Fertilization defects in sperm from Cysteine-rich secretory protein 2 (Crisp2) knockout mice: implications for

N G Brukman1, H Miyata2, P Torres3

  • 1Instituto de Biología y Medicina Experimental (IByME-CONICET), Ciudad Autónoma de Buenos Aires C1428ADN, Argentina.

Abstract

Insights

Aberrant expression of Cysteine-Rich Secretory Protein 2 (CRISP2) is linked to male infertility. Crisp2-knockout mice show fertility defects under demanding conditions, supporting this link.

Area of Science:

  • Reproductive Biology
  • Molecular Endocrinology
  • Genetics

Background:

  • Testicular Cysteine-Rich Secretory Protein 2 (CRISP2) is present in mature sperm and implicated in gamete fusion.
  • Aberrant CRISP2 expression in humans is associated with male infertility.

Purpose of the Study:

  • To investigate the role of CRISP2 in male fertility by analyzing Crisp2-knockout mice.
  • To determine if defects in CRISP2 expression contribute to male infertility.

Main Methods:

  • Generated Crisp2-knockout mice (Crisp2-/-).
  • Assessed reproductive phenotypes, including fertility, in vivo/in vitro fertilization rates, and sperm functional parameters (tyrosine phosphorylation, acrosome reaction, hyperactivation, intracellular Ca(2+) levels).

Main Results:

  • Crisp2(-/-) males showed normal fertility under standard conditions but significant defects under demanding conditions (unilateral vasectomy, superovulation).
  • In vitro, Crisp2(-/-) sperm exhibited reduced ability to penetrate egg vestments and fuse with the egg.
  • Sperm from Crisp2(-/-) mice displayed impaired hyperactivation and dysregulated intracellular Ca(2+) levels.

Conclusions:

  • Fertilization defects in sperm are a likely mechanism underlying infertility in men with aberrant CRISP2 expression.
  • Reproductive defects in mice can be masked by conventional mating, highlighting the need for varied experimental approaches.
  • Findings support the link between CRISP2 function and male fertility, offering insights into human infertility.

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