ADAD2 interacts with RNF17 in P-bodies to repress the Ping-pong cycle in pachytene piRNA biogenesis

Author:

Xiong Mengneng12ORCID,Yin Lisha1ORCID,Gui Yiqian1ORCID,Lv Chunyu1ORCID,Ma Xixiang13ORCID,Guo Shuangshuang1ORCID,Wu Yanqing1ORCID,Feng Shenglei1ORCID,Fan Xv1ORCID,Zhou Shumin1ORCID,Wang Lingjuan1ORCID,Wen Yujiao1ORCID,Wang Xiaoli1ORCID,Xie Qingzhen2ORCID,Namekawa Satoshi H.4ORCID,Yuan Shuiqiao135ORCID

Affiliation:

1. Institute of Reproductive Health, Tongji Medical College, Huazhong University of Science and Technology 1 , Wuhan, China

2. Reproductive Medicine Center, Wuhan University Renmin Hospital 5 , Wuhan, China

3. Laboratory of Animal Center, Huazhong University of Science and Technology 2 , Wuhan, China

4. Department of Microbiology and Molecular Genetics, University of California Davis 3 , Davis, CA, USA

5. Shenzhen Huazhong University of Science and Technology, Research Institute 4 , Shenzhen, China

Abstract

Pachytene piRNA biogenesis is a hallmark of the germline, distinct from another wave of pre-pachytene piRNA biogenesis with regard to the lack of a secondary amplification process known as the Ping-pong cycle. However, the underlying molecular mechanism and the venue for the suppression of the Ping-pong cycle remain elusive. Here, we showed that a testis-specific protein, ADAD2, interacts with a TDRD family member protein RNF17 and is associated with P-bodies. Importantly, ADAD2 directs RNF17 to repress Ping-pong activity in pachytene piRNA biogenesis. The P-body localization of RNF17 requires the intrinsically disordered domain of ADAD2. Deletion of Adad2 or Rnf17 causes the mislocalization of each other and subsequent Ping-pong activity derepression, secondary piRNAs overproduced, and disruption of P-body integrity at the meiotic stage, thereby leading to spermatogenesis arrested at the round spermatid stage. Collectively, by identifying the ADAD2-dependent mechanism, our study reveals a novel function of P-bodies in suppressing Ping-pong activity in pachytene piRNA biogenesis.

Funder

National Natural Science Foundation of China

Science Technology and Innovation

National Institute of Health

Publisher

Rockefeller University Press

Subject

Cell Biology

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