Sandbox Reserved 1846: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
Line 25: Line 25:
=== Catalytic Triad ===
=== Catalytic Triad ===
[[Image:Final rayed image of binding pocket.png|400 px|right|thumb|Figure 1: Ser, His, Asp catalytic triad non-covalent stabilizing interactions with oxyanion hole.]]
[[Image:Final rayed image of binding pocket.png|400 px|right|thumb|Figure 1: Ser, His, Asp catalytic triad non-covalent stabilizing interactions with oxyanion hole.]]
LCC catalyzes the breakdown of PET using a serine hydrolase mechanism with a <scene name='10/1075247/Catalytic_triad3_w_label/3'>catalytic triad</scene> of Ser165, His242, and Asp210. (Figure 1) (1) The reaction begins when His242 deprotonates Ser165, which activates it as a nucleophile. (2) Ser165 then attacks the carbonyl carbon of an ester bond in the PET polymer  to form a tetrahedral transition state. This transition state is stabilized by an oxyanion hole formed by the backbone amides of Met166 and Tyr95. (3) Proton transfer then leads to formation of semi-stable acyl-enzyme intermediate and the alcohol product. (4) A water molecule, activated by His242, then attacks the acyl-enzyme. This releases the second product and resets the enzyme’s active site. 5)
LCC catalyzes the breakdown of PET using a serine hydrolase mechanism with a <scene name='10/1075247/Catalytic_triad3_w_label/3'>catalytic triad</scene> of Ser165, His242, and Asp210. (Figure 1) Ser165 is deprotonated by His242 forming a reactive nucleophile (1). The oxygen of Ser165 attacks the carbonyl carbon of the substrate creating a tetrahedral intermediate (2). The tetrahedral intermediate collapses breaking the bond to the leaving group and forming an acyl-enzyme intermediate (3). Water is activated by His242 and its oxygen attacks the carbonyl carbon of the acyl-enzyme intermediate forming a second tetrahedral intermediate (4). The second tetrahedral intermediate collapses releasing the product and regenerating the enzyme.
[[Image:FinalMechanism2.jpg|800 px|right|thumb|Figure 2: LCC mechanism. LCC hydrolyzes PET using a catalytic triad (Ser165, His242, Asp210) to cleave its ester bonds via two tetrahedral transition states to an acyl-enzyme intermediate.]]
[[Image:FinalMechanism2.jpg|800 px|right|thumb|Figure 2: LCC mechanism. LCC hydrolyzes PET using a catalytic triad (Ser165, His242, Asp210) to cleave its ester bonds via two tetrahedral transition states to an acyl-enzyme intermediate.]]



Revision as of 19:55, 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.
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

A binding model of the substrate 2-HE(MHET)3 in wild-type LLC (4eb0.pdb) was constructed and refined to mimic the 3D structure illustrated in Figure 2 of reference [1]. The software Maestro (Schrödinger, Inc; version 14.2.118) was used to construct the initial binding structure, followed by energy minimization in the context of the rigid protein that had previously been processed to add/refine all hydrogen atoms. The ligand model was then used without further modification to identify and illustrate the cited active-site residues.

  1. ↑ Cite error: Invalid <ref> tag; no text was provided for refs named Tournier

Student Contributors

Ashley Callaghan, Rebecca Hoff, & Simone McCowan