Journal:JBSD:6

From Proteopedia

(Difference between revisions)
Jump to: navigation, search
Line 4: Line 4:
<hr/>
<hr/>
<b>Molecular Tour</b><br>
<b>Molecular Tour</b><br>
-
Ureases are enzymes that break down urea to carbon dioxide and ammonia, and they are one of the very few enzymes that have nickel in their active sites. Genetic and biochemical studies have shown that most of these enzymes require accessory proteins for the correct assembly of the nickel in their metallocenters. Studies of Klebsiella aerogenes urease activation pathway revealed that three accessory proteins – UreD, UreF, UreG – are essential for the production of a functional urease. In this work we submitted structural models of such proteins to macromolecular docking calculations with K. aerogenes urease, which lead to a putative structure for the urease activation complex.
+
Ureases are enzymes that break down urea to carbon dioxide and ammonia, and they are one of the very few enzymes that have nickel in their active sites. Genetic and biochemical studies have shown that most of these enzymes require accessory proteins for the correct assembly of the nickel in their metallocenters. Studies of ''Klebsiella aerogenes'' urease activation pathway revealed that three accessory proteins – UreD, UreF, UreG – are essential for the production of a functional urease. In this work we submitted structural models of such proteins to macromolecular docking calculations with ''K. aerogenes'' urease, which lead to a putative structure for the urease activation complex.
The presented model for this complex is the first to include UreG and to use the current data on the activation pathway to guide the docking calculations. Despite the urease activation process being far more complex, our results are likely to expand the current knowledge on this essential step for proper ureolytic activity, aiding further high resolution studies of this macromolecular assembly by providing a 3D scaffold to work upon.
The presented model for this complex is the first to include UreG and to use the current data on the activation pathway to guide the docking calculations. Despite the urease activation process being far more complex, our results are likely to expand the current knowledge on this essential step for proper ureolytic activity, aiding further high resolution studies of this macromolecular assembly by providing a 3D scaffold to work upon.
</StructureSection>
</StructureSection>

Revision as of 07:02, 17 July 2012

Drag the structure with the mouse to rotate
  1. REF

Proteopedia Page Contributors and Editors (what is this?)

Alexander Berchansky, Jaime Prilusky

This page complements a publication in scientific journals and is one of the Proteopedia's Interactive 3D Complement pages. For aditional details please see I3DC.
Personal tools