Sandbox Reserved 1058: Difference between revisions

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[[Image:Active_Site_Hydrogen_Bonding.png|250 px|left|thumb|'''Figure 3. Active site residues hydrogen bound to a cofactor and the products of the catalyzed isocitrate reaction.''' Glyoxylate is shown in blue, succinate is shown in green, and the Mg<sup>2+</sup> cofactor is shown in yellow.]]
[[Image:Active_Site_Hydrogen_Bonding.png|250 px|left|thumb|'''Figure 3. Active site residues hydrogen bound to a cofactor and the products of the catalyzed isocitrate reaction.''' Glyoxylate is shown in blue, succinate is shown in green, and the Mg<sup>2+</sup> cofactor is shown in yellow.]]


[[Image:Active Site Residues.png|250 px|left|thumb|'''Figure 4. Active Site Residues.''' All eight active site residues necessary for catalysis of isocitrate are shown in slate. However, the protein shown is a C191S mutant of isocitrate lyase.]]
[[Image:Active Site Residues.png|250 px|center|thumb|'''Figure 4. Active Site Residues.''' All eight active site residues necessary for catalysis of isocitrate are shown in slate. However, the protein shown is a C191S mutant of isocitrate lyase.]]


[[Image:Active Loop Shift.png|250 px|left|thumb|'''Figure 2. Active Site Loop Shift.''' Binding of the ligand to the enzyme results in a conformational shift that facilitates the breakdown of isocitrate. The active site loop unbound is shown in wheat and the active site loop bound is shown in green.]]
[[Image:Active Loop Shift.png|250 px|left|thumb|'''Figure 2. Active Site Loop Shift.''' Binding of the ligand to the enzyme results in a conformational shift that facilitates the breakdown of isocitrate. The active site loop unbound is shown in wheat and the active site loop bound is shown in green.]]
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==Mechanism of Action==
==Mechanism of Action==
[[Image:TCA_Cycle.png|500 px|center|thumb|'''Figure 5. Citric Acid Cycle with Glyoxylate Shunt Pathway.''' In several bacterial species, there is a carbon conserving gloxylate shunt pathway that converts isocitrate to malate in two steps instead of the usual five steps.]]
[[Image:TCA_Cycle.png|500 px|left|thumb|'''Figure 5. Citric Acid Cycle with Glyoxylate Shunt Pathway.''' In several bacterial species, there is a carbon conserving gloxylate shunt pathway that converts isocitrate to malate in two steps instead of the usual five steps.]]




[[Image:Complete_Mechanism.PNG|500 px|center|thumb|'''Figure 6. Observed Mechanism for the Breakdown of Isocitrate by Isocitrate Lyase.''' His193 shifts the pKa of Cys191 and removes its proton. This allows Cys191 to extract a proton from the hydroxyl group of isocitrate. The resulting oxyanion forms a carbonyl and forces the lysis of a C-C bond. Glyoxylate and the enol form of succinate are formed and stabilized with a Mg<sup>2+</sup> ion. The succinate enolate resonates and extracts the proton back from Cys191 to form succinate.]]
[[Image:Complete_Mechanism.PNG|500 px|left|thumb|'''Figure 6. Observed Mechanism for the Breakdown of Isocitrate by Isocitrate Lyase.''' His193 shifts the pKa of Cys191 and removes its proton. This allows Cys191 to extract a proton from the hydroxyl group of isocitrate. The resulting oxyanion forms a carbonyl and forces the lysis of a C-C bond. Glyoxylate and the enol form of succinate are formed and stabilized with a Mg<sup>2+</sup> ion. The succinate enolate resonates and extracts the proton back from Cys191 to form succinate.]]
 





Revision as of 03:01, 10 April 2015

Isocitrate Lyase from Mycobacterium tuberculosis

Isocitrate Lyase

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References