Summary information and primary citation
- PDB-id
-
1asy;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- complex (aminoacyl-trna synthase-trna)
- Method
- X-ray (2.9 Å)
- Summary
- Class ii aminoacyl transfer RNA synthetases: crystal
structure of yeast aspartyl-trna synthetase complexed with
trna asp
- Reference
-
Ruff M, Krishnaswamy S, Boeglin M, Poterszman A,
Mitschler A, Podjarny A, Rees B, Thierry JC, Moras D
(1991): "Class II
aminoacyl transfer RNA synthetases: crystal structure of
yeast aspartyl-tRNA synthetase complexed with
tRNA(Asp)." Science, 252,
1682-1689.
- Abstract
- The crystal structure of the binary complex
tRNA(Asp)-aspartyl tRNA synthetase from yeast was solved
with the use of multiple isomorphous replacement to 3
angstrom resolution. The dimeric synthetase, a member of
class II aminoacyl tRNA synthetases (aaRS's) exhibits the
characteristic signature motifs conserved in eight aaRS's.
These three sequence motifs are contained in the catalytic
site domain, built around an antiparallel beta sheet, and
flanked by three alpha helices that form the pocket in
which adenosine triphosphate (ATP) and the CCA end of tRNA
bind. The tRNA(Asp) molecule approaches the synthetase from
the variable loop side. The two major contact areas are
with the acceptor end and the anticodon stem and loop. In
both sites the protein interacts with the tRNA from the
major groove side. The correlation between aaRS class II
and the initial site of aminoacylation at 3'-OH can be
explained by the structure. The molecular association leads
to the following features: (i) the backbone of the GCCA
single-stranded portion of the acceptor end exhibits a
regular helical conformation; (ii) the loop between
residues 320 and 342 in motif 2 interacts with the acceptor
stem in the major groove and is in contact with the
discriminator base G and the first base pair UA; and (iii)
the anticodon loop undergoes a large conformational change
in order to bind the protein. The conformation of the tRNA
molecule in the complex is dictated more by the interaction
with the protein than by its own sequence.