Free radicals and male reproduction

Ashok Agarwal1, Shyam S R Allamaneni

  • 1Center for Advanced Research in Human Reproduction, Infertility and Sexual Function, Glickman Urological Institute , Cleveland Clinic Foundation, Cleveland, OH 44195, USA.

Insights

Free radicals, or reactive oxygen species, contribute to male infertility by causing oxidative stress. Managing these free radicals with antioxidants is key for improving fertility outcomes.

Area of Science:

  • Reproductive biology
  • Andrology
  • Oxidative stress research

Background:

  • Male factor infertility affects nearly 50% of couples seeking treatment.
  • Free radicals, specifically reactive oxygen species (ROS), are increasingly recognized as key mediators of sperm dysfunction.
  • Elevated ROS levels are found in 30-80% of infertile men, impacting both idiopathic and specific infertility diagnoses.

Purpose of the Study:

  • To elucidate the role of free radicals and oxidative stress in male infertility.
  • To highlight the impact of ROS on sperm function, fertilization, and reproductive outcomes.
  • To discuss diagnostic and therapeutic strategies involving antioxidants for male infertility.

Main Methods:

  • Review of existing research on free radicals and male reproduction.
  • Analysis of the relationship between ROS levels and semen parameters.
  • Examination of the effects of oxidative stress on natural conception and assisted reproduction.

Main Results:

  • A delicate balance of ROS is essential for normal sperm function; excessive levels cause detrimental effects.
  • Oxidative stress negatively impacts standard semen parameters and fertilizing capacity.
  • High ROS levels correlate with poor fertility outcomes in both natural and assisted reproduction.

Conclusions:

  • Quantifying free radicals can aid physicians in developing targeted infertility treatment strategies.
  • In vivo antioxidant therapies can combat oxidative stress within the male reproductive tract.
  • In vitro antioxidant supplementation can protect sperm during assisted reproduction procedures.

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