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New page: left|200px<br /> <applet load="1vre" size="450" color="white" frame="true" align="right" spinBox="true" caption="1vre" /> '''SOLUTION STRUCTURE OF COMPONENT IV GLYCERA ...
 
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[[Image:1vre.gif|left|200px]]<br />
[[Image:1vre.gif|left|200px]]<br /><applet load="1vre" size="350" color="white" frame="true" align="right" spinBox="true"  
<applet load="1vre" size="450" color="white" frame="true" align="right" spinBox="true"  
caption="1vre" />
caption="1vre" />
'''SOLUTION STRUCTURE OF COMPONENT IV GLYCERA DIBRANCHIATA MONOMERIC HEMOGLOBIN-CO'''<br />
'''SOLUTION STRUCTURE OF COMPONENT IV GLYCERA DIBRANCHIATA MONOMERIC HEMOGLOBIN-CO'''<br />


==Overview==
==Overview==
The solution structure and backbone dynamics of the recombinant, ferrous, CO-ligated form of component IV monomeric hemoglobin from Glycera, dibranchiata (GMH4CO) have been characterized by NMR spectroscopy., Distance geometry and simulated annealing calculations utilizing a total, of 2550 distance and torsion angle constraints yielded an ensemble of 29, structures with an overall average backbone rmsd of 0.48 A from the, average structure. Differences between the solution structure and a, related crystal structure are confined to regions of lower precision in, either the NMR or X-ray structure, or in regions where the amino acid, sequences differ. 15N relaxation measurements at 76.0 and 60.8 MHz were, analyzed with an extended model-free approach, and revealed low-frequency, motions in the vicinity of the heme, concentrated in the F helix. Amide, proton protection factors were obtained from H-D amide exchange, measurements on 15N-labeled protein. Patterns in the backbone dynamics and, protection factors were shown to correlate with regions of heterogeneity, and disorder in the ensemble of NMR structures and with large, crystallographic B-factors in the X-ray structures. Surprisingly, while, the backbone atoms of the F helix have higher rmsds and larger measures of, dynamics on the microsecond to millisecond time scale than the other, helices, amide protection factors for residues in the F helix were, observed to be similar to those of the other helices. This contrasts with, H-D amide exchange measurements on sperm whale myoglobin which indicated, low protection for the F helix (S. N. Loh and B. F. Volkman, unpublished, results). These results for GMH4 suggest a model in which the F helix, undergoes collective motions as a relatively rigid hydrogen-bonded unit, possibly pivoting about a central position near residue Val87.
The solution structure and backbone dynamics of the recombinant, ferrous CO-ligated form of component IV monomeric hemoglobin from Glycera dibranchiata (GMH4CO) have been characterized by NMR spectroscopy. Distance geometry and simulated annealing calculations utilizing a total of 2550 distance and torsion angle constraints yielded an ensemble of 29 structures with an overall average backbone rmsd of 0.48 A from the average structure. Differences between the solution structure and a related crystal structure are confined to regions of lower precision in either the NMR or X-ray structure, or in regions where the amino acid sequences differ. 15N relaxation measurements at 76.0 and 60.8 MHz were analyzed with an extended model-free approach, and revealed low-frequency motions in the vicinity of the heme, concentrated in the F helix. Amide proton protection factors were obtained from H-D amide exchange measurements on 15N-labeled protein. Patterns in the backbone dynamics and protection factors were shown to correlate with regions of heterogeneity and disorder in the ensemble of NMR structures and with large crystallographic B-factors in the X-ray structures. Surprisingly, while the backbone atoms of the F helix have higher rmsds and larger measures of dynamics on the microsecond to millisecond time scale than the other helices, amide protection factors for residues in the F helix were observed to be similar to those of the other helices. This contrasts with H-D amide exchange measurements on sperm whale myoglobin which indicated low protection for the F helix (S. N. Loh and B. F. Volkman, unpublished results). These results for GMH4 suggest a model in which the F helix undergoes collective motions as a relatively rigid hydrogen-bonded unit, possibly pivoting about a central position near residue Val87.


==About this Structure==
==About this Structure==
1VRE is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Glycera_dibranchiata Glycera dibranchiata] with HEM and CMO as [http://en.wikipedia.org/wiki/ligands ligands]. Full crystallographic information is available from [http://ispc.weizmann.ac.il/oca-bin/ocashort?id=1VRE OCA].  
1VRE is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Glycera_dibranchiata Glycera dibranchiata] with <scene name='pdbligand=HEM:'>HEM</scene> and <scene name='pdbligand=CMO:'>CMO</scene> as [http://en.wikipedia.org/wiki/ligands ligands]. Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=1VRE OCA].  


==Reference==
==Reference==
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[[Category: Glycera dibranchiata]]
[[Category: Glycera dibranchiata]]
[[Category: Single protein]]
[[Category: Single protein]]
[[Category: Alam, S.L.]]
[[Category: Alam, S L.]]
[[Category: Markley, J.L.]]
[[Category: Markley, J L.]]
[[Category: Satterlee, J.D.]]
[[Category: Satterlee, J D.]]
[[Category: Volkman, B.F.]]
[[Category: Volkman, B F.]]
[[Category: CMO]]
[[Category: CMO]]
[[Category: HEM]]
[[Category: HEM]]
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[[Category: oxygen transport]]
[[Category: oxygen transport]]


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