Sandbox Reserved 1846: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
Line 17: Line 17:


== Structural Overview ==
== Structural Overview ==
LCC consists of one domain. <scene name='10/1075246/4eb0_helix_sheet/2'>Alpha helices and beta sheets</scene> are interspersed throughout the protein, with beta sheets (yellow) forming a stable central core surrounded by alpha helices (magenta) that contribute to the overall folding. This creates a predominantly α/β hydrolase fold that is typical of cutinases.
LCC consists of one domain. <scene name='10/1075246/4eb0_helix_sheet/4'>Alpha helices and beta sheets</scene> are interspersed throughout the protein, with beta sheets (yellow) forming a stable central core surrounded by alpha helices (magenta) that contribute to the overall folding. This creates a predominantly α/β hydrolase fold that is typical of cutinases.


=== Catalytic Triad ===
=== Catalytic Triad ===
Line 25: Line 25:


=== Ligand Binding Pocket ===
=== Ligand Binding Pocket ===
The <scene name='10/1075246/4eb0_with_colored_ligand_stick/2'>substrate-binding site</scene> of LCC is a long, mainly hydrophobic groove that accommodates PET chains. This groove includes three subsites—designated −2, −1, and +1—that interact with specific PET units near the scissile ester bond. Hydrophobic residues such as F125, V212, M166, and F243 line the groove and facilitate binding by interacting with the [https://en.wikipedia.org/wiki/Aromatic_compound aromatic] rings of the PET molecule. These interactions help align the substrate in the correct position for catalysis.
The <scene name='10/1075246/4eb0_with_colored_ligand_stick/3'>substrate-binding site</scene> of LCC is a long, mainly hydrophobic groove that accommodates PET chains. This groove includes three subsites—designated −2, −1, and +1—that interact with specific PET units near the scissile ester bond. Hydrophobic residues such as F125, V212, M166, and F243 line the groove and facilitate binding by interacting with the [https://en.wikipedia.org/wiki/Aromatic_compound aromatic] rings of the PET molecule. These interactions help align the substrate in the correct position for catalysis.


The <scene name='10/1075246/4eb0_surface_w_stick_ligand/1'>molecular surface view of the enzyme-ligand interaction</scene> shows the overall shape and depth of the binding groove. The <scene name='10/1075246/4eb0_hydrophobicity_ligand/1'>cartoon representation of the enzyme-ligand interaction</scene>, the enzyme is shown as a ribbon diagram with the hydrophobic residues colored pink, to show how the PET chain fits snugly into the groove.
The <scene name='10/1075246/4eb0_surface_w_stick_ligand/1'>molecular surface view of the enzyme-ligand interaction</scene> shows the overall shape and depth of the binding groove. The <scene name='10/1075246/4eb0_hydrophobicity_ligand/1'>cartoon representation of the enzyme-ligand interaction</scene>, the enzyme is shown as a ribbon diagram with the hydrophobic residues colored pink, to show how the PET chain fits snugly into the groove.
Line 48: Line 48:


=== S283 & D238 ===
=== S283 & D238 ===
Two wild-type residues, <scene name='10/1075247/S283-d238/5'>S283 and D238</scene>, were engineered to form a disulfide bond by replacing them with Cys. This decision was based on their spatial proximity in the 3D structure and their location in a region that resembles metal-binding sites in homologous PET-degrading enzymes. 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. The wild-type protein has a melting point of 84.7°C, while the <scene name='10/1075246/C283-c238/1'>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'>S283 and D238</scene>, were engineered to form a disulfide bond by replacing them with Cys. This decision was based on their spatial proximity in the 3D structure and their location in a region that resembles metal-binding sites in homologous PET-degrading enzymes. 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. The wild-type protein has a melting point of 84.7°C, while the <scene name='10/1075246/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 02:41, 15 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.
To get started:
  • Click the edit this page tab at the top. Save the page after each step, then edit it again.
  • show the Scene authoring tools, create a molecular scene, and save it. Copy the green link into the page.
  • Add a description of your scene. Use the buttons above the wikitext box for bold, italics, links, headlines, etc.

More help: Help:Editing

Leaf Branch Compost Cutinase

Leaf Branch Compost Cutinase (PDB: 4EB0)

Drag the structure with the mouse to rotate

References


Student Contributors

Ashley Callaghan Rebecca Hoff Simone McCowan