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Dr. Bo Xiong's research uses confocal microscopy to explore oocyte quality and fertility challenges in mammals. The study identifies molecular biomarkers of oocyte quality, highlighting proteins like sororin in egg maturation, and aims to prevent polyspermy by understanding sperm-egg interactions.

Unveiling Oocyte Quality with Confocal Microscopy

Key Takeaways

  • Research focus: Molecular markers in oocyte quality using confocal microscopy.
  • Model systems: Mouse and pig oocytes studied for fertilization competency.
  • Research goal: Prevent polyspermy and improve fertility outcomes.
  • Presented by: Dr. Bo Xiong, reproductive biologist at Nanjing Agricultural University.
  • Content type: Scientific Article on reproductive biotechnologies.
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2 min read
Fluorescent microscopy image of a cell showing a green-stained membrane and a red-stained nucleus against a black background.

Confocal microscopy used to investigate disease models and the aging process.

A high quality oocyte is a precondition for successful fertilization and subsequent embryonic development. In most mammals, female reproductive aging is marked by a prominent decline in the quantity and quality of oocytes. Low quality of oocytes is a common and insurmountable problem for women with higher maternal age.

Dr. Bo Xiong is a reproductive biologist at the College of Animal Science and Technology, Nanjing Agricultural University, China. He has been working in this field for over 20 years. His lab has published work using confocal microscopy to uncover new roles of proteins involved in producing fertilization-competent eggs in mice and pigs.

Dr. Bo Xiong, Nanjing Agricultural University, China

Our work aims to identify the molecular biomarkers for oocyte quality and develop effective approaches and strategies to protect the oocytes from deterioration induced by maternal aging, contributing to improved fertility and enhanced efficiency of assisted reproductive technology.

Fluorescence microscopy image showing tubulin (green), DNA (blue), CREST (red), and a merged view of all three in a cell during division; scale bar indicates 10 micrometers.
Fluorescence microscopy image showing tubulin (green), DNA (blue), CREST (red), and a merged view of all three in a cell during division; scale bar indicates 10 micrometers.

Cohesin is a well-studied protein complex important for sister chromatid cohesion, chromosome segregation, and many other DNA-related activities. Sororin is an accessory protein to cohesin and acts as a stabilizer for cohesin during cell division.

In C. Zhou et al., they found that sororin also has a non-canonical role during oocyte meiotic progression into mature eggs, acting as a regulator of mammalian ooctyes as they begin cell division and creation of the meiotic spindle that will separate homologous chromosomes. These findings not only uncover a novel function and an unknown downstream effector of sororin during female egg development, but also extend our understanding of the molecular basis underlying the etiology of oocyte maturational arrest in humans.

Microscopic images showing sperm heads (cyan) surrounding an oocyte. Includes fluorescent, DIC, and merged views with a 25 µm scale bar.
Microscopic images showing sperm heads (cyan) surrounding an oocyte. Includes fluorescent, DIC, and merged views with a 25 µm scale bar.
A man in a white lab coat sits in a laboratory beside a microscope and a computer displaying scientific images.

In spite of its great clinical success, IVF is mainly associated with abnormal polyspermy, due to the dispermic oocyte penetration resulting in tripronuclear (3PN) oocytes. Thus, how only one sperm fertilizes each egg becomes one of the central questions about mammalian fertilization.

We now understand that to prevent polyspermy, the egg develops the plasma membrane and zona pellucida to block post-fertilization fusion, penetration and binding of additional sperm. The molecular basis and underlying mechanism for the post-fertilization zona pellucida block to sperm penetration has not been uncovered. The next goal of our lab is dedicated to address this scientific question.

https://www.zeiss.com/microscopy/en/resources/insights-hub/life-sciences/oocyte-confocal-microscopy.html
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Unveiling Oocyte Quality with Confocal Microscopy

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