Molecular Mechanisms of RNA Interference

Ross C. Wilson, Jennifer A. Doudna

Annual Review of Biophysics · 2013 · 1.1K citations · 88 references

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Concepts

TL;DR

Small RNAs regulate eukaryotic gene expression during development and stress responses, with specialized ribonucleases and RNA‑binding proteins controlling their production and action, and structural studies of Dicer and Argonaute revealing key mechanistic insights. In the RNA‑interference pathway, Drosha processes pri‑miRNAs in the nucleus, Dicer cleaves pre‑miRNAs in the cytoplasm to produce mature miRNAs and siRNAs, which then load onto Argonaute proteins and use a guide strand to direct sequence‑specific mRNA cleavage or translational repression.

Abstract

Small RNA molecules regulate eukaryotic gene expression during development and in response to stresses including viral infection. Specialized ribonucleases and RNA-binding proteins govern the production and action of small regulatory RNAs. After initial processing in the nucleus by Drosha, precursor microRNAs (pre-miRNAs) are transported to the cytoplasm, where Dicer cleavage generates mature microRNAs (miRNAs) and short interfering RNAs (siRNAs). These double-stranded products assemble with Argonaute proteins such that one strand is preferentially selected and used to guide sequence-specific silencing of complementary target mRNAs by endonucleolytic cleavage or translational repression. Molecular structures of Dicer and Argonaute proteins, and of RNA-bound complexes, have offered exciting insights into the mechanisms operating at the heart of RNA-silencing pathways.

References

88