TY - JOUR
T1 - Induction of DNA methylation by artificial piRNA production in male germ cells
AU - Itou, Daisuke
AU - Shiromoto, Yusuke
AU - Shin-ya, Yukiho
AU - Ishii, Chika
AU - Nishimura, Toru
AU - Ogonuki, Narumi
AU - Ogura, Atsuo
AU - Hasuwa, Hidetoshi
AU - Fujihara, Yoshitaka
AU - Kuramochi-Miyagawa, Satomi
AU - Nakano, Toru
N1 - Funding Information:
The authors thank NPO Biotechnology Research and Development for technical assistance in generating Miwi2-asEGFP and Miwi2-asDnmt3L Tg mice. We also thank Dr. Y. Matsui for providing Oct4-EGFP Tg mice and Dr. Shota Nakamura for technical advice of bioinformatics. In addition, we thank Ms. N. Asada for technical assistance and Ms. M. Imaizumi for secretarial work. This work was supported in part by grants from the Ministry of Education, Science, Sports, and Culture and Core Research for Evolutional Science and Technology (CREST).
Publisher Copyright:
©2015 Elsevier Ltd All rights reserved.
PY - 2015
Y1 - 2015
N2 - Global DNA demethylation and subsequent de novo DNA methylation take place in mammalian male embryonic germ cells [1-3]. P-elementinduced wimpy testis (PIWI)-interacting RNAs (piRNAs), which are germline-specific small RNAs, have been postulated to be critically important for de novo DNA methylation of retrotransposon genes, and many proteins, including PIWI family proteins, play pivotal roles in this process [4-6]. In the embryonic mouse testis, two mouse PIWI proteins, mouse PIWI-like (MILI) and mouse PIWI2 (MIWI2), are involved in the biogenesis of piRNAs through the so-called ping-pong amplification cycle [7-10], and long single-stranded RNAs transcribed from the gene regions of piRNA clusters have been proposed to be the initial material [11-16]. However, it remains unclear whether transcription from the piRNA clusters is required for the biogenesis of piRNAs. To answer this question, we developed a novel artificial piRNA production system by simple expression of sense and antisense EGFP mRNAs in embryonic male germ cells in the piRNA biogenesis phase. EGFP expression was silenced by piRNA-dependent DNA methylation, indicating that concomitant expression of sense and antisense RNA transcripts is necessary and sufficient for piRNA production and subsequent piRNA-dependent gene silencing. In addition, we demonstrated that this artificial piRNA induction paradigm could be applied to an endogenous gene essential for spermatogenesis, DNM T3L [3, 17, 18]. This study not only provides novel insights into the molecular mechanisms of piRNA production, but also presents an innovative strategy for inducing epigenetic modification in germ cells.
AB - Global DNA demethylation and subsequent de novo DNA methylation take place in mammalian male embryonic germ cells [1-3]. P-elementinduced wimpy testis (PIWI)-interacting RNAs (piRNAs), which are germline-specific small RNAs, have been postulated to be critically important for de novo DNA methylation of retrotransposon genes, and many proteins, including PIWI family proteins, play pivotal roles in this process [4-6]. In the embryonic mouse testis, two mouse PIWI proteins, mouse PIWI-like (MILI) and mouse PIWI2 (MIWI2), are involved in the biogenesis of piRNAs through the so-called ping-pong amplification cycle [7-10], and long single-stranded RNAs transcribed from the gene regions of piRNA clusters have been proposed to be the initial material [11-16]. However, it remains unclear whether transcription from the piRNA clusters is required for the biogenesis of piRNAs. To answer this question, we developed a novel artificial piRNA production system by simple expression of sense and antisense EGFP mRNAs in embryonic male germ cells in the piRNA biogenesis phase. EGFP expression was silenced by piRNA-dependent DNA methylation, indicating that concomitant expression of sense and antisense RNA transcripts is necessary and sufficient for piRNA production and subsequent piRNA-dependent gene silencing. In addition, we demonstrated that this artificial piRNA induction paradigm could be applied to an endogenous gene essential for spermatogenesis, DNM T3L [3, 17, 18]. This study not only provides novel insights into the molecular mechanisms of piRNA production, but also presents an innovative strategy for inducing epigenetic modification in germ cells.
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U2 - 10.1016/j.cub.2015.01.060
DO - 10.1016/j.cub.2015.01.060
M3 - Article
C2 - 25772451
AN - SCOPUS:84932644183
SN - 0960-9822
VL - 25
SP - 901
EP - 906
JO - Current Biology
JF - Current Biology
IS - 7
ER -