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A magnesium ion in the active site orients the C1 carboxyl group of chorismate. A lysine residue then serves as a general base for the activation of a water molecule to attack at C2. The catalytic mechanism for conversion of isochorismate to salicylate by MbtI is a sigmatropic, pericyclic mechanism that is pH-dependent. Chromate mutase activity is only observed in the absence of magnesium ion in the active site while salicylate synthase activity is depended on magnesium ion. The active site of MbtI is altered by the removal of the magnesium cofactor causing chromate mutase activity. MbtI has differing binding modes for chromate that leads to different substrate conformations/transition states and resulting in different products.  
A magnesium ion in the active site orients the C1 carboxyl group of chorismate. A lysine residue then serves as a general base for the activation of a water molecule to attack at C2. The catalytic mechanism for conversion of isochorismate to salicylate by MbtI is a sigmatropic, pericyclic mechanism that is pH-dependent. Chromate mutase activity is only observed in the absence of magnesium ion in the active site while salicylate synthase activity is depended on magnesium ion. The active site of MbtI is altered by the removal of the magnesium cofactor causing chromate mutase activity. MbtI has differing binding modes for chromate that leads to different substrate conformations/transition states and resulting in different products.  


[[Image:CM2.png|480 px|center|thumb|Figure 3: Isochorismate synthase activity  <ref>PMID:22307014</ref>.]]
[[Image:CM2.png|450 px|center|thumb|Figure 3: Isochorismate synthase activity  <ref>PMID:22307014</ref>.]]


==Inhibition Studies==
==Inhibition Studies==

Revision as of 16:43, 25 April 2015

Mycobacterium tuberculosis salicylate synthase (Mbt1)

Structure of MbtI (3LOG)

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References


Student contributors

Stephanie Raynor Robin Gagnon

Similar Pages

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Related pdb files

3LOG