The significance of sperm nuclear DNA strand breaks on reproductive outcome

Marcello Spano1, Emre Seli, Davide Bizzaro

  • 1BIOTEC-MED, ENEA CR Casaccia, Rome, Italy. spanomrc@casaccia.enea.it

Abstract

Insights

Sperm DNA breaks are linked to lower success rates in assisted reproduction. Advanced testing reveals these abnormalities impact fertilization, blastocyst development, and pregnancy outcomes, highlighting the importance of sperm health.

Area of Science:

  • Reproductive Biology
  • Genetics
  • Assisted Reproductive Technology

Background:

  • Ejaculated sperm from men undergoing intracytoplasmic sperm injection often exhibit nuclear abnormalities.
  • A significant portion of these anomalies involve breaks in sperm nuclear DNA.

Purpose of the Study:

  • To review mechanisms of DNA strand break generation during human spermatogenesis.
  • To examine techniques for assessing sperm nuclear integrity.
  • To evaluate the impact of sperm DNA strand breaks on assisted reproduction outcomes.

Main Methods:

  • Review of existing literature on sperm DNA damage and assisted reproduction.
  • Analysis of techniques like the TUNEL assay and sperm chromatin structure assay.
  • Correlation of DNA abnormalities with reproductive parameters.

Main Results:

  • Increased DNA abnormalities are observed in spermatozoa with poor semen parameters.
  • Sperm DNA abnormalities negatively affect fertilization rates.
  • Impaired blastocyst development and reduced pregnancy rates are associated with sperm DNA damage.

Conclusions:

  • Accumulating evidence links sperm nuclear DNA anomalies to poor outcomes in assisted reproduction.
  • Current tests offer preliminary insights into the impact of sperm DNA abnormalities.
  • While less impactful than female factors, paternal genome abnormalities cannot be disregarded.

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