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Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides

[Image: see text] MASP-1 and MASP-2 are key activator proteases of the complement lectin pathway. The first specific mannose-binding lectin-associated serine protease (MASP) inhibitors had been developed from the 14-amino-acid sunflower trypsin inhibitor (SFTI) peptide by phage display, yielding SFT...

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Autores principales: Dürvanger, Zsolt, Boros, Eszter, Nagy, Zoltán Attila, Hegedüs, Rózsa, Megyeri, Márton, Dobó, József, Gál, Péter, Schlosser, Gitta, Ángyán, Annamária F., Gáspári, Zoltán, Perczel, András, Harmat, Veronika, Mező, Gábor, Menyhárd, Dóra K., Pál, Gábor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9016712/
https://www.ncbi.nlm.nih.gov/pubmed/35378038
http://dx.doi.org/10.1021/acschembio.2c00114
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author Dürvanger, Zsolt
Boros, Eszter
Nagy, Zoltán Attila
Hegedüs, Rózsa
Megyeri, Márton
Dobó, József
Gál, Péter
Schlosser, Gitta
Ángyán, Annamária F.
Gáspári, Zoltán
Perczel, András
Harmat, Veronika
Mező, Gábor
Menyhárd, Dóra K.
Pál, Gábor
author_facet Dürvanger, Zsolt
Boros, Eszter
Nagy, Zoltán Attila
Hegedüs, Rózsa
Megyeri, Márton
Dobó, József
Gál, Péter
Schlosser, Gitta
Ángyán, Annamária F.
Gáspári, Zoltán
Perczel, András
Harmat, Veronika
Mező, Gábor
Menyhárd, Dóra K.
Pál, Gábor
author_sort Dürvanger, Zsolt
collection PubMed
description [Image: see text] MASP-1 and MASP-2 are key activator proteases of the complement lectin pathway. The first specific mannose-binding lectin-associated serine protease (MASP) inhibitors had been developed from the 14-amino-acid sunflower trypsin inhibitor (SFTI) peptide by phage display, yielding SFTI-based MASP inhibitors, SFMIs. Here, we present the crystal structure of the MASP-1/SFMI1 complex that we analyzed in comparison to other existing MASP-1/2 structures. Rigidified backbone structure has long been accepted as a structural prerequisite for peptide inhibitors of proteases. We found that a hydrophobic cluster organized around the P2 Thr residue is essential for the structural stability of wild-type SFTI. We also found that the same P2 Thr prevents binding of the rigid SFTI-like peptides to the substrate-binding cleft of both MASPs as the cleft is partially blocked by large gatekeeper enzyme loops. Directed evolution removed this obstacle by replacing the P2 Thr with a Ser, providing the SFMIs with high-degree structural plasticity, which proved to be essential for MASP inhibition. To gain more insight into the structural criteria for SFMI-based MASP-2 inhibition, we systematically modified MASP-2-specific SFMI2 by capping its two termini and by replacing its disulfide bridge with varying length thioether linkers. By doing so, we also aimed to generate a versatile scaffold that is resistant to reducing environment and has increased stability in exopeptidase-containing biological environments. We found that the reduction-resistant disulfide-substituted l-2,3-diaminopropionic acid (Dap) variant possessed near-native potency. As MASP-2 is involved in the life-threatening thrombosis in COVID-19 patients, our synthetic, selective MASP-2 inhibitors could be relevant coronavirus drug candidates.
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spelling pubmed-90167122022-04-20 Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides Dürvanger, Zsolt Boros, Eszter Nagy, Zoltán Attila Hegedüs, Rózsa Megyeri, Márton Dobó, József Gál, Péter Schlosser, Gitta Ángyán, Annamária F. Gáspári, Zoltán Perczel, András Harmat, Veronika Mező, Gábor Menyhárd, Dóra K. Pál, Gábor ACS Chem Biol [Image: see text] MASP-1 and MASP-2 are key activator proteases of the complement lectin pathway. The first specific mannose-binding lectin-associated serine protease (MASP) inhibitors had been developed from the 14-amino-acid sunflower trypsin inhibitor (SFTI) peptide by phage display, yielding SFTI-based MASP inhibitors, SFMIs. Here, we present the crystal structure of the MASP-1/SFMI1 complex that we analyzed in comparison to other existing MASP-1/2 structures. Rigidified backbone structure has long been accepted as a structural prerequisite for peptide inhibitors of proteases. We found that a hydrophobic cluster organized around the P2 Thr residue is essential for the structural stability of wild-type SFTI. We also found that the same P2 Thr prevents binding of the rigid SFTI-like peptides to the substrate-binding cleft of both MASPs as the cleft is partially blocked by large gatekeeper enzyme loops. Directed evolution removed this obstacle by replacing the P2 Thr with a Ser, providing the SFMIs with high-degree structural plasticity, which proved to be essential for MASP inhibition. To gain more insight into the structural criteria for SFMI-based MASP-2 inhibition, we systematically modified MASP-2-specific SFMI2 by capping its two termini and by replacing its disulfide bridge with varying length thioether linkers. By doing so, we also aimed to generate a versatile scaffold that is resistant to reducing environment and has increased stability in exopeptidase-containing biological environments. We found that the reduction-resistant disulfide-substituted l-2,3-diaminopropionic acid (Dap) variant possessed near-native potency. As MASP-2 is involved in the life-threatening thrombosis in COVID-19 patients, our synthetic, selective MASP-2 inhibitors could be relevant coronavirus drug candidates. American Chemical Society 2022-04-04 2022-04-15 /pmc/articles/PMC9016712/ /pubmed/35378038 http://dx.doi.org/10.1021/acschembio.2c00114 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Dürvanger, Zsolt
Boros, Eszter
Nagy, Zoltán Attila
Hegedüs, Rózsa
Megyeri, Márton
Dobó, József
Gál, Péter
Schlosser, Gitta
Ángyán, Annamária F.
Gáspári, Zoltán
Perczel, András
Harmat, Veronika
Mező, Gábor
Menyhárd, Dóra K.
Pál, Gábor
Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title_full Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title_fullStr Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title_full_unstemmed Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title_short Directed Evolution-Driven Increase of Structural Plasticity Is a Prerequisite for Binding the Complement Lectin Pathway Blocking MASP-Inhibitor Peptides
title_sort directed evolution-driven increase of structural plasticity is a prerequisite for binding the complement lectin pathway blocking masp-inhibitor peptides
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9016712/
https://www.ncbi.nlm.nih.gov/pubmed/35378038
http://dx.doi.org/10.1021/acschembio.2c00114
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