Literature DB >> 32047269

m6A-dependent biogenesis of circular RNAs in male germ cells.

Chong Tang1,2, Yeming Xie3, Tian Yu3, Na Liu4, Zhuqing Wang3, Rebekah J Woolsey5, Yunge Tang6,7, Xinzong Zhang6,7, Weibing Qin6,7, Ying Zhang6,7, Ge Song6,7, Weiwei Zheng6,7, Juan Wang4, Weitian Chen4, Xiongyi Wei4, Zhe Xie4,8, Rachel Klukovich3, Huili Zheng3, David R Quilici5, Wei Yan9,10,11.   

Abstract

The majority of circular RNAs (circRNAs) spliced from coding genes contain open reading frames (ORFs) and thus, have protein coding potential. However, it remains unknown what regulates the biogenesis of these ORF-containing circRNAs, whether they are actually translated into proteins and what functions they play in specific physiological contexts. Here, we report that a large number of circRNAs are synthesized with increasing abundance when late pachytene spermatocytes develop into round and then elongating spermatids during murine spermatogenesis. For a subset of circRNAs, the back splicing appears to occur mostly at m6A-enriched sites, which are usually located around the start and stop codons in linear mRNAs. Consequently, approximately a half of these male germ cell circRNAs contain large ORFs with m6A-modified start codons in their junctions, features that have been recently shown to be associated with protein-coding potential. Hundreds of peptides encoded by the junction sequences of these circRNAs were detected using liquid chromatography coupled with mass spectrometry, suggesting that these circRNAs can indeed be translated into proteins in both developing (spermatocytes and spermatids) and mature (spermatozoa) male germ cells. The present study discovered not only a novel role of m6A in the biogenesis of coding circRNAs, but also a potential mechanism to ensure stable and long-lasting protein production in the absence of linear mRNAs, i.e., through production of circRNAs containing large ORFs and m6A-modified start codons in junction sequences.

Entities:  

Mesh:

Substances:

Year:  2020        PMID: 32047269      PMCID: PMC7054367          DOI: 10.1038/s41422-020-0279-8

Source DB:  PubMed          Journal:  Cell Res        ISSN: 1001-0602            Impact factor:   25.617


  83 in total

Review 1.  Haploid spermatids exhibit translationally repressed mRNAs.

Authors:  K Steger
Journal:  Anat Embryol (Berl)       Date:  2001-05

2.  Duration of spermatogenesis in the mouse and timing of stages of the cycle of the seminiferous epithelium.

Authors:  E F OAKBERG
Journal:  Am J Anat       Date:  1956-11

3.  Definition of the stages of the cycle of the seminiferous epithelium in the rat.

Authors:  C P LEBLOND; Y CLERMONT
Journal:  Ann N Y Acad Sci       Date:  1952-11-20       Impact factor: 5.691

Review 4.  Patterns, mechanisms, and functions of translation regulation in mammalian spermatogenic cells.

Authors:  K C Kleene
Journal:  Cytogenet Genome Res       Date:  2003       Impact factor: 1.636

Review 5.  Non-canonical poly(A) polymerase in mammalian gametogenesis.

Authors:  Shin-ichi Kashiwabara; Tomoko Nakanishi; Masanori Kimura; Tadashi Baba
Journal:  Biochim Biophys Acta       Date:  2008-02-12

Review 6.  Gene regulation in spermatogenesis.

Authors:  James A Maclean; Miles F Wilkinson
Journal:  Curr Top Dev Biol       Date:  2005       Impact factor: 4.897

Review 7.  Regulation of gene expression during spermatogenesis.

Authors:  E M Eddy
Journal:  Semin Cell Dev Biol       Date:  1998-08       Impact factor: 7.727

8.  Temporal translational regulation of the protamine 1 gene during mouse spermatogenesis.

Authors:  R E Braun
Journal:  Enzyme       Date:  1990

9.  UPF2-Dependent Nonsense-Mediated mRNA Decay Pathway Is Essential for Spermatogenesis by Selectively Eliminating Longer 3'UTR Transcripts.

