1i1p: Difference between revisions

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New page: left|200px<br /><applet load="1i1p" size="450" color="white" frame="true" align="right" spinBox="true" caption="1i1p, resolution 1.63Å" /> '''REFINEMENT INCLUDING...
 
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[[Image:1i1p.gif|left|200px]]<br /><applet load="1i1p" size="450" color="white" frame="true" align="right" spinBox="true"  
[[Image:1i1p.gif|left|200px]]<br /><applet load="1i1p" size="350" color="white" frame="true" align="right" spinBox="true"  
caption="1i1p, resolution 1.63&Aring;" />
caption="1i1p, resolution 1.63&Aring;" />
'''REFINEMENT INCLUDING EXPERIMENTAL MAD PHASES ALLOWS AN EXHAUSTIVE STUDY OF ORDERED SOLVENT MOLECULES FOR A PLATINATED DECANUCLEOTIDE'''<br />
'''REFINEMENT INCLUDING EXPERIMENTAL MAD PHASES ALLOWS AN EXHAUSTIVE STUDY OF ORDERED SOLVENT MOLECULES FOR A PLATINATED DECANUCLEOTIDE'''<br />


==Overview==
==Overview==
Accurate experimental phases derived from a MAD experiment may be useful, to enable the identification of solvent molecules during the course of an, atomic parameter refinement. The structure of a double-stranded DNA, decanucleotide bearing a cisplatin interstrand cross-link at 1.6A, resolution, whose phases were first determined experimentally using the, L(III) edge of the Pt atom, was refined by various methods. The previously, published structure resulted from a least-squares refinement using the, structure-factor magnitudes and stereochemical restraints (program SHELX)., In this paper, these previous results are compared with a model obtained, by the likelihood-maximization method (program REFMAC) which allows the, combination of the observed magnitudes with experimental MAD phases. This, solution corresponded to a lower R(free) (18.8 compared with 20.3%), a, lower R factor and accounted for 135 water molecules and one spermine, molecule collected by the program wARP during refinement. The previously, published SHELX solution exhibited no spermine molecule and accounted for, 92 water molecules, only 74 of which are also present in the model, obtained with the MAD phases. In order to verify that these improvements, were actually related to the use of the MAD phases, the same type of, procedure without the MAD phases was applied starting from the initial, model. The resulting solution had a higher R(free) (20.3%), which could be, related to the loss of 22 water molecules and the addition of 20 new ones., MAD phases therefore seem especially helpful in preventing the model bias, which may affect the solvent molecules. All models have in common a, hydration cage of nine water molecules which surround the platinum, residue. In addition to the spermine molecule, the model obtained with the, MAD phases allows description of the water-molecule organization, with, reproducible motifs related to the base pairs and to the phosphodiester, backbone.
Accurate experimental phases derived from a MAD experiment may be useful to enable the identification of solvent molecules during the course of an atomic parameter refinement. The structure of a double-stranded DNA decanucleotide bearing a cisplatin interstrand cross-link at 1.6A resolution, whose phases were first determined experimentally using the L(III) edge of the Pt atom, was refined by various methods. The previously published structure resulted from a least-squares refinement using the structure-factor magnitudes and stereochemical restraints (program SHELX). In this paper, these previous results are compared with a model obtained by the likelihood-maximization method (program REFMAC) which allows the combination of the observed magnitudes with experimental MAD phases. This solution corresponded to a lower R(free) (18.8 compared with 20.3%), a lower R factor and accounted for 135 water molecules and one spermine molecule collected by the program wARP during refinement. The previously published SHELX solution exhibited no spermine molecule and accounted for 92 water molecules, only 74 of which are also present in the model obtained with the MAD phases. In order to verify that these improvements were actually related to the use of the MAD phases, the same type of procedure without the MAD phases was applied starting from the initial model. The resulting solution had a higher R(free) (20.3%), which could be related to the loss of 22 water molecules and the addition of 20 new ones. MAD phases therefore seem especially helpful in preventing the model bias which may affect the solvent molecules. All models have in common a hydration cage of nine water molecules which surround the platinum residue. In addition to the spermine molecule, the model obtained with the MAD phases allows description of the water-molecule organization, with reproducible motifs related to the base pairs and to the phosphodiester backbone.


==About this Structure==
==About this Structure==
1I1P is a [http://en.wikipedia.org/wiki/Protein_complex Protein complex] structure of sequences from [http://en.wikipedia.org/wiki/ ] with CPT and SPM as [http://en.wikipedia.org/wiki/ligands ligands]. Full crystallographic information is available from [http://ispc.weizmann.ac.il/oca-bin/ocashort?id=1I1P OCA].  
1I1P is a [http://en.wikipedia.org/wiki/Protein_complex Protein complex] structure of sequences from [http://en.wikipedia.org/wiki/ ] with <scene name='pdbligand=CPT:'>CPT</scene> and <scene name='pdbligand=SPM:'>SPM</scene> as [http://en.wikipedia.org/wiki/ligands ligands]. Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=1I1P OCA].  


==Reference==
==Reference==
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[[Category: spermine]]
[[Category: spermine]]


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