Sandbox Reserved 1852

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[[Image:DielsAlderasecomboinfo Large.jpeg|540px|left|thumb|Figure 1. A) Example mechanism of a simple Diels-Alder reaction. B) Diels-Alderase substrates. Diene is 4-carboxybenzyl trans-1,3-butadiene-1-carbamate; dienophile is N,N- dimethylacrylamide. C) Illustration of 3R, 4S endo stereoisomerism, which the Diels-Alderase is selective for.]]
[[Image:DielsAlderasecomboinfo Large.jpeg|540px|left|thumb|Figure 1. A) Example mechanism of a simple Diels-Alder reaction. B) Diels-Alderase substrates. Diene is 4-carboxybenzyl trans-1,3-butadiene-1-carbamate; dienophile is N,N- dimethylacrylamide. C) Illustration of 3R, 4S endo stereoisomerism, which the Diels-Alderase is selective for.]]
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The binding pocket of 4o5t is selective for two substrates, 4-carboxybenzyl trans-1,3-butadiene-1-carbamate ([https://en.wikipedia.org/wiki/Diene diene]) and N,N- dimethylacrylamide (dienophile). These substrates are shown as a single, combined ligand, 4-{[2-(phosphonooxy)ethyl]carbamoyl}benzyl [(1R,6S)-6-(dimethylcarbamoyl)cyclohex-2-en-1-yl]carbamate, in the protein model. The binding site contains a [https://en.wikipedia.org/wiki/Hydrogen_bond hydrogen bond] donor (Tyr134) which lowers the LUMO energy and stabilizes the negative charge on the dienophile.<ref name="Siegel"/> It also contains a hydrogen bond acceptor (Glu208) that increases the HOMO energy and stabilizes the positive charge on the diene.<ref name="Siegel"/> Both of these H-bonding interactions work to stabilize the transition state while also orienting the substrates in optimal conformations for reacting.
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The binding pocket of 4o5t is selective for two substrates, 4-carboxybenzyl trans-1,3-butadiene-1-carbamate (diene) and N,N- dimethylacrylamide (dienophile). These substrates are shown as a single, combined ligand, 4-{[2-(phosphonooxy)ethyl]carbamoyl}benzyl [(1R,6S)-6-(dimethylcarbamoyl)cyclohex-2-en-1-yl]carbamate, in the protein model. The binding site contains a [https://en.wikipedia.org/wiki/Hydrogen_bond hydrogen bond] donor (Tyr134) which lowers the LUMO energy and stabilizes the negative charge on the dienophile.<ref name="Siegel"/> It also contains a hydrogen bond acceptor (Glu208) that increases the HOMO energy and stabilizes the positive charge on the diene.<ref name="Siegel"/> Both of these H-bonding interactions work to stabilize the transition state while also orienting the substrates in optimal conformations for reacting.
Overall, the Diels-Alderase stimulates improvement in synthetic laboratories and demonstrates early success in the now-prominent world of [https://www.nobelprize.org/prizes/chemistry/2024/press-release/ computational enzyme design.]
Overall, the Diels-Alderase stimulates improvement in synthetic laboratories and demonstrates early success in the now-prominent world of [https://www.nobelprize.org/prizes/chemistry/2024/press-release/ computational enzyme design.]

Revision as of 18:26, 28 April 2025

This Sandbox is Reserved from March 18 through September 1, 2025 for use in the course CH462 Biochemistry II taught by R. Jeremy Johnson and Mark Macbeth at the Butler University, Indianapolis, USA. This reservation includes Sandbox Reserved 1828 through Sandbox Reserved 1846.
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Diels-Alderase

Diels-Alderase 4o5t

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