Summary information and primary citation
- PDB-id
-
1akh;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- DNA binding protein-DNA
- Method
- X-ray (2.5 Å)
- Summary
- Mat a1-alpha2-DNA ternary complex
- Reference
-
Li T, Jin Y, Vershon AK, Wolberger C (1998): "Crystal
structure of the MATa1/MATalpha2 homeodomain heterodimer
in complex with DNA containing an A-tract."
Nucleic Acids Res., 26,
5707-5718. doi: 10.1093/nar/26.24.5707.
- Abstract
- The crystal structure of the heterodimer formed by the
DNA binding domains of the yeast mating type transcription
factors, MATa1 and MATalpha2, bound to a 21 bp DNA fragment
has been determined at 2.5 A resolution. The DNA fragment
in the present study differs at four central base pairs
from the DNA sequence used in the previously studied
ternary complex. These base pair changes give rise to a
(dA5).(dT5) tract without changing the overall base
composition of the DNA. The resulting A-tract occurs near
the center of the overall 60 degrees bend in the DNA.
Comparison of the two structures shows that the structural
details of the DNA bend are maintained despite the DNA
sequence changes. Analysis of the A5-tract DNA subfragment
shows that it contains a bend toward the minor groove
centered at one end of the A-tract. The observed bend is
larger than that observed in the crystal structures of
A-tracts embedded in uncomplexed DNA, which are straight
and have been presumed to be quite rigid. Variation of the
central DNA base sequence reverses the two AT base pairs
contacted in the minor groove by Arg7 of the alpha2
N-terminal arm without significantly altering the DNA
binding affinity of the a1/alpha2 heterodimer. The Arg7
side chain accommodates the sequence change by forming
alternate H bond interactions, in agreement with the
proposal that minor groove base pair recognition is
insensitive to base pair reversal. Furthermore, the minor
groove spine of hydration, which stabilizes the narrowed
minor groove caused by DNA bending, is conserved in both
structures. We also find that many of the water-mediated
hydrogen bonds between the a1 and alpha2 homeodomains and
the DNA are highly conserved, indicating an important role
for water in stabilization of the a1/alpha2-DNA
complex.