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== Function(s) and Biological Relevance ==
== Function(s) and Biological Relevance ==
Lignostilbene-α,β-dioxygenase (LsdA) from the bacterium ''''Sphingomonas paucimobilis''''. It is a nonheme iron oxygenase that catalyzes the cleavage of lignostilbene, a compound
Lignostilbene-α,β-dioxygenase (LsdA) from the bacterium ''''Sphingomonas paucimobilis''''. It is a nonheme iron oxygenase that catalyzes the cleavage of lignostilbene, a compound
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arising in lignin transformation, to two vanillin molecules. The substrate for this enzyme is lignostilbene. Phenylazophenol inhibited the LsdA-catalyzed cleavage of lignostilbene in a reversible, mixed fashion. Lignin is used in biofuel production. Lignin is a heterogeneous aromatic polymer found in plant cell walls that contributes to the recalcitrance of biomass. Below are two images. On the left is Lignostilbene, and on the right is Vanillin for comparison.
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arising in lignin transformation, to two vanillin molecules. The substrate for this enzyme is lignostilbene. <ref>PMID 31292192</ref>. Phenylazophenol inhibited the LsdA-catalyzed cleavage of lignostilbene in a reversible, mixed fashion. Lignin is used in biofuel production. Lignin is a heterogeneous aromatic polymer found in plant cell walls that contributes to the recalcitrance of biomass. Below are two images. On the left is Lignostilbene, and on the right is Vanillin for comparison.
[[Image:lignostilbene.png]][[Image:vanillin.png]]
[[Image:lignostilbene.png]][[Image:vanillin.png]]
== Broader Implications ==
== Broader Implications ==
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mechanistic understanding of LsdA and related stilbene-cleaving dioxygenases.
mechanistic understanding of LsdA and related stilbene-cleaving dioxygenases.
== Structural highlights and structure-function relationships ==
== Structural highlights and structure-function relationships ==
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The <scene name='82/823082/Catalytic_triad/2'>Catalytic Triad</scene> of this protein is primarily made of the amino acids that are the main factor in catalysis. The 3 amino acids are Phe-59, Tyr101, and Lys-134. The <scene name='82/823082/Colored_secondary/1'>secondary and terteriary structure</scene> is a fold of LsdA of a seven-bladed -propeller, typical of the carotenoid cleavage oxygenates (CCO's), which usually catalyze the oxidative cleavage of a double bond in carotenoids<ref>PMID 31292192</ref>.
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The <scene name='82/823082/Catalytic_triad/2'>Catalytic Triad</scene> of this protein is primarily made of the amino acids that are the main factor in catalysis. The 3 amino acids are Phe-59, Tyr101, and Lys-134. The <scene name='82/823082/Colored_secondary/1'>secondary and terteriary structure</scene> is a fold of LsdA of a seven-bladed -propeller, typical of the carotenoid cleavage oxygenates (CCO's), which usually catalyze the oxidative cleavage of a double bond in carotenoids. <ref>PMID 31292192</ref>.
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The structures also consist of α-helices and ß-sheets. The <scene name='82/823082/Hydrogen_bonding/1'>active site</scene> occurs at the center of the propeller and contains an Fe2+. The <scene name='82/823082/Hydrophobicity_whole_protein/1'>hydrophobicity</scene> and <scene name='82/823082/Spacefill_whole_protein/1'>spacefill</scene> view of the ligand in the protein, which shows that both hydrophilic and hydrophobic residues are important to the ligand in the binding site.
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The structures also consist of α-helices and ß-sheets. The <scene name='82/823082/Hydrogen_bonding/1'>active site</scene> occurs at the center of the propeller and contains an Fe2+. The <scene name='82/823082/Hydrophobicity_whole_protein/1'>hydrophobicity</scene> and <scene name='82/823082/Spacefill_whole_protein/1'>spacefill</scene> view of the ligand in the protein, which shows that both hydrophilic and hydrophobic residues are important to the ligand in the binding site.
The space fill view allows us to see the different binding sites for this protein, the binding site is allosteric. The binding site for this protein has a very restrictive accessibility. The <scene name='82/823082/Ligand_closeup/2'>ligand</scene> for this protein is called NSL.
The space fill view allows us to see the different binding sites for this protein, the binding site is allosteric. The binding site for this protein has a very restrictive accessibility. The <scene name='82/823082/Ligand_closeup/2'>ligand</scene> for this protein is called NSL.
== Energy Transformation ==
== Energy Transformation ==
Phenylazophenol inhibits the LsdA-catalyzed cleavage of lignostilbene in a reversible, mixed fashion. The substrate specificity studies of LsdA are consistent with
Phenylazophenol inhibits the LsdA-catalyzed cleavage of lignostilbene in a reversible, mixed fashion. The substrate specificity studies of LsdA are consistent with
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previous reports that the enzyme cleaves only 4-hydroxystilbenes. More particularly, it had previously been determined that LsdA does not cleave 2-hydroxy, 3-hydroxy, or 4-methoxy stilbenes. The protein serves to cleave and transform lignostilbene to two vanillins.
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previous reports that the enzyme cleaves only 4-hydroxystilbenes. More particularly, it had previously been determined that LsdA does not cleave 2-hydroxy, 3-hydroxy, or 4-methoxy stilbenes. The protein serves to cleave and transform lignostilbene to two vanillins. <ref>PMID 31292192</ref>.
</StructureSection>
</StructureSection>

Revision as of 03:01, 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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Lignostilbene-α,β-dioxygenase A (LsdA) Catalyzation

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References

[4]

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