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Rational design of alpha-helical tandem repeat proteins with closed architectures

Tandem repeat proteins, which are formed by repetition of modular units of protein sequence and structure, play important biological roles as macromolecular binding and scaffolding domains, enzymes, and building blocks for the assembly of fibrous materials(1,2). The modular nature of repeat proteins...

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Autores principales: Doyle, Lindsey, Hallinan, Jazmine, Bolduc, Jill, Parmeggiani, Fabio, Baker, David, Stoddard, Barry L., Bradley, Philip
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727831/
https://www.ncbi.nlm.nih.gov/pubmed/26675735
http://dx.doi.org/10.1038/nature16191
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author Doyle, Lindsey
Hallinan, Jazmine
Bolduc, Jill
Parmeggiani, Fabio
Baker, David
Stoddard, Barry L.
Bradley, Philip
author_facet Doyle, Lindsey
Hallinan, Jazmine
Bolduc, Jill
Parmeggiani, Fabio
Baker, David
Stoddard, Barry L.
Bradley, Philip
author_sort Doyle, Lindsey
collection PubMed
description Tandem repeat proteins, which are formed by repetition of modular units of protein sequence and structure, play important biological roles as macromolecular binding and scaffolding domains, enzymes, and building blocks for the assembly of fibrous materials(1,2). The modular nature of repeat proteins enables the rapid construction and diversification of extended binding surfaces by duplication and recombination of simple building blocks(3,4). The overall architecture of tandem repeat protein structures – which is dictated by the internal geometry and local packing of the repeat building blocks – is highly diverse, ranging from extended, super-helical folds that bind peptide, DNA, and RNA partners(5–9), to closed and compact conformations with internal cavities suitable for small molecule binding and catalysis(10). Here we report the development and validation of computational methods for de novo design of tandem repeat protein architectures driven purely by geometric criteria defining the inter-repeat geometry, without reference to the sequences and structures of existing repeat protein families. We have applied these methods to design a series of closed alpha-solenoid(11) repeat structures (alpha-toroids) in which the inter-repeat packing geometry is constrained so as to juxtapose the N- and C-termini; several of these designed structures have been validated by X-ray crystallography. Unlike previous approaches to tandem repeat protein engineering(12–20), our design procedure does not rely on template sequence or structural information taken from natural repeat proteins and hence can produce structures unlike those seen in nature. As an example, we have successfully designed and validated closed alpha-solenoid repeats with a left-handed helical architecture that – to our knowledge – is not yet present in the protein structure database(21).
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spelling pubmed-47278312016-06-16 Rational design of alpha-helical tandem repeat proteins with closed architectures Doyle, Lindsey Hallinan, Jazmine Bolduc, Jill Parmeggiani, Fabio Baker, David Stoddard, Barry L. Bradley, Philip Nature Article Tandem repeat proteins, which are formed by repetition of modular units of protein sequence and structure, play important biological roles as macromolecular binding and scaffolding domains, enzymes, and building blocks for the assembly of fibrous materials(1,2). The modular nature of repeat proteins enables the rapid construction and diversification of extended binding surfaces by duplication and recombination of simple building blocks(3,4). The overall architecture of tandem repeat protein structures – which is dictated by the internal geometry and local packing of the repeat building blocks – is highly diverse, ranging from extended, super-helical folds that bind peptide, DNA, and RNA partners(5–9), to closed and compact conformations with internal cavities suitable for small molecule binding and catalysis(10). Here we report the development and validation of computational methods for de novo design of tandem repeat protein architectures driven purely by geometric criteria defining the inter-repeat geometry, without reference to the sequences and structures of existing repeat protein families. We have applied these methods to design a series of closed alpha-solenoid(11) repeat structures (alpha-toroids) in which the inter-repeat packing geometry is constrained so as to juxtapose the N- and C-termini; several of these designed structures have been validated by X-ray crystallography. Unlike previous approaches to tandem repeat protein engineering(12–20), our design procedure does not rely on template sequence or structural information taken from natural repeat proteins and hence can produce structures unlike those seen in nature. As an example, we have successfully designed and validated closed alpha-solenoid repeats with a left-handed helical architecture that – to our knowledge – is not yet present in the protein structure database(21). 2015-12-16 2015-12-24 /pmc/articles/PMC4727831/ /pubmed/26675735 http://dx.doi.org/10.1038/nature16191 Text en Reprints and permissions information is available at www.nature.com/reprints
spellingShingle Article
Doyle, Lindsey
Hallinan, Jazmine
Bolduc, Jill
Parmeggiani, Fabio
Baker, David
Stoddard, Barry L.
Bradley, Philip
Rational design of alpha-helical tandem repeat proteins with closed architectures
title Rational design of alpha-helical tandem repeat proteins with closed architectures
title_full Rational design of alpha-helical tandem repeat proteins with closed architectures
title_fullStr Rational design of alpha-helical tandem repeat proteins with closed architectures
title_full_unstemmed Rational design of alpha-helical tandem repeat proteins with closed architectures
title_short Rational design of alpha-helical tandem repeat proteins with closed architectures
title_sort rational design of alpha-helical tandem repeat proteins with closed architectures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727831/
https://www.ncbi.nlm.nih.gov/pubmed/26675735
http://dx.doi.org/10.1038/nature16191
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