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Leaf-branch compost bacterial cutinase features an [https://en.wikipedia.org/wiki/Alpha/beta_hydrolase_superfamily alpha-beta hydrolase fold] as its catalytic domain. The alpha-beta hydrolase fold features a chymotrypsin-like catalytic triad with a conserved histidine, a hydrophobic binding pocket, and an oxyanion hole. The primary structure contains a nucleophilic motif of G-X-Nu-X-G. The flanking glycines allow the nucleophilic region of the active site to form a tight loop called the nucleophilic elbow. Some alpha-beta hydrolase enzymes have the motif HX*4D, which allows them to exhibit acyltransferase activity. Alpha-beta hydrolase enzymes have a wide range of functions including proteolysis, signal transduction, and lipid metabolism.
Leaf-branch compost bacterial cutinase features an [https://en.wikipedia.org/wiki/Alpha/beta_hydrolase_superfamily alpha-beta hydrolase fold] as its catalytic domain. The alpha-beta hydrolase fold features a chymotrypsin-like catalytic triad with a conserved histidine, a hydrophobic binding pocket, and an oxyanion hole. The primary structure contains a nucleophilic motif of G-X-Nu-X-G. The flanking glycines allow the nucleophilic region of the active site to form a tight loop called the nucleophilic elbow. Some alpha-beta hydrolase enzymes have the motif HX*4D, which allows them to exhibit acyltransferase activity. Alpha-beta hydrolase enzymes have a wide range of functions including proteolysis, signal transduction, and lipid metabolism.
===Overall Topology===
===Overall Topology===
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<scene scene='10/1075193/Wild_type_pet_hydrolase/2>Leaf-branch compost bacterial cutinase</scene>, LCC, is a part of the [https://en.wikipedia.org/wiki/Serine_hydrolase serine hydrolase] family. It is a monomer that contains a total of 258 amino acid residues, with an amphipathic structure. It has a <scene name='10/1075193/Overall_topology/1'>secondary structure</scene> made up of alpha helices and beta turns, which correlate to the alpha-beta hydrolase family. The active site consists of a <scene name='10/1075191/Active_site_overall_topology/5'>catalytic triad</scene>, which is a common feature among serine hydrolases. Compared to other serine hydrolases and cutinases studied for plastic degradation, the LCC proved to be 33x more efficient.
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<scene scene='10/1075193/Wild_type_pet_hydrolase/2>Leaf-branch compost bacterial cutinase</scene>, LCC, is a part of the [https://en.wikipedia.org/wiki/Serine_hydrolase serine hydrolase] family. It is a monomer that contains a total of 258 amino acid residues, with an amphipathic structure. It has a <scene name='10/1075193/Overall_topology/2'>secondary structure</scene> made up of alpha helices and beta turns, which correlate to the alpha-beta hydrolase family. The active site consists of a <scene name='10/1075191/Active_site_overall_topology/5'>catalytic triad</scene>, which is a common feature among serine hydrolases. Compared to other serine hydrolases and cutinases studied for plastic degradation, the LCC proved to be 33x more efficient.
==Active Site==
==Active Site==
===Structure===
===Structure===

Revision as of 15:11, 10 April 2025

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References

  1. 1.0 1.1 1.2 1.3 Shirke AN, White C, Englaender JA, Zwarycz A, Butterfoss GL, Linhardt RJ, Gross RA. Stabilizing Leaf and Branch Compost Cutinase (LCC) with Glycosylation: Mechanism and Effect on PET Hydrolysis. Biochemistry. 2018 Feb 20;57(7):1190-1200. PMID:29328676 doi:10.1021/acs.biochem.7b01189
  2. Imperiali B, O'Connor SE. Effect of N-linked glycosylation on glycopeptide and glycoprotein structure. Curr Opin Chem Biol. 1999 Dec;3(6):643-9. PMID:10600722

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