Literature DB >> 31996847

Zucchini consensus motifs determine the mechanism of pre-piRNA production.

Natsuko Izumi1, Keisuke Shoji1,2, Yutaka Suzuki3, Susumu Katsuma4, Yukihide Tomari5,6.   

Abstract

PIWI-interacting RNAs (piRNAs) of between approximately 24 and 31 nucleotides in length guide PIWI proteins to silence transposons in animal gonads, thereby ensuring fertility1. In the biogenesis of piRNAs, PIWI proteins are first loaded with 5'-monophosphorylated RNA fragments called pre-pre-piRNAs, which then undergo endonucleolytic cleavage to produce pre-piRNAs1,2. Subsequently, the 3'-ends of pre-piRNAs are trimmed by the exonuclease Trimmer (PNLDC1 in mouse)3-6 and 2'-O-methylated by the methyltransferase Hen1 (HENMT1 in mouse)7-9, generating mature piRNAs. It is assumed that the endonuclease Zucchini (MitoPLD in mouse) is a major enzyme catalysing the cleavage of pre-pre-piRNAs into pre-piRNAs10-13. However, direct evidence for this model is lacking, and how pre-piRNAs are generated remains unclear. Here, to analyse pre-piRNA production, we established a Trimmer-knockout silkworm cell line and derived a cell-free system that faithfully recapitulates Zucchini-mediated cleavage of PIWI-loaded pre-pre-piRNAs. We found that pre-piRNAs are generated by parallel Zucchini-dependent and -independent mechanisms. Cleavage by Zucchini occurs at previously unrecognized consensus motifs on pre-pre-piRNAs, requires the RNA helicase Armitage, and is accompanied by 2'-O-methylation of pre-piRNAs. By contrast, slicing of pre-pre-piRNAs with weak Zucchini motifs is achieved by downstream complementary piRNAs, producing pre-piRNAs without 2'-O-methylation. Regardless of the endonucleolytic mechanism, pre-piRNAs are matured by Trimmer and Hen1. Our findings highlight multiplexed processing of piRNA precursors that supports robust and flexible piRNA biogenesis.

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Year:  2020        PMID: 31996847     DOI: 10.1038/s41586-020-1966-9

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  48 in total

1.  Identification and Functional Analysis of the Pre-piRNA 3' Trimmer in Silkworms.

Authors:  Natsuko Izumi; Keisuke Shoji; Yuriko Sakaguchi; Shozo Honda; Yohei Kirino; Tsutomu Suzuki; Susumu Katsuma; Yukihide Tomari
Journal:  Cell       Date:  2016-02-25       Impact factor: 41.582

Review 2.  PIWI-interacting RNAs: small RNAs with big functions.

Authors:  Deniz M Ozata; Ildar Gainetdinov; Ansgar Zoch; Dónal O'Carroll; Phillip D Zamore
Journal:  Nat Rev Genet       Date:  2019-02       Impact factor: 53.242

3.  An essential role for PNLDC1 in piRNA 3' end trimming and male fertility in mice.

Authors:  Yue Zhang; Rui Guo; Yiqiang Cui; Zhiping Zhu; Yingwen Zhang; Hao Wu; Bo Zheng; Qiuling Yue; Shun Bai; Wentao Zeng; Xuejiang Guo; Zuomin Zhou; Bin Shen; Ke Zheng; Mingxi Liu; Lan Ye; Jiahao Sha
Journal:  Cell Res       Date:  2017-10-10       Impact factor: 25.617

4.  The mouse homolog of HEN1 is a potential methylase for Piwi-interacting RNAs.

Authors:  Yohei Kirino; Zissimos Mourelatos
Journal:  RNA       Date:  2007-07-24       Impact factor: 4.942

5.  Pimet, the Drosophila homolog of HEN1, mediates 2'-O-methylation of Piwi- interacting RNAs at their 3' ends.

Authors:  Kuniaki Saito; Yuriko Sakaguchi; Takeo Suzuki; Tsutomu Suzuki; Haruhiko Siomi; Mikiko C Siomi
Journal:  Genes Dev       Date:  2007-07-01       Impact factor: 11.361

6.  The Drosophila RNA methyltransferase, DmHen1, modifies germline piRNAs and single-stranded siRNAs in RISC.

Authors:  Michael D Horwich; Chengjian Li; Christian Matranga; Vasily Vagin; Gwen Farley; Peng Wang; Phillip D Zamore
Journal:  Curr Biol       Date:  2007-06-28       Impact factor: 10.834

7.  A Single Mechanism of Biogenesis, Initiated and Directed by PIWI Proteins, Explains piRNA Production in Most Animals.

