Conditional inactivation of Miwi2 reveals that MIWI2 is only essential for prospermatogonial development in mice

J Bao1, Y Zhang1, A S Schuster1

  • 1Department of Physiology and Cell Biology, University of Nevada Reno School of Medicine, 1664 North Virginia Street, Mailstop 0575, Reno, NV 89557, USA.

Insights

The PIWI-piRNA pathway protects the male germline genome. MIWI2 (a PIWI protein) is crucial for primordial germ cell reprogramming, but dispensable for later testicular function and has roles beyond transposable element suppression.

Area of Science:

  • Reproductive Biology
  • Epigenetics
  • Genomics

Background:

  • The PIWI-piRNA pathway is essential for male germline genome defense against transposable elements (TEs).
  • MIWI2 (a PIWI protein) is expressed in early male germ cells, and its global inactivation causes male sterility linked to retrotransposon desuppression.

Purpose of the Study:

  • To investigate the precise function and temporal requirement of MIWI2 in male germline development.
  • To determine if MIWI2 has roles beyond transposable element suppression.

Main Methods:

  • Conditional inactivation of the Miwi2 gene in mice.
  • Analysis of male germline development, testicular function, retrotransposon activity, DNA damage, histone modifications, and mRNA transcriptome.

Main Results:

  • MIWI2 function is restricted to a critical window during male primordial germ cell reprogramming.
  • Miwi2 inactivation is dispensable for postnatal male germline development and testicular function.
  • Persistent retrotransposon activation due to Miwi2 inactivation causes meiotic arrest with DNA damage and epigenetic alterations, but is compatible with early spermatogenesis.

Conclusions:

  • MIWI2 is essential for male primordial germ cell reprogramming but not for later germline development or function.
  • MIWI2 and its associated piRNAs have functions extending beyond transposable element suppression, impacting meiotic progression and genome integrity.

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