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Published on: August 27, 2019
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.
Abstract:
Mechanistic target of rapamycin (mTOR) is a signal transduction pathway that modulates translation initiation in several animals including mammals. Rapamaycin, an allosteric inhibitor of mTOR pathway, is often used as an immunosuppressive drug following kidney transplantation and causes gonadal dysfunction and defects in spermatogenesis. The molecular mechanism behind rapamycin-mediated testicular dysfunction is not known. We have therefore explored the contribution of rapamycin in mTOR regulation and microRNA (miRNA) expression in mouse spermatocytes, the intermediate stage of spermatogenesis, where meiosis takes place. In the present study, we optimized the isolation of highly pure and viable spermatocytes by flow sorting, treated them with rapamycin, and investigated the expression of mTOR and downstream effector molecules. Western blot and immunocytochemical analysis confirm that rapamycin treatment suppresses mTOR and phopsphorylated P70S6 kinase activities in spermatocytes, but not that of phosphorylated 4E-binding protein 1. Also, rapamycin treatment modulates the expression of several spermatocyte-specific miRNAs. To complement these finding an in vivo study was also performed. In silico prediction of target genes of these miRNAs and their functional pathway analysis revealed that, several of them are involved in crucial biological process, cellular process and catalytic activities. miRNA-transcription factor (TF) network analysis enlisted different TFs propelling the transcription machineries of these miRNAs. In silico prediction followed by quatitative real-time PCR revealed two of these TFs namely, PU.1 and CCCTC binding factor (CTCF) are down and upregulated, respectively, which may be the reason of the altered expression of miRNAs following rapamycin treatment. In conclusion, for the first time, the present study provides insight into how rapamycin regulates mTOR pathway and spermatocyte-specific miRNA expression which in turn, regulate expression of target genes post-transcriptionally.
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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