Oligoasthenoteratospermia and sperm tail bending in PPP4C-deficient mice

F Han1,2, M Z Dong2,3, W L Lei2,3

  • 1Key Laboratory for Major Obstetric Diseases of Guangdong Province, The Third Affiliated Hospital of Guangzhou Medical University, Guangzhou, Guangdong 510150, China.

Insights

Protein phosphatase 4 (PPP4) deficiency causes male infertility in mice. Loss of PPP4C leads to sperm defects and cytoplasmic remnants, mimicking human oligoasthenoteratospermia (OAT).

Area of Science:

  • Reproductive Biology
  • Molecular Genetics
  • Cell Biology

Background:

  • Protein phosphatase 4 (PPP4) is highly expressed in the testis, but its function remains unclear.
  • Male infertility is a significant health concern with complex underlying causes.
  • Oligoasthenoteratospermia (OAT) is a common form of male infertility characterized by low sperm count, motility, and abnormal morphology.

Purpose of the Study:

  • To investigate the physiological role of Protein phosphatase 4 (PPP4) in male fertility.
  • To determine the consequences of Ppp4c gene deletion in a mouse model.
  • To explore the potential link between PPP4 deficiency and human male infertility disorders like OAT.

Main Methods:

  • Gene deletion of the PPP4 catalytic subunit (Ppp4c) in mice.
  • Light and transmission electron microscopy to assess sperm morphology and spermiogenesis.
  • Evaluation of sperm count, motility, and presence of cytoplasmic remnants.

Main Results:

  • Ppp4c deletion resulted in male-specific infertility.
  • Sperm exhibited tail bending defects, low count, poor motility, and attached cytoplasmic remnants.
  • Transmission electron microscopy revealed defects in cytoplasm removal during spermiogenesis.
  • The observed defects in the mouse model resemble human OAT.

Conclusions:

  • PPP4C is essential for normal spermiogenesis and male fertility.
  • Defects in cytoplasm removal during spermiogenesis contribute to male infertility.
  • The Ppp4c-deficient mouse model provides a valuable tool for studying the molecular mechanisms of OAT.

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