Oocytes orchestrate protein prenylation for mitochondrial function through selective inactivation of cholesterol

Yongjuan Sang1, Qiwen Yang2, Yueshuai Guo2

  • 1Modern Animal Research Center of Medical School, Nanjing University, Nanjing, China.

Insights

Geranylgeranyl diphosphate synthase1 (Ggps1) is vital for mouse oocyte maturation and mitochondrial function. Its absence causes subfertility and offspring metabolic issues, particularly with high-cholesterol diets.

Area of Science:

  • Reproductive Biology
  • Mitochondrial Biology
  • Metabolic Pathways

Background:

  • Oocyte metabolic activity is implicated in reproductive anomalies.
  • Mechanisms linking metabolic enzymes to oocyte development are poorly understood.

Purpose of the Study:

  • To investigate the role of geranylgeranyl diphosphate synthase1 (Ggps1) in mouse oocyte maturation and its impact on offspring.
  • To elucidate the molecular mechanisms underlying Ggps1 deficiency-induced mitochondrial dysfunction.

Main Methods:

  • Gene deletion of Ggps1 in fully grown mouse oocytes.
  • Assessment of oocyte maturation, fertility, and offspring metabolic health.
  • Analysis of mitochondrial homeostasis and protein prenylation status.

Main Results:

  • Ggps1 deletion impairs oocyte maturation, leading to subfertility and inherited mitochondrial defects in offspring.
  • Ggps1 deficiency disrupts mitochondrial homeostasis via altered protein prenylation (Dap3 farnesylation, small G protein levels).
  • Reduced Ggps1 in oocytes from females on a high-cholesterol diet causes offspring defects, linked to mevalonate pathway imbalance.

Conclusions:

  • Mevalonate pathway-mediated protein prenylation is essential for oocyte mitochondrial function and maturation.
  • Disrupted protein prenylation underlies impaired oocyte quality induced by high-cholesterol diets.
  • Ggps1 is a critical factor for maintaining oocyte quality and preventing metabolic defects in offspring.

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