Summary information and primary citation
- PDB-id
-
1d9d;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- transferase-DNA, RNA
- Method
- X-ray (2.18 Å)
- Summary
- Crystall structure of the complex of DNA polymerase i
klenow fragment with short DNA fragment carrying
2'-0-aminopropyl-RNA modifications
5'-d(tcg)-ap(auc)-3'
- Reference
-
Teplova M, Wallace ST, Tereshko V, Minasov G, Symons AM,
Cook PD, Manoharan M, Egli M (1999): "Structural
origins of the exonuclease resistance of a zwitterionic
RNA." Proc.Natl.Acad.Sci.USA,
96, 14240-14245. doi: 10.1073/pnas.96.25.14240.
- Abstract
- Nuclease resistance and RNA affinity are key criteria
in the search for optimal antisense nucleic acid
modifications, but the origins of the various levels of
resistance to nuclease degradation conferred by chemical
modification of DNA and RNA are currently not understood.
The 2'-O-aminopropyl (AP)-RNA modification displays the
highest nuclease resistance among all phosphodiester-based
analogues and its RNA binding affinity surpasses that of
phosphorothioate DNA by 1 degrees C per modified residue.
We found that oligodeoxynucleotides containing AP-RNA
residues at their 3' ends competitively inhibit the
degradation of single-stranded DNA by the Escherichia coli
Klenow fragment (KF) 3'-5' exonuclease and snake venom
phosphodiesterase. To shed light on the origins of nuclease
resistance brought about by the AP modification, we
determined the crystal structure of an A-form DNA duplex
with AP-RNA modifications at 1.6-A resolution. In addition,
the crystal structures of complexes between short DNA
fragments carrying AP-RNA modifications and wild-type KF
were determined at resolutions between 2.2 and 3.0 A and
compared with the structure of the complex between
oligo(dT) and the D355A/E357A KF mutant. The structural
models suggest that interference of the positively charged
2'-O-substituent with the metal ion binding site B of the
exonuclease allows AP-RNA to effectively slow down
degradation.