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Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair

A versatile strategy to create an inducible protein assembly with predefined geometry is demonstrated. The assembly is triggered by a binding protein that staples two identical protein bricks together in a predictable spatial conformation. The brick and staple proteins are designed for mutual direct...

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Autores principales: Moreaud, Laureen, Viollet, Sébastien, Urvoas, Agathe, Valerio-Lepiniec, Marie, Mesneau, Agnès, Li de la Sierra-Gallay, Inès, Miller, Jessalyn, Ouldali, Malika, Marcelot, Cécile, Balor, Stéphanie, Soldan, Vanessa, Meriadec, Cristelle, Artzner, Franck, Dujardin, Erik, Minard, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10089216/
https://www.ncbi.nlm.nih.gov/pubmed/36893280
http://dx.doi.org/10.1073/pnas.2218428120
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author Moreaud, Laureen
Viollet, Sébastien
Urvoas, Agathe
Valerio-Lepiniec, Marie
Mesneau, Agnès
Li de la Sierra-Gallay, Inès
Miller, Jessalyn
Ouldali, Malika
Marcelot, Cécile
Balor, Stéphanie
Soldan, Vanessa
Meriadec, Cristelle
Artzner, Franck
Dujardin, Erik
Minard, Philippe
author_facet Moreaud, Laureen
Viollet, Sébastien
Urvoas, Agathe
Valerio-Lepiniec, Marie
Mesneau, Agnès
Li de la Sierra-Gallay, Inès
Miller, Jessalyn
Ouldali, Malika
Marcelot, Cécile
Balor, Stéphanie
Soldan, Vanessa
Meriadec, Cristelle
Artzner, Franck
Dujardin, Erik
Minard, Philippe
author_sort Moreaud, Laureen
collection PubMed
description A versatile strategy to create an inducible protein assembly with predefined geometry is demonstrated. The assembly is triggered by a binding protein that staples two identical protein bricks together in a predictable spatial conformation. The brick and staple proteins are designed for mutual directional affinity and engineered by directed evolution from a synthetic modular repeat protein library. As a proof of concept, this article reports on the spontaneous, extremely fast and quantitative self-assembly of two designed alpha-repeat (αRep) brick and staple proteins into macroscopic tubular superhelices at room temperature. Small-angle X-ray scattering (SAXS) and transmission electron microscopy (TEM with staining agent and cryoTEM) elucidate the resulting superhelical arrangement that precisely matches the a priori intended 3D assembly. The highly ordered, macroscopic biomolecular construction sustains temperatures as high as 75 °C thanks to the robust αRep building blocks. Since the α-helices of the brick and staple proteins are highly programmable, their design allows encoding the geometry and chemical surfaces of the final supramolecular protein architecture. This work opens routes toward the design and fabrication of multiscale protein origami with arbitrarily programmed shapes and chemical functions.
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spelling pubmed-100892162023-09-09 Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair Moreaud, Laureen Viollet, Sébastien Urvoas, Agathe Valerio-Lepiniec, Marie Mesneau, Agnès Li de la Sierra-Gallay, Inès Miller, Jessalyn Ouldali, Malika Marcelot, Cécile Balor, Stéphanie Soldan, Vanessa Meriadec, Cristelle Artzner, Franck Dujardin, Erik Minard, Philippe Proc Natl Acad Sci U S A Biological Sciences A versatile strategy to create an inducible protein assembly with predefined geometry is demonstrated. The assembly is triggered by a binding protein that staples two identical protein bricks together in a predictable spatial conformation. The brick and staple proteins are designed for mutual directional affinity and engineered by directed evolution from a synthetic modular repeat protein library. As a proof of concept, this article reports on the spontaneous, extremely fast and quantitative self-assembly of two designed alpha-repeat (αRep) brick and staple proteins into macroscopic tubular superhelices at room temperature. Small-angle X-ray scattering (SAXS) and transmission electron microscopy (TEM with staining agent and cryoTEM) elucidate the resulting superhelical arrangement that precisely matches the a priori intended 3D assembly. The highly ordered, macroscopic biomolecular construction sustains temperatures as high as 75 °C thanks to the robust αRep building blocks. Since the α-helices of the brick and staple proteins are highly programmable, their design allows encoding the geometry and chemical surfaces of the final supramolecular protein architecture. This work opens routes toward the design and fabrication of multiscale protein origami with arbitrarily programmed shapes and chemical functions. National Academy of Sciences 2023-03-09 2023-03-14 /pmc/articles/PMC10089216/ /pubmed/36893280 http://dx.doi.org/10.1073/pnas.2218428120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Moreaud, Laureen
Viollet, Sébastien
Urvoas, Agathe
Valerio-Lepiniec, Marie
Mesneau, Agnès
Li de la Sierra-Gallay, Inès
Miller, Jessalyn
Ouldali, Malika
Marcelot, Cécile
Balor, Stéphanie
Soldan, Vanessa
Meriadec, Cristelle
Artzner, Franck
Dujardin, Erik
Minard, Philippe
Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title_full Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title_fullStr Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title_full_unstemmed Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title_short Design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
title_sort design, synthesis, and characterization of protein origami based on self-assembly of a brick and staple artificial protein pair
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10089216/
https://www.ncbi.nlm.nih.gov/pubmed/36893280
http://dx.doi.org/10.1073/pnas.2218428120
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