Rapamycin (Sirolimus) alters mechanistic target of rapamycin pathway regulation and microRNA expression in mouse

A Mukherjee1, S Koli1, K V R Reddy1

  • 1Division of Molecular Immunology and Microbiology, National Institute for Research in Reproductive Health, Indian Council of Medical Research, Mumbai, India.

Andrology
|August 28, 2015
PubMed

Insights

Rapamycin, an immunosuppressant, disrupts male fertility by altering mTOR signaling and microRNA (miRNA) expression in mouse spermatocytes. This study elucidates rapamycin

Area of Science:

  • Reproductive Biology
  • Molecular Endocrinology
  • Signaling Pathways

Background:

  • Mechanistic target of rapamycin (mTOR) pathway regulates translation initiation in mammals.
  • Rapamycin, an mTOR inhibitor, causes gonadal dysfunction and spermatogenesis defects.
  • The precise molecular mechanisms of rapamycin-induced testicular dysfunction remain unclear.

Purpose of the Study:

  • To investigate rapamycin's effects on mTOR regulation and microRNA (miRNA) expression in mouse spermatocytes.
  • To elucidate the molecular mechanisms underlying rapamycin-mediated testicular dysfunction.

Main Methods:

  • Isolation of pure, viable mouse spermatocytes using flow sorting.
  • Treatment of spermatocytes with rapamycin.
  • Western blot and immunocytochemistry to analyze mTOR pathway components.
  • MicroRNA expression profiling and in silico analysis of miRNA targets and transcription factors (TFs).
  • Quantitative real-time PCR for TF validation.

Main Results:

  • Rapamycin suppressed mTOR and phosphorylated P70S6 kinase activity in spermatocytes.
  • Rapamycin modulated the expression of specific spermatocyte miRNAs.
  • In silico analysis identified key biological processes and TFs (PU.1, CTCF) involved in miRNA regulation.
  • PU.1 was downregulated, while CTCF was upregulated following rapamycin treatment.

Conclusions:

  • Rapamycin impacts male fertility by modulating mTOR signaling and spermatocyte-specific miRNA expression.
  • Altered miRNA expression, potentially driven by changes in PU.1 and CTCF, affects post-transcriptional gene regulation.
  • This study provides novel insights into the molecular basis of rapamycin's effects on spermatogenesis.

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