Sandbox Reserved 390: Difference between revisions

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According to earlier experiments, the glycine at position 465 in this structure is proposed to lie very close to the cleavage site and it’s is therefore expected to be involved in ATP hydrolysis. So the change of residue 465 from glycine to a more negatively charged (aspartic acid) is determined to create some localized hydrogen bonding at the backbone that can potentially alter the conformation of the enzyme (this change is determined to alter the charge interactions involved in binding site).  
According to earlier experiments, the glycine at position 465 in this structure is proposed to lie very close to the cleavage site and it’s is therefore expected to be involved in ATP hydrolysis. So the change of residue 465 from glycine to a more negatively charged (aspartic acid) is determined to create some localized hydrogen bonding at the backbone that can potentially alter the conformation of the enzyme (this change is determined to alter the charge interactions involved in binding site).  


<scene name="Glycine.pngj">text to be added</scene>


<scene name="Glycine.pngj‎">glycine</scene> at position 465
<scene name="Glycine.pngj‎">glycine</scene> at position 465


<scene name="Aspatic.pngj">text to be added</scene>
<scene name="Aspatic.pngj‎">Aspactic acid</scene> at position 465
<scene name="Aspatic.pngj‎">Aspactic acid</scene> at position 465



Revision as of 02:33, 21 November 2012

Human topoisomerase IIbeta in complex with DNA and etoposide

Structure of the human topoisomeraseIIbcore-DNA cleavage complex stabilized by the anticancer drug etoposide. (PDB entry 3QX3)

Drag the structure with the mouse to rotate


References