1l6b

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Revision as of 03:25, 25 November 2007 by OCA (talk | contribs) (New page: left|200px<br /><applet load="1l6b" size="450" color="white" frame="true" align="right" spinBox="true" caption="1l6b, resolution 1.5Å" /> '''CRYSTAL STRUCTURE ANA...)
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File:1l6b.gif


1l6b, resolution 1.5Å

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CRYSTAL STRUCTURE ANALYSIS OF THE ALL DNA HOLLIDAY JUNCTION STRUCTURE OF CCGGTACM5CGG

OverviewOverview

The single crystal structure of the methylated sequence d(CCGGTACm(5)CGG), has been solved as an antiparallel stacked X Holliday junction to 1.5 A, resolution. When compared with the parent nonmethylated d(CCGGTACCGG), structure, the duplexes are translated by 3.4 A along the helix axis and, rotated by 10.8 degrees relative to each other, rendering the major, grooves more accessible overall. A Ca(2+) complex is seen in the minor, groove opposite the junction but is related to the B conformation of the, stacked arms. At the junction itself, the hydrogen bond from the N4, nitrogen of cytosine C8 to the C7 phosphate at the crossover in the parent, structure has been replaced by a water bridge. Thus, this direct, interaction is not absolutely required to stabilize the junction at the, previously defined ACC trinucleotide core. The more compact methylated, junction forces the Na(+) of the protected central cavity of the, nonmethylated junction into a solvent cluster that spans the space between, the junction crossover and the stacked arms. A series of void volumes, within the methylated and the nonmethylated structures suggests that small, monovalent cations can fill and vacate this central cavity without the, need to unfold the four-stranded Holliday junction completely.

About this StructureAbout this Structure

1L6B is a Protein complex structure of sequences from [1] with CA as ligand. Full crystallographic information is available from OCA.

ReferenceReference

The effect of cytosine methylation on the structure and geometry of the Holliday junction: the structure of d(CCGGTACm5CGG) at 1.5 A resolution., Vargason JM, Ho PS, J Biol Chem. 2002 Jun 7;277(23):21041-9. Epub 2002 Mar 27. PMID:11919197

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