Literature DB >> 25049417

PAPD5-mediated 3' adenylation and subsequent degradation of miR-21 is disrupted in proliferative disease.

Joost Boele1, Helena Persson2, Jay W Shin3, Yuri Ishizu3, Inga S Newie4, Rolf Søkilde4, Shannon M Hawkins5, Cristian Coarfa6, Kazuhiro Ikeda7, Ken-ichi Takayama8, Kuniko Horie-Inoue7, Yoshinari Ando9, A Maxwell Burroughs10, Chihiro Sasaki11, Chizuru Suzuki11, Mizuho Sakai3, Shintaro Aoki3, Ayumi Ogawa11, Akira Hasegawa3, Marina Lizio3, Kaoru Kaida3, Bas Teusink12, Piero Carninci3, Harukazu Suzuki3, Satoshi Inoue13, Preethi H Gunaratne14, Carlos Rovira4, Yoshihide Hayashizaki15, Michiel J L de Hoon16.   

Abstract

Next-generation sequencing experiments have shown that microRNAs (miRNAs) are expressed in many different isoforms (isomiRs), whose biological relevance is often unclear. We found that mature miR-21, the most widely researched miRNA because of its importance in human disease, is produced in two prevalent isomiR forms that differ by 1 nt at their 3' end, and moreover that the 3' end of miR-21 is posttranscriptionally adenylated by the noncanonical poly(A) polymerase PAPD5. PAPD5 knockdown caused an increase in the miR-21 expression level, suggesting that PAPD5-mediated adenylation of miR-21 leads to its degradation. Exoribonuclease knockdown experiments followed by small-RNA sequencing suggested that PARN degrades miR-21 in the 3'-to-5' direction. In accordance with this model, microarray expression profiling demonstrated that PAPD5 knockdown results in a down-regulation of miR-21 target mRNAs. We found that disruption of the miR-21 adenylation and degradation pathway is a general feature in tumors across a wide range of tissues, as evidenced by data from The Cancer Genome Atlas, as well as in the noncancerous proliferative disease psoriasis. We conclude that PAPD5 and PARN mediate degradation of oncogenic miRNA miR-21 through a tailing and trimming process, and that this pathway is disrupted in cancer and other proliferative diseases.

Entities:  

Keywords:  microRNA processing; nucleotidyl transferase

Mesh:

Substances:

Year:  2014        PMID: 25049417      PMCID: PMC4128123          DOI: 10.1073/pnas.1317751111

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  58 in total

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