Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.

Human immunoglobulin heavy chain variable domains (VH) are promising scaffolds for antigen binding. However, VH is an unstable and aggregation-prone protein, hindering its use for therapeutic purposes. To evolve the VH domain, we performed in vivo protein solubility selection that linked antibiotic...

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Main Authors: Dong-Sik Kim, Hyung-Nam Song, Hyo Jung Nam, Sung-Geun Kim, Young-Seoub Park, Jae-Chan Park, Eui-Jeon Woo, Hyung-Kwon Lim
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4043505?pdf=render
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spelling doaj-a6db97cca5dc4d8b990aa3767fa04c542020-11-25T01:20:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0196e9817810.1371/journal.pone.0098178Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.Dong-Sik KimHyung-Nam SongHyo Jung NamSung-Geun KimYoung-Seoub ParkJae-Chan ParkEui-Jeon WooHyung-Kwon LimHuman immunoglobulin heavy chain variable domains (VH) are promising scaffolds for antigen binding. However, VH is an unstable and aggregation-prone protein, hindering its use for therapeutic purposes. To evolve the VH domain, we performed in vivo protein solubility selection that linked antibiotic resistance to the protein folding quality control mechanism of the twin-arginine translocation pathway of E. coli. After screening a human germ-line VH library, 95% of the VH proteins obtained were identified as VH3 family members; one VH protein, MG2x1, stood out among separate clones expressing individual VH variants. With further screening of combinatorial framework mutation library of MG2x1, we found a consistent bias toward substitution with tryptophan at the position of 50 and 58 in VH. Comparison of the crystal structures of the VH variants revealed that those substitutions with bulky side chain amino acids filled the cavity in the VH interface between heavy and light chains of the Fab arrangement along with the increased number of hydrogen bonds, decreased solvation energy, and increased negative charge. Accordingly, the engineered VH acquires an increased level of thermodynamic stability, reversible folding, and soluble expression. The library built with the VH variant as a scaffold was qualified as most of VH clones selected randomly were expressed as soluble form in E. coli regardless length of the combinatorial CDR. Furthermore, a non-aggregation feature of the selected VH conferred a free of humoral response in mice, even when administered together with adjuvant. As a result, this selection provides an alternative directed evolution pathway for unstable proteins, which are distinct from conventional methods based on the phage display.http://europepmc.org/articles/PMC4043505?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Dong-Sik Kim
Hyung-Nam Song
Hyo Jung Nam
Sung-Geun Kim
Young-Seoub Park
Jae-Chan Park
Eui-Jeon Woo
Hyung-Kwon Lim
spellingShingle Dong-Sik Kim
Hyung-Nam Song
Hyo Jung Nam
Sung-Geun Kim
Young-Seoub Park
Jae-Chan Park
Eui-Jeon Woo
Hyung-Kwon Lim
Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
PLoS ONE
author_facet Dong-Sik Kim
Hyung-Nam Song
Hyo Jung Nam
Sung-Geun Kim
Young-Seoub Park
Jae-Chan Park
Eui-Jeon Woo
Hyung-Kwon Lim
author_sort Dong-Sik Kim
title Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
title_short Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
title_full Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
title_fullStr Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
title_full_unstemmed Directed evolution of human heavy chain variable domain (VH) using in vivo protein fitness filter.
title_sort directed evolution of human heavy chain variable domain (vh) using in vivo protein fitness filter.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Human immunoglobulin heavy chain variable domains (VH) are promising scaffolds for antigen binding. However, VH is an unstable and aggregation-prone protein, hindering its use for therapeutic purposes. To evolve the VH domain, we performed in vivo protein solubility selection that linked antibiotic resistance to the protein folding quality control mechanism of the twin-arginine translocation pathway of E. coli. After screening a human germ-line VH library, 95% of the VH proteins obtained were identified as VH3 family members; one VH protein, MG2x1, stood out among separate clones expressing individual VH variants. With further screening of combinatorial framework mutation library of MG2x1, we found a consistent bias toward substitution with tryptophan at the position of 50 and 58 in VH. Comparison of the crystal structures of the VH variants revealed that those substitutions with bulky side chain amino acids filled the cavity in the VH interface between heavy and light chains of the Fab arrangement along with the increased number of hydrogen bonds, decreased solvation energy, and increased negative charge. Accordingly, the engineered VH acquires an increased level of thermodynamic stability, reversible folding, and soluble expression. The library built with the VH variant as a scaffold was qualified as most of VH clones selected randomly were expressed as soluble form in E. coli regardless length of the combinatorial CDR. Furthermore, a non-aggregation feature of the selected VH conferred a free of humoral response in mice, even when administered together with adjuvant. As a result, this selection provides an alternative directed evolution pathway for unstable proteins, which are distinct from conventional methods based on the phage display.
url http://europepmc.org/articles/PMC4043505?pdf=render
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