Sandbox Reserved 1846: Difference between revisions

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=== S283 & D238 ===
=== S283 & D238 ===
Two wild-type residues, <scene name='10/1075247/S283-d238/5'>Ser283 and Asp238</scene>, were engineered to form a disulfide bond by replacing them with Cys. This decision was based on their spatial proximity and their location in a region that resembles metal-binding sites in homologous PET-degrading enzymes.<ref name="Tournier"/> Unlike those metal-dependent sites, the LCC structure lacked coordinated ions. For that reason, the researchers engineered a covalent linkage instead to increase thermal stability without requiring additives like calcium. WT LCC has a melting point of 84.7°C, while the <scene name='10/1075248/C283-c238/2'>S283C and D238C mutant</scene> increased the melting point to 94.5°C, a 9.8°C improvement, which is higher than any other mutations. However, this increase in stability was accompanied by a 28% decrease in enzymatic activity compared to the wild-type. This trade-off between stability and activity shows the balance in enzyme engineering, as increasing structural integrity can sometimes restrict the flexibility needed for catalytic function.
Two wild-type residues, <scene name='10/1075247/S283-d238/5'>Ser283 and Asp238</scene>, were engineered to form a disulfide bond by replacing them with Cys. These residues were chosen based on their spatial proximity and their location in a region that resembles metal-binding sites in homologous PET-degrading enzymes.<ref name="Tournier"/> Unlike those metal-dependent sites, the LCC structure lacked coordinated divalent metal ions. For that reason, the researchers engineered a covalent linkage instead to increase thermal stability without requiring additives like calcium. WT LCC has a melting point of 84.7°C, while the <scene name='10/1075248/C283-c238/2'>S283C and D238C mutant</scene> increased the melting point to 94.5°C, a 9.8°C improvement, which is higher than any other mutations. However, this increase in stability was accompanied by a 28% decrease in enzymatic activity compared to the wild-type. This trade-off between stability and activity shows the balance in enzyme engineering, as increasing structural integrity can sometimes restrict the flexibility needed for catalytic function.


</StructureSection>
</StructureSection>

Revision as of 16:27, 22 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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Leaf Branch Compost Cutinase

Leaf Branch Compost Cutinase (PDB: 4EB0)

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References


Student Contributors

Ashley Callaghan, Rebecca Hoff, & Simone McCowan