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Biotin-based Pulldown Assay to Validate mRNA Targets of Cellular miRNAs
Published on: June 12, 2018
microRNA-mediated messenger RNA deadenylation contributes to translational repression in mammalian cells
Traude H Beilharz1, David T Humphreys, Jennifer L Clancy
1Molecular Genetics Division, Victor Chang Cardiac Research Institute, Sydney, New South Wales, Australia.
Abstract:
Animal microRNAs (miRNAs) typically regulate gene expression by binding to partially complementary target sites in the 3' untranslated region (UTR) of messenger RNA (mRNA) reducing its translation and stability. They also commonly induce shortening of the mRNA 3' poly(A) tail, which contributes to their mRNA decay promoting function. The relationship between miRNA-mediated deadenylation and translational repression has been less clear. Using transfection of reporter constructs carrying three imperfectly matching let-7 target sites in the 3' UTR into mammalian cells we observe rapid target mRNA deadenylation that precedes measureable translational repression by endogenous let-7 miRNA. Depleting cells of the argonaute co-factors RCK or TNRC6A can impair let-7-mediated repression despite ongoing mRNA deadenylation, indicating that deadenylation alone is not sufficient to effect full repression. Nevertheless, the magnitude of translational repression by let-7 is diminished when the target reporter lacks a poly(A) tail. Employing an antisense strategy to block deadenylation of target mRNA with poly(A) tail also partially impairs translational repression. On the one hand, these experiments confirm that tail removal by deadenylation is not strictly required for translational repression. On the other hand they show directly that deadenylation can augment miRNA-mediated translational repression in mammalian cells beyond stimulating mRNA decay. Taken together with published work, these results suggest a dual role of deadenylation in miRNA function: it contributes to translational repression as well as mRNA decay and is thus critically involved in establishing the quantitatively appropriate physiological response to miRNAs.
Insights
MicroRNAs (miRNAs) regulate gene expression by targeting mRNA. This study shows that mRNA deadenylation, a process shortening the poly(A) tail, contributes to both miRNA-mediated translational repression and mRNA decay.
Area of Science:
- Molecular Biology
- Gene Regulation
- RNA Biology
Background:
- Animal microRNAs (miRNAs) regulate gene expression post-transcriptionally.
- miRNAs typically bind to the 3' untranslated region (UTR) of target messenger RNAs (mRNAs).
- miRNA action commonly involves mRNA deadenylation, shortening the poly(A) tail, which promotes mRNA decay, but its role in translational repression is less understood.
Purpose of the Study:
- To investigate the relationship between miRNA-mediated deadenylation and translational repression.
- To determine if deadenylation is required for or contributes to miRNA-mediated translational repression.
Main Methods:
- Transfection of reporter constructs with let-7 miRNA target sites in the 3' UTR into mammalian cells.
- Observation of target mRNA deadenylation and translational repression.
- Depletion of argonaute co-factors (RCK, TNRC6A) to assess their role in repression.
- Antisense strategy to block target mRNA deadenylation.
Main Results:
- Rapid target mRNA deadenylation precedes measurable translational repression by let-7 miRNA.
- Depletion of RCK or TNRC6A impairs let-7-mediated repression despite ongoing deadenylation.
- Loss of the poly(A) tail diminishes the magnitude of let-7-mediated translational repression.
- Blocking deadenylation partially impairs translational repression.
Conclusions:
- Deadenylation is not strictly required for miRNA-mediated translational repression.
- Deadenylation augments miRNA-mediated translational repression beyond stimulating mRNA decay.
- Deadenylation plays a dual role in miRNA function, contributing to both translational repression and mRNA decay.
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