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Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons

One approach to protein assembly involves water‐soluble supramolecular receptors that act like glues. Bionanoarchitectures directed by these scaffolds are often system‐specific, with few studies investigating their customization. Herein, the modulation of cucurbituril‐mediated protein assemblies thr...

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Autores principales: Ramberg, Kiefer O., Guagnini, Francesca, Engilberge, Sylvain, Wrońska, Małgorzata A., Rennie, Martin L., Pérez, Javier, Crowley, Peter B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8596587/
https://www.ncbi.nlm.nih.gov/pubmed/34432924
http://dx.doi.org/10.1002/chem.202103025
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author Ramberg, Kiefer O.
Guagnini, Francesca
Engilberge, Sylvain
Wrońska, Małgorzata A.
Rennie, Martin L.
Pérez, Javier
Crowley, Peter B.
author_facet Ramberg, Kiefer O.
Guagnini, Francesca
Engilberge, Sylvain
Wrońska, Małgorzata A.
Rennie, Martin L.
Pérez, Javier
Crowley, Peter B.
author_sort Ramberg, Kiefer O.
collection PubMed
description One approach to protein assembly involves water‐soluble supramolecular receptors that act like glues. Bionanoarchitectures directed by these scaffolds are often system‐specific, with few studies investigating their customization. Herein, the modulation of cucurbituril‐mediated protein assemblies through the inclusion of peptide tectons is described. Three peptides of varying length and structural order were N‐terminally appended to RSL, a β‐propeller building block. Each fusion protein was incorporated into crystalline architectures mediated by cucurbit[7]uril (Q7). A trimeric coiled‐coil served as a spacer within a Q7‐directed sheet assembly of RSL, giving rise to a layered material of varying porosity. Within the spacer layers, the coiled‐coils were dynamic. This result prompted consideration of intrinsically disordered peptides (IDPs) as modulatory tectons. Similar to the coiled‐coil, a mussel adhesion peptide (Mefp) also acted as a spacer between protein–Q7 sheets. In contrast, the fusion of a nucleoporin peptide (Nup) to RSL did not recapitulate the sheet assembly. Instead, a Q7‐directed cage was adopted, within which disordered Nup peptides were partially “captured” by Q7 receptors. IDP capture occurred by macrocycle recognition of an intrapeptide Phe‐Gly motif in which the benzyl group was encapsulated by Q7. The modularity of these protein–cucurbituril architectures adds a new dimension to macrocycle‐mediated protein assembly. Segregated protein crystals, with alternating layers of high and low porosity, could provide a basis for new types of materials.
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spelling pubmed-85965872021-11-22 Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons Ramberg, Kiefer O. Guagnini, Francesca Engilberge, Sylvain Wrońska, Małgorzata A. Rennie, Martin L. Pérez, Javier Crowley, Peter B. Chemistry Full Papers One approach to protein assembly involves water‐soluble supramolecular receptors that act like glues. Bionanoarchitectures directed by these scaffolds are often system‐specific, with few studies investigating their customization. Herein, the modulation of cucurbituril‐mediated protein assemblies through the inclusion of peptide tectons is described. Three peptides of varying length and structural order were N‐terminally appended to RSL, a β‐propeller building block. Each fusion protein was incorporated into crystalline architectures mediated by cucurbit[7]uril (Q7). A trimeric coiled‐coil served as a spacer within a Q7‐directed sheet assembly of RSL, giving rise to a layered material of varying porosity. Within the spacer layers, the coiled‐coils were dynamic. This result prompted consideration of intrinsically disordered peptides (IDPs) as modulatory tectons. Similar to the coiled‐coil, a mussel adhesion peptide (Mefp) also acted as a spacer between protein–Q7 sheets. In contrast, the fusion of a nucleoporin peptide (Nup) to RSL did not recapitulate the sheet assembly. Instead, a Q7‐directed cage was adopted, within which disordered Nup peptides were partially “captured” by Q7 receptors. IDP capture occurred by macrocycle recognition of an intrapeptide Phe‐Gly motif in which the benzyl group was encapsulated by Q7. The modularity of these protein–cucurbituril architectures adds a new dimension to macrocycle‐mediated protein assembly. Segregated protein crystals, with alternating layers of high and low porosity, could provide a basis for new types of materials. John Wiley and Sons Inc. 2021-09-29 2021-10-21 /pmc/articles/PMC8596587/ /pubmed/34432924 http://dx.doi.org/10.1002/chem.202103025 Text en © 2021 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full Papers
Ramberg, Kiefer O.
Guagnini, Francesca
Engilberge, Sylvain
Wrońska, Małgorzata A.
Rennie, Martin L.
Pérez, Javier
Crowley, Peter B.
Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title_full Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title_fullStr Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title_full_unstemmed Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title_short Segregated Protein–Cucurbit[7]uril Crystalline Architectures via Modulatory Peptide Tectons
title_sort segregated protein–cucurbit[7]uril crystalline architectures via modulatory peptide tectons
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8596587/
https://www.ncbi.nlm.nih.gov/pubmed/34432924
http://dx.doi.org/10.1002/chem.202103025
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