Summary information and primary citation
- PDB-id
-
1asz;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- complex (aminoacyl-trna synthase-trna)
- Method
- X-ray (3.0 Å)
- Summary
- The active site of yeast aspartyl-trna synthetase:
structural and functional aspects of the aminoacylation
reaction
- Reference
-
Cavarelli J, Eriani G, Rees B, Ruff M, Boeglin M,
Mitschler A, Martin F, Gangloff J, Thierry JC, Moras D
(1994): "The active
site of yeast aspartyl-tRNA synthetase: structural and
functional aspects of the aminoacylation reaction."
EMBO J., 13, 327-337.
- Abstract
- The crystal structures of the various complexes formed
by yeast aspartyl-tRNA synthetase (AspRS) and its
substrates provide snapshots of the active site
corresponding to different steps of the aminoacylation
reaction. Native crystals of the binary complex tRNA-AspRS
were soaked in solutions containing the two other
substrates, ATP (or its analog AMPPcP) and aspartic acid.
When all substrates are present in the crystal, this leads
to the formation of the aspartyl-adenylate and/or the
aspartyl-tRNA. A class II-specific pathway for the
aminoacylation reaction is proposed which explains the
known functional differences between the two classes while
preserving a common framework. Extended signature sequences
characteristic of class II aaRS (motifs 2 and 3) constitute
the basic functional unit. The ATP molecule adopts a bent
conformation, stabilized by the invariant Arg531 of motif 3
and a magnesium ion coordinated to the pyrophosphate group
and to two class-invariant acidic residues. The aspartic
acid substrate is positioned by a class II invariant acidic
residue, Asp342, interacting with the amino group and by
amino acids conserved in the aspartyl synthetase family.
The amino acids in contact with the substrates have been
probed by site-directed mutagenesis for their functional
implication.