Sandbox Reserved 1074

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==='''Importance of Tyr-158'''===
==='''Importance of Tyr-158'''===
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One example of a hydrophobic amino acid that is not a part of the substrate binding loop yet interacts with the fatty acyl substrate is [[Tyr-158]]. [[Image:Tyr-158.jpg|thumb|200px|left|Tyr-158 (light blue) hydrogen bonding to the fatty acyl substrate, 2TK (red)]] This amino acid is conserved in other enoyl-ACP reductases in both bacteria and plants, so it likely plays an essential role in the function of these specific enzymes. Studies have shown that Tyr-158 forms the only direct hydrogen bond that exists between the InhA protein and the fatty acyl substrate. This hydrogen bond occurs between the hydroxyl oxygen on the side chain of Tyr-158 and the thioester carbonyl oxygen of the fatty acyl substrate. As a result of the highly conserved nature and the specific hydrogen bonding capabilities of this amino acid, it is likely that Tyr-158 plays an important role in fatty acyl substrate binding in enoyl-ACP reductases.
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One example of a hydrophobic amino acid that is not a part of the substrate binding loop yet interacts with the fatty acyl substrate is [[Tyr-158]]. [[Image:Tyr-158.jpg|thumb|200px|left|Tyr-158 (light blue) hydrogen bonding to the fatty acyl substrate, 2TK (red)]] This amino acid is conserved in other enoyl-ACP reductases in both bacteria and plants, so it likely plays an essential role in the function of these specific enzymes. Studies have shown that Tyr-158 forms the only direct hydrogen bond that exists between the InhA protein and the fatty acyl substrate. This hydrogen bond occurs between the hydroxyl oxygen on the side chain of Tyr-158 and the thioester carbonyl oxygen of the fatty acyl substrate. Consequently, the Tyr-158 residue acts to stabilize the enolate intermediate that forms during the hydride transfer reaction (1).
== '''Catalytic Triad''' ==
== '''Catalytic Triad''' ==
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Structural studies have shown that InhA possesses the <scene name='69/694241/Catalytic_triad/2'>Phe-Tyr-Lys catalytic triad</scene>, composed of Phe-149, Tyr-158, and Lys-165. This catalytic triad of InhA is analogous to the classic Ser-Tyr-Lys catalytic triad of the SDR (Short-chain Dehydrogenase Reductase) family in terms of position and function within the enzyme. As discussed previously, the likely role of Tyr-158 is to position the fatty acyl substrate within the fatty acyl binding crevice. Second, the side chain of the Lys-165 residue in InhA functions similarly to the catalytic Lys residues in other SDR enzymes by interacting with the 3'-hydroxyl of the nicotinamide ring of NADH to hold this cofactor in place within the fatty acyl binding crevice. Finally, the exact role of the catalytic Phe-149 residue in InhA is unknown. It has been hypothesized to play a role in helping the fatty acyl substrate adopt its desired u-shape prior to binding. However, it is more widely believed that this catalytic residue merely distinguishes InhA as a dehydrogenase.
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Structural studies have shown that InhA possesses a <scene name='69/694241/Catalytic_triad/2'>Phe-Tyr-Lys catalytic triad</scene>, composed of Phe-149, Tyr-158, and Lys-165. This catalytic triad of InhA is analogous to the classic Ser-Tyr-Lys catalytic triad present in all members of the SDR (Short-chain Dehydrogenase Reductase) family (1). In the dehydrogenases, the first catalytic residue is usually Ser or Thr, while in the enoyl reuctases (InhA), the first catalytic residue is usually Phe or Tyr (2). According to crystallographic data, the likely role of Tyr-158 is to stabilize the enolate intermediate that forms during the hydride transfer reaction (1). Previous structural and kinetic studies have confirmed that the side chain of the Lys-165 residue in InhA functions similarly to the catalytic Lys residues in other SDR enzymes. The catalytic Lys-165 residue in InhA interacts with the 2' or 3'-hydroxyls of the nicotinamide ring of NADH to hold this cofactor in place within the fatty acyl binding crevice (1). Finally, the exact role of the catalytic Phe-149 residue in InhA is less well known. Recent Raman spectroscopy studies have supported that the catalytic Phe-149 residue plays an essential role in orienting the NADH cofactor correctly to lower the energy of the transition state and promoting the hydride transfer reaction. Altogether, the residues in the catalytic triad of InhA play critical roles in properly orienting NADH and the fatty acyl substrate to promote the hydride transfer reaction required to elongate the fatty acyl chains and produce mycolic acid precursors.
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== References ==
== References ==
<references/>
<references/>
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http://pubs.acs.org/doi/abs/10.1021/ja068219m

Revision as of 03:38, 8 April 2015

This Sandbox is Reserved from 02/09/2015, through 05/31/2016 for use in the course "CH462: Biochemistry 2" taught by Geoffrey C. Hoops at the Butler University. This reservation includes Sandbox Reserved 1051 through Sandbox Reserved 1080.
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Enoyl-ACP Reductase InhA from Mycobacterium tuberculosis

Enoyl-ACP Reductase InhA Homotetramer

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References


http://pubs.acs.org/doi/abs/10.1021/ja068219m

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