Post-ovulatory aging of oocytes disrupts kinase signaling pathways and lysosome biogenesis

Lynda K McGinnis1, Steven Pelech, William H Kinsey

  • 1Department Molecular and Integrative Physiology, University of Kansas Medical Center, Kansas City, Kansas; Department of Anatomy and Cell Biology, University of Kansas Medical Center, Kansas City, Kansas.

Insights

Oocyte aging during prolonged culture impairs fertilization and development. This study reveals global signaling pathway disruptions, including increased autophagy and altered kinase activity, impacting oocyte quality.

Area of Science:

  • Reproductive Biology
  • Cell Signaling
  • Oocyte Biology

Background:

  • Post-ovulatory oocyte aging leads to reduced fertilization and developmental potential.
  • Previous studies focused on individual pathways, limiting understanding of global signaling events during oocyte aging.
  • Identifying global signaling changes is crucial for developing strategies to preserve oocyte quality during in vitro culture.

Purpose of the Study:

  • To comprehensively assess broad signaling pathway activity during in vitro oocyte aging.
  • To identify control points for preventing oocyte quality decline during prolonged culture.
  • To understand the global impact of in vitro culture on oocyte signaling.

Main Methods:

  • Antibody microarray-based phospho-proteome analysis of oocytes before and after 8 hours of culture.
  • Western blot and confocal immunofluorescence to validate array findings.
  • Analysis of intracellular structures, including autophagic lysosomes.

Main Results:

  • Significant changes in 43 proteins involved in various protein kinase-mediated signaling pathways were observed.
  • Prolonged culture globally altered protein kinase abundance and activity regulating calcium, stress, and cell-cycle control.
  • An increase in large autophagic lysosomes correlated with altered protein kinase pathways.

Conclusions:

  • In vitro oocyte aging causes global disruptions in signaling pathways, including calcium, stress response, and cell-cycle control.
  • Increased autophagy and altered kinase activity negatively impact oocyte quality by interfering with post-fertilization egg activation.
  • These findings provide insight into oocyte stress responses during culture and potential targets for quality preservation.

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