Authors:  Jianqiang Bao; Kristoffer Vitting-Seerup; Johannes Waage; Chong Tang; Ying Ge; Bo T Porse; Wei Yan
Journal:  PLoS Genet       Date:  2016-05-05       Impact factor: 5.917

10.  Alternative cleavage and polyadenylation in spermatogenesis connects chromatin regulation with post-transcriptional control.

Authors:  Wencheng Li; Ji Yeon Park; Dinghai Zheng; Mainul Hoque; Ghassan Yehia; Bin Tian
Journal:  BMC Biol       Date:  2016-01-22       Impact factor: 7.431

View more
  42 in total

Review 1.  The expanding regulatory mechanisms and cellular functions of circular RNAs.

Authors:  Ling-Ling Chen
Journal:  Nat Rev Mol Cell Biol       Date:  2020-05-04       Impact factor: 94.444

Review 2.  Deciphering the RNA universe in sperm in its role as a vertical information carrier.

Authors:  Miriam Kretschmer; Katharina Gapp
Journal:  Environ Epigenet       Date:  2022-04-16

3.  Uncoupling transcription and translation through miRNA-dependent poly(A) length control in haploid male germ cells.

Authors:  Mei Guo; Chunhai Luo; Zhuqing Wang; Sheng Chen; Dayton Morris; Fengying Ruan; Zhichao Chen; Linfeng Yang; Xiongyi Wei; Chuanwen Wu; Bei Luo; Zhou Lv; Jin Huang; Dong Zhang; Cong Yu; Qiang Gao; Hongqi Wang; Ying Zhang; Fei Sun; Wei Yan; Chong Tang
Journal:  Development       Date:  2022-06-16       Impact factor: 6.862

4.  Circular RNA circPOLR2A promotes clear cell renal cell carcinoma progression by facilitating the UBE3C-induced ubiquitination of PEBP1 and, thereby, activating the ERK signaling pathway.

Authors:  Zhipeng Xu; Shuqiu Chen; Ruiji Liu; Hui Chen; Bin Xu; Weizhang Xu; Ming Chen
Journal:  Mol Cancer       Date:  2022-07-15       Impact factor: 41.444

5.  The Regulation Network and Clinical Significance of Circular RNAs in Breast Cancer.

Authors:  Juan Xu; Xiyi Chen; Yu Sun; Yaqian Shi; Fang Teng; Mingming Lv; Chen Liu; Xuemei Jia
Journal:  Front Oncol       Date:  2021-07-09       Impact factor: 6.244

Review 6.  Epigenetic regulations in mammalian spermatogenesis: RNA-m6A modification and beyond.

Authors:  Yiqian Gui; Shuiqiao Yuan
Journal:  Cell Mol Life Sci       Date:  2021-04-09       Impact factor: 9.261

Review 7.  Elucidating the Functions of Non-Coding RNAs from the Perspective of RNA Modifications.

Authors:  Venkata Naga Srikanth Garikipati; Shizuka Uchida
Journal:  Noncoding RNA       Date:  2021-05-11

Review 8.  Angiogenesis-related non-coding RNAs and gastrointestinal cancer.

Authors:  Zahra Sadat Razavi; Kasra Asgarpour; Maryam Mahjoubin-Tehran; Susan Rasouli; Haroon Khan; Mohammad Karim Shahrzad; Michael R Hamblin; Hamed Mirzaei
Journal:  Mol Ther Oncolytics       Date:  2021-05-15       Impact factor: 7.200

Review 9.  The Role of N6 -Methyladenosine Modified Circular RNA in Pathophysiological Processes.

Authors:  Mei Tang; Yonggang Lv
Journal:  Int J Biol Sci       Date:  2021-06-01       Impact factor: 6.580

10.  HNRNPL Circularizes ARHGAP35 to Produce an Oncogenic Protein.

Authors:  Yan Li; Bing Chen; Jingjing Zhao; Qin Li; Siyuan Chen; Tianan Guo; Yuchen Li; Hongyan Lai; Zhiao Chen; Zhiqiang Meng; Weijie Guo; Xianghuo He; Shenglin Huang
Journal:  Adv Sci (Weinh)       Date:  2021-05-01       Impact factor: 16.806

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.