New class of microRNA targets containing simultaneous 5'-UTR and 3'-UTR interaction sites
Inhan Lee1, Subramanian S Ajay, Jong In Yook
1Department of Psychiatry, University of Michigan, Ann Arbor, Michigan 48109, USA.
Abstract:
MicroRNAs (miRNAs) are known to post-transcriptionally regulate target mRNAs through the 3'-UTR, which interacts mainly with the 5'-end of miRNA in animals. Here we identify many endogenous motifs within human 5'-UTRs specific to the 3'-ends of miRNAs. The 3'-end of conserved miRNAs in particular has significant interaction sites in the human-enriched, less conserved 5'-UTR miRNA motifs, while human-specific miRNAs have significant interaction sites only in the conserved 5'-UTR motifs, implying both miRNA and 5'-UTR are actively evolving in response to each other. Additionally, many miRNAs with their 3'-end interaction sites in the 5'-UTRs turn out to simultaneously contain 5'-end interaction sites in the 3'-UTRs. Based on these findings we demonstrate combinatory interactions between a single miRNA and both end regions of an mRNA using model systems. We further show that genes exhibiting large-scale protein changes due to miRNA overexpression or deletion contain both UTR interaction sites predicted. We provide the predicted targets of this new miRNA target class, miBridge, as an efficient way to screen potential targets, especially for nonconserved miRNAs, since the target search space is reduced by an order of magnitude compared with the 3'-UTR alone. Efficacy is confirmed by showing SEC24D regulation with hsa-miR-605, a miRNA identified only in primate, opening the door to the study of nonconserved miRNAs. Finally, miRNAs (and associated proteins) involved in this new targeting class may prevent 40S ribosome scanning through the 5'-UTR and keep it from reaching the start-codon, preventing 60S association.
Insights
Researchers discovered a new microRNA (miRNA) targeting mechanism, miBridge, where miRNAs interact with both 5' and 3' untranslated regions (UTRs) of messenger RNA (mRNA). This finding expands our understanding of gene regulation and offers new ways to study nonconserved miRNAs.
Area of Science:
- Molecular Biology
- Genetics
- Bioinformatics
Background:
- MicroRNAs (miRNAs) primarily regulate messenger RNA (mRNA) post-transcriptionally via interactions with the 3'-untranslated region (UTR).
- These interactions typically involve the 5'-end of the miRNA binding to the 3'-UTR of the mRNA.
Purpose of the Study:
- To identify novel miRNA binding sites within human 5'-UTRs.
- To investigate the co-evolution of miRNAs and 5'-UTRs.
- To characterize a new class of miRNA-mRNA interactions, termed miBridge.
Main Methods:
- Bioinformatic analysis of endogenous motifs within human 5'-UTRs.
- Identification of miRNA interaction sites at both 5'- and 3'-UTRs.
- Experimental validation using model systems and miRNA overexpression/deletion studies.
Main Results:
- Discovery of numerous endogenous motifs in human 5'-UTRs that interact with the 3'-end of miRNAs.
- Evidence of co-evolution between miRNAs and 5'-UTRs, with conserved miRNAs targeting human-enriched 5'-UTR motifs and human-specific miRNAs targeting conserved 5'-UTR motifs.
- Identification of the miBridge class, where single miRNAs interact with both 5'- and 3'-UTRs of an mRNA, impacting gene expression significantly.
Conclusions:
- The miBridge interaction class represents a novel mechanism of gene regulation by miRNAs.
- This mechanism is particularly relevant for studying nonconserved miRNAs, reducing target prediction search space.
- miBridge interactions may involve preventing ribosome scanning of the 5'-UTR, thereby inhibiting translation initiation.
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