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Structural basis for sequence-independent substrate selection by eukaryotic wobble base tRNA deaminase ADAT2/3
Luciano G Dolce1, Aubree A Zimmer2, Laura Tengo1
1EMBL Grenoble, 71 Avenue des Martyrs, 38042, Grenoble, France.
Nature Communications
|November 8, 2022
Summary
Eukaryotic deaminases modify tRNA adenosine (A34) to inosine, impacting mRNA decoding. Researchers used cryo-EM to reveal how these enzymes recognize tRNA, uncovering a novel mechanism distinct from bacterial counterparts.
Area of Science:
- Molecular Biology
- RNA Biology
- Structural Biology
Background:
- Adenosine to inosine (A-to-I) editing at tRNA wobble positions is crucial for accurate mRNA decoding.
- Eukaryotic deaminases responsible for this modification, particularly ADAT2/3, have unclear substrate recognition mechanisms.
- This modification significantly impacts the translation of genetic information.
Purpose of the Study:
- To elucidate the structural basis of eukaryotic ADAT2/3 deaminase substrate recognition.
- To understand the mechanism of tRNA binding and editing by eukaryotic deaminases.
- To provide insights into the evolution of RNA editing and its role in shaping the genetic code.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to determine the structure of ADAT2/3 bound to tRNA.
- Biochemical assays to investigate enzyme-substrate interactions.
- Structural analysis to identify key recognition motifs and mechanisms.
Main Results:
- The cryo-EM structure reveals ADAT2/3 distorts the tRNA anticodon loop.
- Substrate selection relies on sequence-independent contacts via flexible motifs, differing from bacterial enzymes.
- A gating mechanism controlling substrate entry to the active site was identified.
Conclusions:
- Eukaryotic tRNA editing by ADAT2/3 involves a unique recognition strategy.
- This mechanism, utilizing distal flexible regions, explains how a single tRNA can decode multiple codons.
- The findings illuminate the evolution of the genetic code and impact the eukaryotic proteome.
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