Sandbox Reserved 1565: Difference between revisions

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IMPDH quaternary structures include multiunit complexes, such as <scene name='82/823089/Quaternary_view/1'>tetramers</scene>, extended octamers, and compacted octamers. These quaternary structures are created through the binding of multiple subunits of <scene name='82/823089/Tertiary_structure/1'>tertiary</scene> structures (monomers), that are strengthened and structurally formed through hydrogen-bonding, cysteine-cysteine disulfide bonds, and hydrophobic interactions. Different quaternary forms of IMPDH relate to the kinetic favorability of the IMPDH mechanism as Bateman domain allosteric binding sites and competitive nature changes with unit composition.
IMPDH quaternary structures include multiunit complexes, such as <scene name='82/823089/Quaternary_view/1'>tetramers</scene>, extended octamers, and compacted octamers. These quaternary structures are created through the binding of multiple subunits of <scene name='82/823089/Tertiary_structure/1'>tertiary</scene> structures (monomers), that are strengthened and structurally formed through hydrogen-bonding, cysteine-cysteine disulfide bonds, and hydrophobic interactions. Different quaternary forms of IMPDH relate to the kinetic favorability of the IMPDH mechanism as Bateman domain allosteric binding sites and competitive nature changes with unit composition.


This <scene name='82/823089/Space-filled/2'>space-filled view</scene> helps show the Van der Waals interactions and areas for movement within the structure. The ability for monovalent cations to move within the charged tunnel with the phosphate chain directly relates to activation levels. The phosphate chain relates to the ligands that further interact with the binding site to form the covalent intermediate, E-XMP*.
This <scene name='82/823089/Space-filled/2'>space-filled view</scene> helps show the Van der Waals interactions and areas for movement within the structure. The ability for monovalent cations to move within the charged tunnel with the phosphate chain (TIM barrel) directly relates to activation levels. The phosphate chain relates to the ligands that further interact with the binding site to form the covalent intermediate, E-XMP*.


The <scene name='82/823089/Hydrophobicity_view/1'>hydrophobicity</scene> is within the interior of the molecule as the hydrophilic residues are able to interact in a physiological environment. The hydrophobic region of Gly361 and Gly383 interact with the main chain phosphate, further allowing monovalent cation movement. Hydrophilic regions contain amino acid residues that hydrogen-bond, some conserving tertiary structure and others relating to necessary interactions in the active site (see below).
The <scene name='82/823089/Hydrophobicity_view/1'>hydrophobicity</scene> is within the interior of the molecule as the hydrophilic residues are able to interact in a physiological environment. The hydrophobic region of Gly361 and Gly383 interact with the main chain phosphate (TIM), further allowing monovalent cation movement. Hydrophilic regions contain amino acid residues that hydrogen-bond, some conserving tertiary structure and others relating to necessary interactions in the active site (see below).


Acetate ions, G5P, and GDP molecules are <scene name='82/823089/Ligands/1'>ligands</scene> of IMPDH. NAD serves a function as a ligand as is necessary in the hydrolysis of IMP. The phosphates of the G5P, GDP, and NAD (not pictured) ligands interact through hydrogen bonds and hydrophobic interactions (depending on the amino acid residue; see active binding site below). The monocovalent cations that pass through interact with the phosphates as they activate IMPDH.
Acetate ions, G5P, and GDP molecules are <scene name='82/823089/Ligands/1'>ligands</scene> of IMPDH. NAD serves a function as a ligand as is necessary in the hydrolysis of IMP. The phosphates of the G5P, GDP, and NAD (not pictured) ligands interact through hydrogen bonds and hydrophobic interactions (depending on the amino acid residue; see active binding site below). The monocovalent cations that pass through interact with the phosphates as they activate IMPDH.

Revision as of 05:56, 9 December 2019

This Sandbox is Reserved from Aug 26 through Dec 12, 2019 for use in the course CHEM 351 Biochemistry taught by Bonnie_Hall at the Grand View University, Des Moines, USA. This reservation includes Sandbox Reserved 1556 through Sandbox Reserved 1575.
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Inosine-5'-monophosphate dehydrogenase

Structure of the ternary complex of the IMPDH enzyme from Ashbya gossypii bound to the dinucleoside polyphosphate Ap5G and GDP

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References