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New page: left|200px<br /> <applet load="2i3c" size="450" color="white" frame="true" align="right" spinBox="true" caption="2i3c, resolution 2.800Å" /> '''Crystal Structure ...
 
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[[Image:2i3c.gif|left|200px]]<br />
[[Image:2i3c.gif|left|200px]]<br /><applet load="2i3c" size="350" color="white" frame="true" align="right" spinBox="true"  
<applet load="2i3c" size="450" color="white" frame="true" align="right" spinBox="true"  
caption="2i3c, resolution 2.800&Aring;" />
caption="2i3c, resolution 2.800&Aring;" />
'''Crystal Structure of an Aspartoacylase from Homo Sapiens'''<br />
'''Crystal Structure of an Aspartoacylase from Homo Sapiens'''<br />


==Overview==
==Overview==
Aspartoacylase catalyzes hydrolysis of N-acetyl-l-aspartate to aspartate, and acetate in the vertebrate brain. Deficiency in this activity leads to, spongiform degeneration of the white matter of the brain and is the, established cause of Canavan disease, a fatal progressive leukodystrophy, affecting young children. We present crystal structures of recombinant, human and rat aspartoacylase refined to 2.8- and 1.8-A resolution, respectively. The structures revealed that the N-terminal domain of, aspartoacylase adopts a protein fold similar to that of zinc-dependent, hydrolases related to carboxypeptidases A. The catalytic site of, aspartoacylase shows close structural similarity to those of, carboxypeptidases despite only 10-13% sequence identity between these, proteins. About 100 C-terminal residues of aspartoacylase form a globular, domain with a two-stranded beta-sheet linker that wraps around the, N-terminal domain. The long channel leading to the active site is formed, by the interface of the N- and C-terminal domains. The C-terminal domain, is positioned in a way that prevents productive binding of polypeptides in, the active site. The structures revealed that residues 158-164 may undergo, a conformational change that results in opening and partial closing of the, channel entrance. We hypothesize that the catalytic mechanism of, aspartoacylase is closely analogous to that of carboxypeptidases. We, identify residues involved in zinc coordination, and propose which, residues may be involved in substrate binding and catalysis. The, structures also provide a structural framework necessary for understanding, the deleterious effects of many missense mutations of human, aspartoacylase.
Aspartoacylase catalyzes hydrolysis of N-acetyl-l-aspartate to aspartate and acetate in the vertebrate brain. Deficiency in this activity leads to spongiform degeneration of the white matter of the brain and is the established cause of Canavan disease, a fatal progressive leukodystrophy affecting young children. We present crystal structures of recombinant human and rat aspartoacylase refined to 2.8- and 1.8-A resolution, respectively. The structures revealed that the N-terminal domain of aspartoacylase adopts a protein fold similar to that of zinc-dependent hydrolases related to carboxypeptidases A. The catalytic site of aspartoacylase shows close structural similarity to those of carboxypeptidases despite only 10-13% sequence identity between these proteins. About 100 C-terminal residues of aspartoacylase form a globular domain with a two-stranded beta-sheet linker that wraps around the N-terminal domain. The long channel leading to the active site is formed by the interface of the N- and C-terminal domains. The C-terminal domain is positioned in a way that prevents productive binding of polypeptides in the active site. The structures revealed that residues 158-164 may undergo a conformational change that results in opening and partial closing of the channel entrance. We hypothesize that the catalytic mechanism of aspartoacylase is closely analogous to that of carboxypeptidases. We identify residues involved in zinc coordination, and propose which residues may be involved in substrate binding and catalysis. The structures also provide a structural framework necessary for understanding the deleterious effects of many missense mutations of human aspartoacylase.


==Disease==
==Disease==
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==About this Structure==
==About this Structure==
2I3C is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Homo_sapiens Homo sapiens] with ZN and PO4 as [http://en.wikipedia.org/wiki/ligands ligands]. Active as [http://en.wikipedia.org/wiki/Aspartoacylase Aspartoacylase], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=3.5.1.15 3.5.1.15] Full crystallographic information is available from [http://ispc.weizmann.ac.il/oca-bin/ocashort?id=2I3C OCA].  
2I3C is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Homo_sapiens Homo sapiens] with <scene name='pdbligand=ZN:'>ZN</scene> and <scene name='pdbligand=PO4:'>PO4</scene> as [http://en.wikipedia.org/wiki/ligands ligands]. Active as [http://en.wikipedia.org/wiki/Aspartoacylase Aspartoacylase], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=3.5.1.15 3.5.1.15] Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=2I3C OCA].  


==Reference==
==Reference==
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[[Category: Homo sapiens]]
[[Category: Homo sapiens]]
[[Category: Single protein]]
[[Category: Single protein]]
[[Category: Bingman, C.A.]]
[[Category: Bingman, C A.]]
[[Category: Bitto, E.]]
[[Category: Bitto, E.]]
[[Category: CESG, Center.for.Eukaryotic.Structural.Genomics.]]
[[Category: CESG, Center for Eukaryotic Structural Genomics.]]
[[Category: Jr., G.N.Phillips.]]
[[Category: Jr., G N.Phillips.]]
[[Category: Mccoy, J.G.]]
[[Category: Mccoy, J G.]]
[[Category: Wesenberg, G.E.]]
[[Category: Wesenberg, G E.]]
[[Category: PO4]]
[[Category: PO4]]
[[Category: ZN]]
[[Category: ZN]]
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[[Category: zinc-dependent hydrolase]]
[[Category: zinc-dependent hydrolase]]


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