Sandbox Reserved 1852

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[https://www.pnas.org/doi/full/10.1073/pnas.1401073111 Impact of Scaffold Rigidity]
[https://www.pnas.org/doi/full/10.1073/pnas.1401073111 Impact of Scaffold Rigidity]
The Diels-Alderase protein aims to create optimal reacting conditions between the diene and dienophile in a [https://en.wikipedia.org/wiki/Diels%E2%80%93Alder_reaction Diels-Alder reaction.] It accomplishes this by decreasing the energy gap between the dienophile’s lowest unoccupied molecular orbital (LUMO) and the diene’s highest occupied molecular orbital (HOMO) in the transition state.<ref name="Siegel">PMID:20647463</ref> The binding pocket of 4O5T is selective for two substrates, 4-carboxybenzyl trans-1,3-butadiene-1-carbamate (diene) and N,N- dimethylacrylamide (dienophile). The binding site contains an H-bond donor (Y134) which lowers the LUMO energy and stabilizes the negative charge on the dienophile and an H-bond acceptor (Q208) that increases the HOMO energy and stabilizes the positive charge on the diene. Both of these H-bonding interactions work to stabilize the transition state, while also orienting the substrates in optimal conformations for reacting.
The Diels-Alderase protein aims to create optimal reacting conditions between the diene and dienophile in a [https://en.wikipedia.org/wiki/Diels%E2%80%93Alder_reaction Diels-Alder reaction.] It accomplishes this by decreasing the energy gap between the dienophile’s lowest unoccupied molecular orbital (LUMO) and the diene’s highest occupied molecular orbital (HOMO) in the transition state.<ref name="Siegel">PMID:20647463</ref> The binding pocket of 4O5T is selective for two substrates, 4-carboxybenzyl trans-1,3-butadiene-1-carbamate (diene) and N,N- dimethylacrylamide (dienophile). The binding site contains an H-bond donor (Y134) which lowers the LUMO energy and stabilizes the negative charge on the dienophile and an H-bond acceptor (Q208) that increases the HOMO energy and stabilizes the positive charge on the diene. 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 Diels-Alderase enzyme was built using de novo enzyme design, which relies on computational modeling that is refined through programming and collaborative problem-solving from online users. The original protein was made using the [https://en.wikipedia.org/wiki/Rosetta@home Rosetta] computational design program, where a potential active site was built and tested against a library of scaffold proteins. Later, as the active site was perfected, future generations of the Diels-Alderase were made using an online protein folding game called [https://en.wikipedia.org/wiki/Foldit Foldit,] where players competed to improve binding efficiency by completing various challenges.
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==General Structure==
==General Structure==
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====Scaffold====
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After early Rosetta computational modelling, an ideal protein scaffold was found in the 6-bladed beta-propeller of Loligo vulgalis, or the Europoean Squid. <ref name="Siegel"/><ref name="Scharff">PMID:11435114</ref> The protein is relatively simple, with only one chain, one unit, 324 residues, and no extra ligands, metal ions, or small molecules bound.
[[Image:BindingPocket.png|300px|right|thumb|Figure 1. Active Site]]
[[Image:BindingPocket.png|300px|right|thumb|Figure 1. Active Site]]
====Active Site====
====Active Site====

Revision as of 00:29, 16 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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