Mechanisms of translational repression of the Smcp mRNA in round spermatids

Danielle L Cullinane1, Tamjid A Chowdhury1, Kenneth C Kleene2

  • 1Department of BiologyUniversity of Massachusetts Boston, 100 Morrissey Boulevard, Boston, Massachusetts 02125-3393, USA.

Reproduction (Cambridge, England)
|October 23, 2014
PubMed

Insights

Y-box protein 2 (YBX2) represses protamine 1 (Prm1) and sperm mitochondria-associated, cysteine-rich protein (Smcp) mRNA translation in early spermatids. Its depletion causes premature translation, impacting male fertility.

Area of Science:

  • Reproductive biology
  • Molecular genetics
  • Spermatogenesis

Background:

  • Post-meiotic spermatogenic cells, specifically spermatids, exhibit mRNA-specific translational regulation.
  • Protamine 1 (Prm1) and sperm mitochondria-associated, cysteine-rich protein (Smcp) mRNAs are transcribed early and translated late in spermatid development.

Purpose of the Study:

  • To elucidate the regulatory mechanisms controlling Prm1 and Smcp mRNA translation.
  • To identify proteins interacting with Smcp mRNA regulatory elements.
  • To investigate the role of Y-box protein 2 (YBX2) in spermatid mRNA repression.

Main Methods:

  • Transgenic mouse models to assess the function of Smcp mRNA 5' and 3'-UTRs.
  • RNA affinity chromatography and mass spectrometry to identify YBX2 binding partners.
  • Ybx2-null mice to study the in vivo effects of YBX2 depletion.
  • Fluorescent in situ hybridization to localize Smcp mRNA and pre-mRNA.

Main Results:

  • The 5' and 3'-UTRs of Smcp mRNA are essential for its repression.
  • YBX2 directly binds to a Y-box recognition sequence in Smcp mRNA and is crucial for Prm1 mRNA repression.
  • Ybx2-null mice exhibit premature translation of Prm1 and Smcp mRNAs.
  • Smcp mRNA and pre-mRNA are localized to the chromatoid body, and YBX2 is a major component of testis free-mRNPs.

Conclusions:

  • YBX2 is a key repressor of Prm1 and Smcp mRNA translation in early spermatids.
  • YBX2 likely represses numerous mRNAs in spermatids, contributing to translational control.
  • Dysregulation of YBX2 is linked to male infertility and abnormal protamine expression in humans.

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