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Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing

One of the most important but still poorly understood issues in protein chemistry is the relationship between sequence and stability of proteins. Here, we present a method for analyzing the influence of each individual residue on the foldability and stability of an entire protein. A randomly mutated...

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Autores principales: Traxlmayr, Michael W., Hasenhindl, Christoph, Hackl, Matthias, Stadlmayr, Gerhard, Rybka, Jakub D., Borth, Nicole, Grillari, Johannes, Rüker, Florian, Obinger, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3469823/
https://www.ncbi.nlm.nih.gov/pubmed/22846908
http://dx.doi.org/10.1016/j.jmb.2012.07.017
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author Traxlmayr, Michael W.
Hasenhindl, Christoph
Hackl, Matthias
Stadlmayr, Gerhard
Rybka, Jakub D.
Borth, Nicole
Grillari, Johannes
Rüker, Florian
Obinger, Christian
author_facet Traxlmayr, Michael W.
Hasenhindl, Christoph
Hackl, Matthias
Stadlmayr, Gerhard
Rybka, Jakub D.
Borth, Nicole
Grillari, Johannes
Rüker, Florian
Obinger, Christian
author_sort Traxlmayr, Michael W.
collection PubMed
description One of the most important but still poorly understood issues in protein chemistry is the relationship between sequence and stability of proteins. Here, we present a method for analyzing the influence of each individual residue on the foldability and stability of an entire protein. A randomly mutated library of the crystallizable fragment of human immunoglobulin G class 1 (IgG1-Fc) was expressed on the surface of yeast, followed by heat incubation at 79 °C and selection of stable variants that still bound to structurally specific ligands. High throughput sequencing allowed comparison of the mutation rate between the starting and selected library pools, enabling the generation of a stability landscape for the entire CH3 domain of human IgG1 at single residue resolution. Its quality was analyzed with respect to (i) the structure of IgG1-Fc, (ii) evolutionarily conserved positions and (iii) in silico calculations of the energy of unfolding of all variants in comparison with the wild-type protein. In addition, this new experimental approach allowed the assignment of functional epitopes of structurally specific ligands used for selection [Fc γ‐receptor I (CD64) and anti-human CH2 domain antibody] to distinct binding regions in the CH2 domain.
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spelling pubmed-34698232012-11-14 Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing Traxlmayr, Michael W. Hasenhindl, Christoph Hackl, Matthias Stadlmayr, Gerhard Rybka, Jakub D. Borth, Nicole Grillari, Johannes Rüker, Florian Obinger, Christian J Mol Biol Article One of the most important but still poorly understood issues in protein chemistry is the relationship between sequence and stability of proteins. Here, we present a method for analyzing the influence of each individual residue on the foldability and stability of an entire protein. A randomly mutated library of the crystallizable fragment of human immunoglobulin G class 1 (IgG1-Fc) was expressed on the surface of yeast, followed by heat incubation at 79 °C and selection of stable variants that still bound to structurally specific ligands. High throughput sequencing allowed comparison of the mutation rate between the starting and selected library pools, enabling the generation of a stability landscape for the entire CH3 domain of human IgG1 at single residue resolution. Its quality was analyzed with respect to (i) the structure of IgG1-Fc, (ii) evolutionarily conserved positions and (iii) in silico calculations of the energy of unfolding of all variants in comparison with the wild-type protein. In addition, this new experimental approach allowed the assignment of functional epitopes of structurally specific ligands used for selection [Fc γ‐receptor I (CD64) and anti-human CH2 domain antibody] to distinct binding regions in the CH2 domain. Elsevier 2012-10-26 /pmc/articles/PMC3469823/ /pubmed/22846908 http://dx.doi.org/10.1016/j.jmb.2012.07.017 Text en © 2012 Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/3.0/ Open Access under CC BY-NC-ND 3.0 (https://creativecommons.org/licenses/by-nc-nd/3.0/) license
spellingShingle Article
Traxlmayr, Michael W.
Hasenhindl, Christoph
Hackl, Matthias
Stadlmayr, Gerhard
Rybka, Jakub D.
Borth, Nicole
Grillari, Johannes
Rüker, Florian
Obinger, Christian
Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title_full Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title_fullStr Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title_full_unstemmed Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title_short Construction of a Stability Landscape of the CH3 Domain of Human IgG1 by Combining Directed Evolution with High Throughput Sequencing
title_sort construction of a stability landscape of the ch3 domain of human igg1 by combining directed evolution with high throughput sequencing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3469823/
https://www.ncbi.nlm.nih.gov/pubmed/22846908
http://dx.doi.org/10.1016/j.jmb.2012.07.017
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