Journal:JBSD:19

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[[Image:Fig3.png|left|400px|thumb|]]
[[Image:Fig3.png|left|400px|thumb|]]
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Close view of active site is shown in Figure 5. Detailed analysis shows that active site includes five participants: catalytic triad Glu41-Lys110-Cys146, water molecule W272, and additional residue Glu119 as shown in Figure 6.
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<scene name='Journal:JBSD:19/Cv/11'>General view of the active site</scene> with the catalytic triad. <scene name='Journal:JBSD:19/Cv/10'>Detailed analysis</scene> shows that active site includes five participants: catalytic triad Glu41-Lys110-Cys146, water molecule W272, and additional residue Glu119.
In spite of growing interest about the details of the enzymatic mechanism of the members of Branch 10, at present little is known about the specificity of possible substrates or inhibitors. This is a very challenging biochemical problem that is still far from being resolved. At the moment, we can cite one important related reference <ref name="Barglow">PMID:19053248</ref>. In this paper, two murine nitrilases, including Nit1 and Nit2, were identified as targets for a dipeptide-chloroacetamide activity-based probe. The gel analysis of binding of Nit with these probes shows definite selectivity of labeling inside the Nit subfamily. Experimental data of positive labeling are as follows:
In spite of growing interest about the details of the enzymatic mechanism of the members of Branch 10, at present little is known about the specificity of possible substrates or inhibitors. This is a very challenging biochemical problem that is still far from being resolved. At the moment, we can cite one important related reference <ref name="Barglow">PMID:19053248</ref>. In this paper, two murine nitrilases, including Nit1 and Nit2, were identified as targets for a dipeptide-chloroacetamide activity-based probe. The gel analysis of binding of Nit with these probes shows definite selectivity of labeling inside the Nit subfamily. Experimental data of positive labeling are as follows:

Revision as of 11:06, 5 September 2012

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  1. REF
  2. 2.0 2.1 2.2 Pace HC, Brenner C. The nitrilase superfamily: classification, structure and function. Genome Biol. 2001;2(1):REVIEWS0001. Epub 2001 Jan 15. PMID:11380987
  3. Brenner C. Catalysis in the nitrilase superfamily. Curr Opin Struct Biol. 2002 Dec;12(6):775-82. PMID:12504683
  4. Kumaran D, Eswaramoorthy S, Gerchman SE, Kycia H, Studier FW, Swaminathan S. Crystal structure of a putative CN hydrolase from yeast. Proteins. 2003 Aug 1;52(2):283-91. PMID:12833551 doi:http://dx.doi.org/10.1002/prot.10417
  5. Barglow KT, Saikatendu KS, Bracey MH, Huey R, Morris GM, Olson AJ, Stevens RC, Cravatt BF. Functional Proteomic and Structural Insights into Molecular Recognition in the Nitrilase Family Enzymes (dagger) (double dagger). Biochemistry. 2008 Nov 24. PMID:19053248 doi:10.1021/bi801786y

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