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Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition

The vacuolar cysteine protease legumain plays important functions in seed maturation and plant programmed cell death. Because of their dual protease and ligase activity, plant legumains have become of particular biotechnological interest, e.g. for the synthesis of cyclic peptides for drug design or...

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Autores principales: Dall, Elfriede, Zauner, Florian B., Soh, Wai Tuck, Demir, Fatih, Dahms, Sven O., Cabrele, Chiara, Huesgen, Pitter F., Brandstetter, Hans
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7489914/
https://www.ncbi.nlm.nih.gov/pubmed/32719006
http://dx.doi.org/10.1074/jbc.RA120.014478
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author Dall, Elfriede
Zauner, Florian B.
Soh, Wai Tuck
Demir, Fatih
Dahms, Sven O.
Cabrele, Chiara
Huesgen, Pitter F.
Brandstetter, Hans
author_facet Dall, Elfriede
Zauner, Florian B.
Soh, Wai Tuck
Demir, Fatih
Dahms, Sven O.
Cabrele, Chiara
Huesgen, Pitter F.
Brandstetter, Hans
author_sort Dall, Elfriede
collection PubMed
description The vacuolar cysteine protease legumain plays important functions in seed maturation and plant programmed cell death. Because of their dual protease and ligase activity, plant legumains have become of particular biotechnological interest, e.g. for the synthesis of cyclic peptides for drug design or for protein engineering. However, the molecular mechanisms behind their dual protease and ligase activities are still poorly understood, limiting their applications. Here, we present the crystal structure of Arabidopsis thaliana legumain isoform β (AtLEGβ) in its zymogen state. Combining structural and biochemical experiments, we show for the first time that plant legumains encode distinct, isoform-specific activation mechanisms. Whereas the autocatalytic activation of isoform γ (AtLEGγ) is controlled by the latency-conferring dimer state, the activation of the monomeric AtLEGβ is concentration independent. Additionally, in AtLEGβ the plant-characteristic two-chain intermediate state is stabilized by hydrophobic rather than ionic interactions, as in AtLEGγ, resulting in significantly different pH stability profiles. The crystal structure of AtLEGβ revealed unrestricted nonprime substrate binding pockets, consistent with the broad substrate specificity, as determined by degradomic assays. Further to its protease activity, we show that AtLEGβ exhibits a true peptide ligase activity. Whereas cleavage-dependent transpeptidase activity has been reported for other plant legumains, AtLEGβ is the first example of a plant legumain capable of linking free termini. The discovery of these isoform-specific differences will allow us to identify and rationally design efficient ligases with application in biotechnology and drug development.
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spelling pubmed-74899142020-09-22 Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition Dall, Elfriede Zauner, Florian B. Soh, Wai Tuck Demir, Fatih Dahms, Sven O. Cabrele, Chiara Huesgen, Pitter F. Brandstetter, Hans J Biol Chem Protein Structure and Folding The vacuolar cysteine protease legumain plays important functions in seed maturation and plant programmed cell death. Because of their dual protease and ligase activity, plant legumains have become of particular biotechnological interest, e.g. for the synthesis of cyclic peptides for drug design or for protein engineering. However, the molecular mechanisms behind their dual protease and ligase activities are still poorly understood, limiting their applications. Here, we present the crystal structure of Arabidopsis thaliana legumain isoform β (AtLEGβ) in its zymogen state. Combining structural and biochemical experiments, we show for the first time that plant legumains encode distinct, isoform-specific activation mechanisms. Whereas the autocatalytic activation of isoform γ (AtLEGγ) is controlled by the latency-conferring dimer state, the activation of the monomeric AtLEGβ is concentration independent. Additionally, in AtLEGβ the plant-characteristic two-chain intermediate state is stabilized by hydrophobic rather than ionic interactions, as in AtLEGγ, resulting in significantly different pH stability profiles. The crystal structure of AtLEGβ revealed unrestricted nonprime substrate binding pockets, consistent with the broad substrate specificity, as determined by degradomic assays. Further to its protease activity, we show that AtLEGβ exhibits a true peptide ligase activity. Whereas cleavage-dependent transpeptidase activity has been reported for other plant legumains, AtLEGβ is the first example of a plant legumain capable of linking free termini. The discovery of these isoform-specific differences will allow us to identify and rationally design efficient ligases with application in biotechnology and drug development. American Society for Biochemistry and Molecular Biology 2020-09-11 2020-07-21 /pmc/articles/PMC7489914/ /pubmed/32719006 http://dx.doi.org/10.1074/jbc.RA120.014478 Text en © 2020 Dall et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Dall, Elfriede
Zauner, Florian B.
Soh, Wai Tuck
Demir, Fatih
Dahms, Sven O.
Cabrele, Chiara
Huesgen, Pitter F.
Brandstetter, Hans
Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title_full Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title_fullStr Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title_full_unstemmed Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title_short Structural and functional studies of Arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
title_sort structural and functional studies of arabidopsis thaliana legumain beta reveal isoform specific mechanisms of activation and substrate recognition
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7489914/
https://www.ncbi.nlm.nih.gov/pubmed/32719006
http://dx.doi.org/10.1074/jbc.RA120.014478
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