Sandbox Reserved 1844: Difference between revisions
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Leaf branch compost [https://en.wikipedia.org/wiki/Cutinase cutinase] <scene name='10/1075246/4eb0_in_pink/5'>(LCC)</scene> is a versatile enzyme that can break down both natural plant polymers and synthetic plastics.<ref name="Tournier">PMID:32269349</ref><ref name="Sui">PMID:37849919</ref> It was discovered in a [https://en.wikipedia.org/wiki/Compost compost] heap, and it originally evolved to degrade [https://en.wikipedia.org/wiki/Cutin cutin], the protective biopolymer in plant surfaces.<ref name="Ueda">PMID:34160605</ref><ref name="Kolattukudy">PMID:17779010</ref> LCC has also shown high efficiency in hydrolyzing [https://en.wikipedia.org/wiki/Polyethylene_terephthalate polyethylene terephthalate] (PET), which is a widely used plastic that contributes to pollution. Unlike many other PET-degrading enzymes, LCC is thermostable ''and'' has a high [https://en.wikipedia.org/wiki/Specificity_constant catalytic efficiency], which means it can function at temperatures that are optimal for industrial recycling processes.<ref name="Khairul">PMID:36293501</ref><ref name="Burgin">PMID:38538850</ref> By breaking PET into its monomers, LCC promotes [https://en.wikipedia.org/wiki/Closed-loop_recycling closed-loop recycling] of plastic waste and reduces environmental accumulation.<ref name="Sui"/> | Leaf branch compost [https://en.wikipedia.org/wiki/Cutinase cutinase] <scene name='10/1075246/4eb0_in_pink/5'>(LCC)</scene> is a versatile enzyme that can break down both natural plant polymers and synthetic plastics.<ref name="Tournier">PMID:32269349</ref><ref name="Sui">PMID:37849919</ref> It was discovered in a [https://en.wikipedia.org/wiki/Compost compost] heap, and it originally evolved to degrade [https://en.wikipedia.org/wiki/Cutin cutin], the protective biopolymer in plant surfaces.<ref name="Ueda">PMID:34160605</ref><ref name="Kolattukudy">PMID:17779010</ref> LCC has also shown high efficiency in hydrolyzing [https://en.wikipedia.org/wiki/Polyethylene_terephthalate polyethylene terephthalate] (PET), which is a widely used plastic that contributes to pollution. Unlike many other PET-degrading enzymes, LCC is thermostable ''and'' has a high [https://en.wikipedia.org/wiki/Specificity_constant catalytic efficiency], which means it can function at temperatures that are optimal for industrial recycling processes.<ref name="Khairul">PMID:36293501</ref><ref name="Burgin">PMID:38538850</ref> By breaking PET into its monomers, LCC promotes [https://en.wikipedia.org/wiki/Closed-loop_recycling closed-loop recycling] of plastic waste and reduces environmental accumulation.<ref name="Sui"/> | ||
[https://www.rcsb.org/structure/4EB0 4EB0] is the primary PDB file used throughout this page. The protein is an LCC mutant that has been optimized for thermostability. The model substrate is 2-HE(MHET)₃, a trimer of MHET [https://en.wikipedia.org/wiki/2-Hydroxyethyl_terephthalic_acid (mono-(2-hydroxy-ethyl) terephthalate)]. MHET is an intermediate in the depolymerization of PET.<ref name="Zhang">PMID:37945666</ref><ref name="Tournier"/> | [https://www.rcsb.org/structure/4EB0 4EB0] is the primary PDB file used throughout this page.<ref name=Sulaiman, S., You, D. J., Kanaya, E., Koga, Y. & Kanaya, S. Crystal structure and thermodynamic and kinetic stability of metagenome-derived LC-cutinase. Biochemistry 53, 1858–1869 (2014).> The protein is an LCC mutant that has been optimized for thermostability. The model substrate is 2-HE(MHET)₃, a trimer of MHET [https://en.wikipedia.org/wiki/2-Hydroxyethyl_terephthalic_acid (mono-(2-hydroxy-ethyl) terephthalate)]. MHET is an intermediate in the depolymerization of PET.<ref name="Zhang">PMID:37945666</ref><ref name="Tournier"/> | ||
== Function == | == Function == | ||
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== Structural Overview == | == Structural Overview == | ||
LCC consists of one domain. <scene name='10/1075246/4eb0_helix_sheet/ | LCC consists of one domain. <scene name='10/1075246/4eb0_helix_sheet/5'>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 === | ||
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=== Ligand Binding Pocket === | === Ligand Binding Pocket === | ||
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 + | 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 <scene name='10/1075246/4eb0_ligand_subsites/1'>−2, −1, and +1</scene>—that interact with specific PET units near the scissile ester bond. Hydrophobic residues such as <scene name='10/1075248/4eb0_with_colored_ligand_stick/2'>F125, V212, M166, and F243</scene> 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='10/1075248/4eb0_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/3'>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='10/1075248/4eb0_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/3'>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. | ||
Latest revision as of 19:59, 17 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
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References
Student Contributors
Ashley Callaghan, Rebecca Hoff, & Simone McCowan

