Deletion of NFIX results in defective progression through meiosis within the mouse testis

Author:

Davila Raul Ayala12,Spiller Cassy12,Harkins Danyon12,Harvey Tracey12,Jordan Philip W34,Gronostajski Richard M56,Piper Michael1272,Bowles Josephine1282

Affiliation:

1. School of Biomedical Sciences , , Brisbane, Australia

2. The University of Queensland , , Brisbane, Australia

3. Department of Biochemistry and Molecular Biology , , Baltimore, MD, USA

4. Johns Hopkins University Bloomberg School of Public Health , , Baltimore, MD, USA

5. Department of Biochemistry , Program in Genetics, Genomics and Bioinformatics, Center of Excellence in Bioinformatics and Life Sciences, , Buffalo, NY, USA

6. State University of New York at Buffalo , Program in Genetics, Genomics and Bioinformatics, Center of Excellence in Bioinformatics and Life Sciences, , Buffalo, NY, USA

7. Queensland Brain Institute , , Brisbane, Australia

8. Institute for Molecular Bioscience , , Brisbane, Australia

Abstract

Abstract Members of the nuclear factor I (NFI) family are key regulators of stem cell biology during development, with well-documented roles for NFIA, NFIB, and NFIX in a variety of developing tissues, including brain, muscle, and lung. Given the central role these factors play in stem cell biology, we posited that they may be pivotal for spermatogonial stem cells or further developing spermatogonia during testicular development. Surprisingly, in stark contrast to other developing organ systems where NFI members are co-expressed, these NFI family members show discrete patterns of expression within the seminiferous tubules. Sertoli cells (spermatogenic supporting cells) express NFIA, spermatocytes express NFIX, round spermatids express NFIB, and peritubular myoid cells express each of these three family members. Further analysis of NFIX expression during the cycle of the seminiferous epithelium revealed expression not in spermatogonia, as we anticipated, but in spermatocytes. These data suggested a potential role for NFIX in spermatogenesis. To investigate, we analyzed mice with constitutive deletion of Nfix (Nfix-null). Assessment of germ cells in the postnatal day 20 (P20) testes of Nfix-null mice revealed that spermatocytes initiate meiosis, but zygotene stage spermatocytes display structural defects in the synaptonemal complex, and increased instances of unrepaired DNA double-strand breaks. Many developing spermatocytes in the Nfix-null testis exhibited multinucleation. As a result of these defects, spermatogenesis is blocked at early diplotene and very few round spermatids are produced. Collectively, these novel data establish the global requirement for NFIX in correct meiotic progression during the first wave of spermatogenesis.

Funder

Australian Research Council Discovery Project

Australian Government Research Training Program

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,General Medicine,Reproductive Medicine

Reference53 articles.

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