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Crystal structures of herbicide-detoxifying esterase reveal a lid loop affecting substrate binding and activity. | LitMetric

Crystal structures of herbicide-detoxifying esterase reveal a lid loop affecting substrate binding and activity.

Nat Commun

Key Laboratory of Agricultural Environmental Microbiology of Ministry of Agriculture, College of Life Sciences, Nanjing Agricultural University, Nanjing, 210095, China.

Published: July 2023

AI Article Synopsis

  • SulE is an esterase enzyme that detoxifies sulfonylurea herbicides, offering a method to eliminate these harmful substances from the environment and support the creation of herbicide-resistant crops.
  • Researchers determined the crystal structures of SulE and a mutant variant, P44R, finding that SulE forms a dimer with a binding pocket capable of accommodating large herbicide molecules while also featuring a unique lid loop for substrate binding.
  • The P44R mutation enhances the flexibility of the lid loop, allowing better positioning of the herbicide's heterocyclic ring and resulting in a significant increase in the enzyme’s activity, providing a foundation for future enhancements in enzyme engineering.

Article Abstract

SulE, an esterase, which detoxifies a variety of sulfonylurea herbicides through de-esterification, provides an attractive approach to remove environmental sulfonylurea herbicides and develop herbicide-tolerant crops. Here, we determined the crystal structures of SulE and an activity improved mutant P44R. Structural analysis revealed that SulE is a dimer with spacious binding pocket accommodating the large sulfonylureas substrate. Particularly, SulE contains a protruding β hairpin with a lid loop covering the active site of the other subunit of the dimer. The lid loop participates in substrate recognition and binding. P44R mutation altered the lid loop flexibility, resulting in the sulfonylurea heterocyclic ring repositioning to a relative stable conformation thus leading to dramatically increased activity. Our work provides important insights into the molecular mechanism of SulE, and establish a solid foundation for further improving the enzyme activity to various sulfonylurea herbicides through rational design.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10356948PMC
http://dx.doi.org/10.1038/s41467-023-40103-5DOI Listing

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