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Mechanism of Dis3l2 substrate recognition in the Lin28-let-7 pathway
Christopher R Faehnle1,2, Jack Walleshauser1,3,2, Leemor Joshua-Tor1,3,4,2
1W. M. Keck Structural Biology Laboratory 1 Bungtown Road, Cold Spring Harbor, NY 11724, USA.
Abstract:
The pluripotency factor Lin28 inhibits the biogenesis of the let-7 family of mammalian microRNAs. Lin28 is highly expressed in embryonic stem cells and has a fundamental role in regulation of development, glucose metabolism and tissue regeneration. Overexpression of Lin28 is correlated with the onset of numerous cancers, whereas let-7, a tumour suppressor, silences several human oncogenes. Lin28 binds to precursor let-7 (pre-let-7) hairpins, triggering the 3' oligo-uridylation activity of TUT4 and TUT7 (refs 10-12). The oligoU tail added to pre-let-7 serves as a decay signal, as it is rapidly degraded by Dis3l2 (refs 13, 14), a homologue of the catalytic subunit of the RNA exosome. The molecular basis of Lin28-mediated recruitment of TUT4 and TUT7 to pre-let-7 and its subsequent degradation by Dis3l2 is largely unknown. To examine the mechanism of Dis3l2 substrate recognition we determined the structure of mouse Dis3l2 in complex with an oligoU RNA to mimic the uridylated tail of pre-let-7. Three RNA-binding domains form an open funnel on one face of the catalytic domain that allows RNA to navigate a path to the active site different from that of its exosome counterpart. The resulting path reveals an extensive network of uracil-specific interactions spanning the first 12 nucleotides of an oligoU-tailed RNA. We identify three U-specificity zones that explain how Dis3l2 recognizes, binds and processes uridylated pre-let-7 in the final step of the Lin28-let-7 pathway.
Insights
The Lin28-let-7 pathway involves Dis3l2 degrading uridylated precursor let-7. Researchers elucidated Dis3l2
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Lin28 inhibits let-7 microRNA biogenesis, impacting development and cancer.
- Lin28 recruits TUT4/TUT7 to uridylate precursor let-7 (pre-let-7).
- Dis3l2, an RNA exosome homolog, degrades uridylated pre-let-7.
Purpose of the Study:
- To elucidate the molecular mechanism of Dis3l2 substrate recognition.
- To understand how Dis3l2 binds and degrades uridylated pre-let-7.
Main Methods:
- X-ray crystallography of mouse Dis3l2 complexed with oligoU RNA.
- Structural analysis of RNA-binding domains and catalytic site.
Main Results:
- Determined the structure of Dis3l2 bound to oligoU RNA.
- Identified an open funnel formed by three RNA-binding domains.
- Revealed extensive uracil-specific interactions for oligoU-tailed RNA recognition.
Conclusions:
- Dis3l2 utilizes a unique substrate entry path distinct from its exosome counterparts.
- Three uracil-specificity zones dictate Dis3l2's recognition and processing of uridylated pre-let-7.
- This clarifies the final step in the Lin28-let-7 regulatory pathway.
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