitochondria on offspring mitochondrial function, we utilized in vitro fertilization of high fat high sugar (HF/HS)-exposed oocytes, which have lower mitochondrial membrane potential and damaged mitochondria. Here, we demonstrate that blastocysts generated from HF/HS oocytes have decreased mitochondrial membrane potential, lower metabolites involved in ATP generation, and accumulation of PINK1, a mitophagy marker protein. This mitochondrial phenotype in the blastocyst mirrors the phenotype we show in HF/HS exposed oocytes. Taken together, these data suggest that the mechanisms governing oocyte mitophagy are fundamentally distinct from those governing somatic cell mitophagy and that the absence of mitophagy in the setting of HF/HS exposure contributes to the oocyte-to-blastocyst transmission of dysfunctional mitochondria.
Insights
Oocytes lack mitophagy, a process crucial for removing damaged mitochondria. This deficiency contributes to the transmission of dysfunctional mitochondria to offspring, particularly after high-fat, high-sugar exposure.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Reproductive Biology
Background:
- Mitochondria are vital organelles in oocytes, essential for offspring development.
- Somatic cells clear damaged mitochondria via mitophagy, but oocyte mitophagy remains unconfirmed.
- Inactive mitophagy in oocytes could lead to the inheritance of damaged mitochondria.
Purpose of the Study:
- To investigate the presence and functionality of mitophagy in oocytes.
- To determine if impaired oocyte mitophagy contributes to the transmission of mitochondrial dysfunction.
- To examine the impact of high-fat, high-sugar (HF/HS) exposure on oocyte mitochondrial health and mitophagy.
Main Methods:
- Oocytes were treated with CCCP or AntimycinA to induce mitochondrial depolarization and assess mitophagy.
- Mitochondrial co-localization with autophagosomes and mitochondrial DNA copy number were analyzed.
- In vitro fertilization was performed using HF/HS-exposed oocytes to evaluate offspring mitochondrial function.
Main Results:
- Oocytes failed to show mitophagy activation upon mitochondrial depolarization; no co-localization with autophagosomes was observed.
- Mitochondrial DNA copy number remained unchanged, indicating no removal of damaged mitochondria.
- Blastocysts derived from HF/HS-exposed oocytes exhibited reduced mitochondrial membrane potential, impaired ATP generation, and PINK1 accumulation.
Conclusions:
- Oocyte mitophagy mechanisms are distinct from those in somatic cells and appear to be inactive.
- The absence of mitophagy in oocytes, especially under adverse conditions like HF/HS exposure, facilitates the transmission of mitochondrial defects to the next generation.
- This study highlights a critical difference in mitochondrial quality control between oocytes and somatic cells, with significant implications for offspring health.
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