Perfluorooctane sulfonate (PFOS) disrupts testosterone biosynthesis via CREB/CRTC2/StAR signaling pathway in Leydig

Lianglin Qiu1, Hongxia Wang1, Tianyi Dong1

  • 1School of Public Health, Nantong University, 9 Sheyuan Rd., Nantong, 226019, PR China.

Toxicology
|December 28, 2020
PubMed

Insights

Perfluorooctane sulfonate (PFOS) exposure reduces sperm count and testosterone by disrupting the CREB/CRTC2/StAR pathway in male reproductive systems. This study clarifies molecular mechanisms behind PFOS-induced male infertility.

Area of Science:

  • Environmental Toxicology
  • Reproductive Biology
  • Endocrinology

Background:

  • Perfluorooctane sulfonate (PFOS), a persistent environmental contaminant, is linked to male reproductive disorders.
  • The precise molecular mechanisms underlying PFOS-induced male reproductive toxicity remain largely unknown.

Purpose of the Study:

  • To investigate the effects of PFOS on testosterone biosynthesis and elucidate the underlying molecular mechanisms.
  • To evaluate the role of the CREB/CRTC2/StAR signaling pathway in PFOS-induced male reproductive dysfunction.

Main Methods:

  • In vivo study: Male ICR mice were orally administered PFOS (0-10 mg/kg/bw) for 4 weeks.
  • In vitro study: Primary mouse Leydig cells were used to assess molecular effects.
  • Evaluated parameters included body weight, sperm count, hormone levels, gene/protein expression (PKA, p38 MAPK, CREB, CRTC2, StAR), and testicular morphology.

Main Results:

  • PFOS exposure dose-dependently decreased sperm count, testosterone levels, and CRTC2/StAR expression in testes.
  • PFOS disrupted testicular interstitium morphology and increased phosphorylated PKA, CREB, and p38 levels.
  • In vitro, PFOS reduced testosterone secretion, CRTC2/StAR expression, and CREB/CRTC2 interaction with the StAR promoter, effects mitigated by p38 and PKA inhibition.

Conclusions:

  • The CREB/CRTC2/StAR signaling pathway is critically involved in PFOS-induced suppression of testosterone biosynthesis.
  • This study advances the understanding of molecular mechanisms contributing to PFOS-related male reproductive disorders.