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Computational design of symmetrical eight-bladed β-propeller proteins

β-Propeller proteins form one of the largest families of protein structures, with a pseudo-symmetrical fold made up of subdomains called blades. They are not only abundant but are also involved in a wide variety of cellular processes, often by acting as a platform for the assembly of protein complex...

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Autores principales: Noguchi, Hiroki, Addy, Christine, Simoncini, David, Wouters, Staf, Mylemans, Bram, Van Meervelt, Luc, Schiex, Thomas, Zhang, Kam Y. J., Tame, Jeremy R. H., Voet, Arnout R. D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6327176/
https://www.ncbi.nlm.nih.gov/pubmed/30713702
http://dx.doi.org/10.1107/S205225251801480X
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author Noguchi, Hiroki
Addy, Christine
Simoncini, David
Wouters, Staf
Mylemans, Bram
Van Meervelt, Luc
Schiex, Thomas
Zhang, Kam Y. J.
Tame, Jeremy R. H.
Voet, Arnout R. D.
author_facet Noguchi, Hiroki
Addy, Christine
Simoncini, David
Wouters, Staf
Mylemans, Bram
Van Meervelt, Luc
Schiex, Thomas
Zhang, Kam Y. J.
Tame, Jeremy R. H.
Voet, Arnout R. D.
author_sort Noguchi, Hiroki
collection PubMed
description β-Propeller proteins form one of the largest families of protein structures, with a pseudo-symmetrical fold made up of subdomains called blades. They are not only abundant but are also involved in a wide variety of cellular processes, often by acting as a platform for the assembly of protein complexes. WD40 proteins are a subfamily of propeller proteins with no intrinsic enzymatic activity, but their stable, modular architecture and versatile surface have allowed evolution to adapt them to many vital roles. By computationally reverse-engineering the duplication, fusion and diversification events in the evolutionary history of a WD40 protein, a perfectly symmetrical homologue called Tako8 was made. If two or four blades of Tako8 are expressed as single polypeptides, they do not self-assemble to complete the eight-bladed architecture, which may be owing to the closely spaced negative charges inside the ring. A different computational approach was employed to redesign Tako8 to create Ika8, a fourfold-symmetrical protein in which neighbouring blades carry compensating charges. Ika2 and Ika4, carrying two or four blades per subunit, respectively, were found to assemble spontaneously into a complete eight-bladed ring in solution. These artificial eight-bladed rings may find applications in bionanotechnology and as models to study the folding and evolution of WD40 proteins.
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spelling pubmed-63271762019-02-01 Computational design of symmetrical eight-bladed β-propeller proteins Noguchi, Hiroki Addy, Christine Simoncini, David Wouters, Staf Mylemans, Bram Van Meervelt, Luc Schiex, Thomas Zhang, Kam Y. J. Tame, Jeremy R. H. Voet, Arnout R. D. IUCrJ Research Papers β-Propeller proteins form one of the largest families of protein structures, with a pseudo-symmetrical fold made up of subdomains called blades. They are not only abundant but are also involved in a wide variety of cellular processes, often by acting as a platform for the assembly of protein complexes. WD40 proteins are a subfamily of propeller proteins with no intrinsic enzymatic activity, but their stable, modular architecture and versatile surface have allowed evolution to adapt them to many vital roles. By computationally reverse-engineering the duplication, fusion and diversification events in the evolutionary history of a WD40 protein, a perfectly symmetrical homologue called Tako8 was made. If two or four blades of Tako8 are expressed as single polypeptides, they do not self-assemble to complete the eight-bladed architecture, which may be owing to the closely spaced negative charges inside the ring. A different computational approach was employed to redesign Tako8 to create Ika8, a fourfold-symmetrical protein in which neighbouring blades carry compensating charges. Ika2 and Ika4, carrying two or four blades per subunit, respectively, were found to assemble spontaneously into a complete eight-bladed ring in solution. These artificial eight-bladed rings may find applications in bionanotechnology and as models to study the folding and evolution of WD40 proteins. International Union of Crystallography 2019-01-01 /pmc/articles/PMC6327176/ /pubmed/30713702 http://dx.doi.org/10.1107/S205225251801480X Text en © Hiroki Noguchi et al. 2019 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/2.0/uk/
spellingShingle Research Papers
Noguchi, Hiroki
Addy, Christine
Simoncini, David
Wouters, Staf
Mylemans, Bram
Van Meervelt, Luc
Schiex, Thomas
Zhang, Kam Y. J.
Tame, Jeremy R. H.
Voet, Arnout R. D.
Computational design of symmetrical eight-bladed β-propeller proteins
title Computational design of symmetrical eight-bladed β-propeller proteins
title_full Computational design of symmetrical eight-bladed β-propeller proteins
title_fullStr Computational design of symmetrical eight-bladed β-propeller proteins
title_full_unstemmed Computational design of symmetrical eight-bladed β-propeller proteins
title_short Computational design of symmetrical eight-bladed β-propeller proteins
title_sort computational design of symmetrical eight-bladed β-propeller proteins
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6327176/
https://www.ncbi.nlm.nih.gov/pubmed/30713702
http://dx.doi.org/10.1107/S205225251801480X
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