Antisense transcription regulates the expression of sense gene via alternative polyadenylation

Ting Shen, Huan Li, Yifan Song, Jun Yao, Miao Han, Ming Yu, Gang Wei, Ting Ni

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Protein Cell ›› 2018, Vol. 9 ›› Issue (6) : 540-552. DOI: 10.1007/s13238-017-0497-0
RESEARCH ARTICLE
RESEARCH ARTICLE

Antisense transcription regulates the expression of sense gene via alternative polyadenylation

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Abstract

Natural antisense transcripts (NAT) and alternative polyadenylation (APA) of messenger RNA (mRNA) are important contributors of transcriptome complexity, each playing a critical role in multiple biological processes. However, whether they have crosstalk and function collaboratively is unclear. We discovered that APA enriched in human sense-antisense (S-AS) gene pairs, and finally focused on RNASEH2C-KAT5 S-AS pair for further study. In cis but not in trans over-expression of the antisense KAT5 gene promoted the usage of distal polyA (pA) site in sense gene RNASEH2C, which generated longer 3′ untranslated region (3′UTR) and produced less protein, accompanying with slowed cell growth. Mechanistically, elevated Pol II occupancy coupled with SRSF3 could explain the higher usage of distal pA site. Finally, NAT-mediated downregulation of sense gene’s protein level in RNASEH2C-KAT5 pair was specific for human rather than mouse, which lacks the distal pA site of RNASEH2C. We provided the first evidence to support that certain gene affected phenotype may not by the protein of its own, but by affecting the expression of its overlapped gene through APA, implying an unexpected view for understanding the link between genotype and phenotype.

Keywords

natural antisense transcripts / alternative polyadenyaltion / 3′UTR / RNASEH2C / KAT5

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Ting Shen, Huan Li, Yifan Song, Jun Yao, Miao Han, Ming Yu, Gang Wei, Ting Ni. Antisense transcription regulates the expression of sense gene via alternative polyadenylation. Protein Cell, 2018, 9(6): 540‒552 https://doi.org/10.1007/s13238-017-0497-0

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