Sandbox Wabash09
From Proteopedia
(Difference between revisions)
Line 2: | Line 2: | ||
==The Mechanism of Trypsin== | ==The Mechanism of Trypsin== | ||
<StructureSection load='2agg' size='340' side='right' caption='Intermediate of Trypsin catalyzed hydrolysis' scene=''> | <StructureSection load='2agg' size='340' side='right' caption='Intermediate of Trypsin catalyzed hydrolysis' scene=''> | ||
- | Trypsin is a serine protease that works enzymatically by using a mixture of base, acid, and covalent catalysis. The protein uses serine in its active site to interact covalently with the substrate. To create a nucleophilic attack, the histidine 57 group (<scene name='72/725331/His_57_residue/2'>Important Histidine Residue</scene>) activates the serine 195 group via base catalysis and covalent catalysis follows. | + | Trypsin is a serine protease that works enzymatically by using a mixture of base, acid, and covalent catalysis. The protein uses serine in its active site to interact covalently with the substrate. To create a nucleophilic attack, the histidine 57 group (<scene name='72/725331/His_57_residue/2'>Important Histidine Residue</scene>) activates the serine 195 group via base catalysis and covalent catalysis follows. To complete the formation of a nucleophile, aspartic acid 102 pulls positive charge from histidine 57, completing the <scene name='Sandbox_45/Ctriadd102h57s195/4'>catalytic triad</scene> and forming an effective nucleophile. This forms a tetrahedral intermediate, in which the anionic carbonyl oxygen moves into the active site to a location known as the oxyanion hole <ref>Fundamentals of Biochemistry 3rd Ed.</ref>. The tetrahedral intermediate is followed by acid catalysis from the -NH2 of the of the c-terminus, resulting in a broken peptide bond in the substrate.The transition state from the tetrahedral intermediate is stabilized by Asp 189 interacting with Gly 219 to create a stable <scene name='Sandbox_45/Specificitypocketasp189gly216/2'>specificity pocket</scene>. The acyl-enzyme intermediate is present, and hydrolysis occurs which ultimately releases the c-terminal chain of the substrate and forms a new bond between water and the carbonyl carbon of the enzyme-substrate complex. The covalent C-O bond of the substrate-enzyme complex is broken, and the enzyme is reformed as the product is released <ref>PMID:16636277</ref> |
Revision as of 01:42, 25 February 2016
Composed By:Cameron Brown, David Elkins
The Mechanism of Trypsin
|
- ↑ Fundamentals of Biochemistry 3rd Ed.
- ↑ Radisky ES, Lee JM, Lu CJ, Koshland DE Jr. Insights into the serine protease mechanism from atomic resolution structures of trypsin reaction intermediates. Proc Natl Acad Sci U S A. 2006 May 2;103(18):6835-40. Epub 2006 Apr 24. PMID:16636277
David Elkins Cameron Brown