An epigenetic switch is crucial for spermatogonia to exit the undifferentiated state toward a Kit-positive identity

Author:

Shirakawa Takayuki1,Yaman-Deveci Ruken2,Tomizawa Shin-ichi1,Kamizato Yoshito1,Nakajima Kuniko1,Sone Hidetoshi1,Sato Yasuyuki1,Sharif Jafar2,Yamashita Akio3,Takada-Horisawa Yuki2,Yoshida Shosei4,Ura Kiyoe5,Muto Masahiro2,Koseki Haruhiko2,Suda Toshio6,Ohbo Kazuyuki1

Affiliation:

1. Department of Histology and Cell Biology, Yokohama City University School of Medicine, Yokohama 236-0004, Japan.

2. Developmental Genetics group, RIKEN Research Center for Integrative Medical Sciences, Yokohama 230-0045, Japan.

3. Department of Molecular Biology, Yokohama City University School of Medicine,, Yokohama 236-0004, Japan.

4. Division Of Germ Cell Biology, National Institute For Basic Biology, Okazaki 444-8585, Japan.

5. Department of Molecular Therapeutics, Osaka University Graduate School of Medicine, Suita 565-0871, Japan.

6. Department of Cell Differentiation, The Sakaguchi Laboratory of Developmental Biology, Keio University School of Medicine, Tokyo 123-8585, Japan.

Abstract

Epigenetic modifications influence gene expression and chromatin remodeling. In embryonic pluripotent stem cells, these epigenetic modifications have been extensively characterized; by contrast, the epigenetic events of tissue-specific stem cells are poorly understood. Here, we define a new epigenetic shift that is crucial for differentiation of murine spermatogonia toward meiosis. We have exploited a property of incomplete cytokinesis, which causes male germ cells to form aligned chains of characteristic lengths, as they divide and differentiate. These chains revealed the stage of spermatogenesis, so the epigenetic differences of various stages could be characterized. Single, paired and medium chain-length spermatogonia not expressing Kit (a marker of differentiating spermatogonia) showed no expression of Dnmt3a2 and Dnmt3b (two de novo DNA methyltransferases); they also lacked the transcriptionally repressive histone modification H3K9me2. By contrast, spermatogonia consisting of ∼8-16 chained cells with Kit expression dramatically upregulated Dnmt3a2/3b expression and also displayed increased H3K9me2 modification. To explore the function of these epigenetic changes in spermatogonia in vivo, the DNA methylation machinery was destabilized by ectopic Dnmt3b expression or Np95 ablation. Forced Dnmt3b expression induced expression of Kit; whereas ablation of Np95, which is essential for maintaining DNA methylation, interfered with differentiation and viability only after spermatogonia become Kit positive. These data suggest that the epigenetic status of spermatogonia shifts dramatically during the Kit-negative to Kit-positive transition. This shift might serve as a switch that determines whether spermatogonia self-renew or differentiate.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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