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Updated: Aug 18, 2026

Orthotopic Ovarian Transplantation Procedures to Investigate the Life- and Health-span Influence of Ovarian Senescence in Female Mice
Published on: February 12, 2018
Effect of female age on mouse oocyte developmental competence following mitochondrial injury
George A Thouas1, Alan O Trounson, Gayle M Jones
1Monash Immunology and Stem Cell Laboratories (MISCL), Monash University, Clayton, Victoria 3800, Australia. george.thouas@med.monash.edu.au
Abstract:
Oocytes from aging ovaries contain mitochondria with morphological and genetic flaws. How these flaws relate to phenotypes of oocyte developmental compromise associated with clinical infertility is not well understood. This study was conducted to investigate the role of mitochondria in the developmental compromises observed with female aging using a mouse model of mitochondrial dysfunction. Oocytes obtained from aging (30-40 wk) (C57BL/6J x CBACaH)F1 (B6CBAF1) hybrid female mice were photosensitized with mitochondrial fluorophore rhodamine-123 for variable durations and compared to similarly treated oocytes derived from pubertal mice (4-6 wk). Blastocyst development of normally fertilized oocytes from both age-groups correlated negatively in mathematically unique profiles with irradiation time, with a more sudden decline in development for oocytes from aging mice. Complete inhibition of blastocyst development occurred following a shorter duration of photosensitization for oocytes from aging compared to pubertal animals (60 vs. 90 sec). Prolonged photosensitization resulted in mitochondrial uncoupling and promoted localized generation of reactive oxygen species, mitochondrial permeabilization, and apoptotic phenotypes. Thus, aging oocytes are more developmentally sensitive to mitochondrial damage than pubertal oocytes but undergo similar metabolic and apoptotic responses. These and future findings may encourage further optimization of laboratory-based strategies to minimize mitochondrial injury to oocytes, particularly those from older women, and improve clinical outcomes for women with age-related etiologies of infertility.
Insights
Aging oocytes are more vulnerable to mitochondrial damage, leading to infertility. This study reveals that even brief mitochondrial injury significantly impacts egg development in older mice, highlighting the need for protective strategies.
Area of Science:
- Reproductive biology
- Mitochondrial biology
- Cellular aging
Background:
- Oocytes from aging ovaries exhibit mitochondrial flaws, impacting fertility.
- The precise relationship between these mitochondrial defects and oocyte developmental issues in aging females remains unclear.
Purpose of the Study:
- To investigate the role of mitochondria in age-related oocyte developmental compromises.
- To utilize a mouse model to explore mitochondrial dysfunction in aging oocytes.
Main Methods:
- Oocytes from aging (30-40 wk) and pubertal (4-6 wk) mice were photosensitized with rhodamine-123.
- Developmental potential (blastocyst formation) was assessed after fertilization.
- Mitochondrial responses including ROS generation and apoptosis were analyzed.
Main Results:
- Blastocyst development declined more rapidly with increasing photosensitization in aging oocytes compared to pubertal oocytes.
- Complete inhibition of development occurred sooner in aging oocytes (60 sec) versus pubertal oocytes (90 sec).
- Mitochondrial damage induced uncoupling, reactive oxygen species (ROS), and apoptosis in both age groups.
Conclusions:
- Oocytes from aging females are more susceptible to mitochondrial damage than those from younger females.
- Despite increased sensitivity, aging oocytes exhibit similar metabolic and apoptotic responses to mitochondrial injury.
- Findings may inform strategies to protect oocytes from mitochondrial damage, improving fertility outcomes for older women.
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