Authors:  Ildar Gainetdinov; Cansu Colpan; Amena Arif; Katharine Cecchini; Phillip D Zamore
Journal:  Mol Cell       Date:  2018-09-06       Impact factor: 17.970

8.  PNLDC1, mouse pre-piRNA Trimmer, is required for meiotic and post-meiotic male germ cell development.

Authors:  Toru Nishimura; Ippei Nagamori; Tsunetoshi Nakatani; Natsuko Izumi; Yukihide Tomari; Satomi Kuramochi-Miyagawa; Toru Nakano
Journal:  EMBO Rep       Date:  2018-02-14       Impact factor: 8.807

9.  The structural biochemistry of Zucchini implicates it as a nuclease in piRNA biogenesis.

Authors:  Jonathan J Ipsaro; Astrid D Haase; Simon R Knott; Leemor Joshua-Tor; Gregory J Hannon
Journal:  Nature       Date:  2012-10-14       Impact factor: 49.962

10.  PNLDC1 is essential for piRNA 3' end trimming and transposon silencing during spermatogenesis in mice.

Authors:  Deqiang Ding; Jiali Liu; Kunzhe Dong; Uros Midic; Rex A Hess; Huirong Xie; Elena Y Demireva; Chen Chen
Journal:  Nat Commun       Date:  2017-10-10       Impact factor: 14.919

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  23 in total

1.  Zucchini: the key ingredient to unveil piRNA precursor processing†.

Authors:  Deqiang Ding; Chen Chen
Journal:  Biol Reprod       Date:  2020-08-21       Impact factor: 4.285

2.  Terminal modification, sequence, length, and PIWI-protein identity determine piRNA stability.

Authors:  Ildar Gainetdinov; Cansu Colpan; Katharine Cecchini; Amena Arif; Karina Jouravleva; Paul Albosta; Joel Vega-Badillo; Yongjin Lee; Deniz M Özata; Phillip D Zamore
Journal:  Mol Cell       Date:  2021-10-08       Impact factor: 17.970

3.  Functional Characterization of Silkworm PIWI Proteins by Embryonic RNAi.

Authors:  Takashi Kiuchi; Susumu Katsuma
Journal:  Methods Mol Biol       Date:  2022

Review 4.  Emerging roles and functional mechanisms of PIWI-interacting RNAs.

Authors:  Xin Wang; Anne Ramat; Martine Simonelig; Mo-Fang Liu
Journal:  Nat Rev Mol Cell Biol       Date:  2022-09-14       Impact factor: 113.915

5.  Unraveling mitochondrial piRNAs in mouse embryonic gonadal cells.

Authors:  Miguel Ángel Brieño-Enríquez; Jesús Del Mazo Martínez; Odei Barreñada; Eduardo Larriba; Daniel Fernández-Pérez
Journal:  Sci Rep       Date:  2022-06-24       Impact factor: 4.996

Review 6.  The function and regulation mechanism of piRNAs in human cancers.

Authors:  Wu Wu; Bing-Feng Lu; Ru-Qi Jiang; Shuo Chen
Journal:  Histol Histopathol       Date:  2021-03-02       Impact factor: 2.303

7.  A mosquito small RNA genomics resource reveals dynamic evolution and host responses to viruses and transposons.

Authors:  Qicheng Ma; Satyam P Srivastav; Stephanie Gamez; Gargi Dayama; Fabiana Feitosa-Suntheimer; Edward I Patterson; Rebecca M Johnson; Erik M Matson; Alexander S Gold; Douglas E Brackney; John H Connor; Tonya M Colpitts; Grant L Hughes; Jason L Rasgon; Tony Nolan; Omar S Akbari; Nelson C Lau
Journal:  Genome Res       Date:  2021-01-08       Impact factor: 9.043

8.  RNA Binding Protein-Based Model for Prognostic Prediction of Colorectal Cancer.

Authors:  Ting Li; Wenjia Hui; Halina Halike; Feng Gao
Journal:  Technol Cancer Res Treat       Date:  2021 Jan-Dec

9.  yama, a mutant allele of Mov10l1, disrupts retrotransposon silencing and piRNA biogenesis.

Authors:  Yongjuan Guan; Scott Keeney; Devanshi Jain; P Jeremy Wang
Journal:  PLoS Genet       Date:  2021-02-26       Impact factor: 5.917

10.  Dynamic subcellular compartmentalization ensures fidelity of piRNA biogenesis in silkworms.

Authors:  Pui Yuen Chung; Keisuke Shoji; Natsuko Izumi; Yukihide Tomari
Journal:  EMBO Rep       Date:  2021-05-11       Impact factor: 9.071

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