2c3t: Difference between revisions

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New page: left|200px<br /> <applet load="2c3t" size="450" color="white" frame="true" align="right" spinBox="true" caption="2c3t, resolution 2.40Å" /> '''HUMAN GLUTATHIONE-S...
 
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[[Image:2c3t.gif|left|200px]]<br />
[[Image:2c3t.gif|left|200px]]<br /><applet load="2c3t" size="350" color="white" frame="true" align="right" spinBox="true"  
<applet load="2c3t" size="450" color="white" frame="true" align="right" spinBox="true"  
caption="2c3t, resolution 2.40&Aring;" />
caption="2c3t, resolution 2.40&Aring;" />
'''HUMAN GLUTATHIONE-S-TRANSFERASE T1-1, W234R MUTANT, APO FORM'''<br />
'''HUMAN GLUTATHIONE-S-TRANSFERASE T1-1, W234R MUTANT, APO FORM'''<br />


==Overview==
==Overview==
The crystal structures of wild-type human theta class, glutathione-S-transferase (GST) T1-1 and its W234R mutant, where Trp234, was replaced by Arg, were solved both in the presence and absence of, S-hexyl-glutathione. The W234R mutant was of interest due to its, previously observed enhanced catalytic activity compared to the wild-type, enzyme. GST T1-1 from rat and mouse naturally contain Arg in position 234, with correspondingly high catalytic efficiency. The overall structure of, GST T1-1 is similar to that of GST T2-2, as expected from their 53%, sequence identity at the protein level. Wild-type GST T1-1 has the, side-chain of Trp234 occupying a significant portion of the active site., This bulky residue prevents efficient binding of both glutathione and, hydrophobic substrates through steric hindrance. The wild-type GST T1-1, crystal structure, obtained from co-crystallization experiments with, glutathione and its derivatives, showed no electron density for the, glutathione ligand. However, the structure of GST T1-1 mutant W234R showed, clear electron density for S-hexyl-glutathione after co-crystallization., In contrast to Trp234 in the wild-type structure, the side-chain of Arg234, in the mutant does not occupy any part of the substrate-binding site., Instead, Arg234 is pointing in a different direction and, in addition, interacts with the carboxylate group of glutathione. These findings, explain our earlier observation that the W234R mutant has a markedly, improved catalytic activity with most substrates tested to date compared, to the wild-type enzyme. GST T1-1 catalyzes detoxication reactions as well, as reactions that result in toxic products, and our findings therefore, suggest that humans have gained an evolutionary advantage by a partially, disabled active site.
The crystal structures of wild-type human theta class glutathione-S-transferase (GST) T1-1 and its W234R mutant, where Trp234 was replaced by Arg, were solved both in the presence and absence of S-hexyl-glutathione. The W234R mutant was of interest due to its previously observed enhanced catalytic activity compared to the wild-type enzyme. GST T1-1 from rat and mouse naturally contain Arg in position 234, with correspondingly high catalytic efficiency. The overall structure of GST T1-1 is similar to that of GST T2-2, as expected from their 53% sequence identity at the protein level. Wild-type GST T1-1 has the side-chain of Trp234 occupying a significant portion of the active site. This bulky residue prevents efficient binding of both glutathione and hydrophobic substrates through steric hindrance. The wild-type GST T1-1 crystal structure, obtained from co-crystallization experiments with glutathione and its derivatives, showed no electron density for the glutathione ligand. However, the structure of GST T1-1 mutant W234R showed clear electron density for S-hexyl-glutathione after co-crystallization. In contrast to Trp234 in the wild-type structure, the side-chain of Arg234 in the mutant does not occupy any part of the substrate-binding site. Instead, Arg234 is pointing in a different direction and, in addition, interacts with the carboxylate group of glutathione. These findings explain our earlier observation that the W234R mutant has a markedly improved catalytic activity with most substrates tested to date compared to the wild-type enzyme. GST T1-1 catalyzes detoxication reactions as well as reactions that result in toxic products, and our findings therefore suggest that humans have gained an evolutionary advantage by a partially disabled active site.


==About this Structure==
==About this Structure==
2C3T is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Homo_sapiens Homo sapiens]. Active as [http://en.wikipedia.org/wiki/Glutathione_transferase Glutathione transferase], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=2.5.1.18 2.5.1.18] Full crystallographic information is available from [http://ispc.weizmann.ac.il/oca-bin/ocashort?id=2C3T OCA].  
2C3T is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Homo_sapiens Homo sapiens]. Active as [http://en.wikipedia.org/wiki/Glutathione_transferase Glutathione transferase], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=2.5.1.18 2.5.1.18] Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=2C3T OCA].  


==Reference==
==Reference==
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[[Category: Homo sapiens]]
[[Category: Homo sapiens]]
[[Category: Single protein]]
[[Category: Single protein]]
[[Category: Kleywegt, G.J.]]
[[Category: Kleywegt, G J.]]
[[Category: Larsson, A.K.]]
[[Category: Larsson, A K.]]
[[Category: Mannervik, B.]]
[[Category: Mannervik, B.]]
[[Category: Olin, B.]]
[[Category: Olin, B.]]
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[[Category: transferase]]
[[Category: transferase]]


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