A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab

Abstract Generally, intermolecular disulfide bond contribute to the conformational protein stability. To identify sites where intermolecular disulfide bond can be introduced into the Fab’s constant domain of the therapeutic IgG, Fab mutants were predicted using the MOE software, a molecular simulato...

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Main Authors: Hitomi Nakamura, Moeka Yoshikawa, Naoko Oda-Ueda, Tadashi Ueda, Takatoshi Ohkuri
Format: Article
Language:English
Published: Nature Publishing Group 2021-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-92225-9
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spelling doaj-bd98ac20ab994f19be7387966c0456702021-06-27T11:31:20ZengNature Publishing GroupScientific Reports2045-23222021-06-0111111010.1038/s41598-021-92225-9A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human FabHitomi Nakamura0Moeka Yoshikawa1Naoko Oda-Ueda2Tadashi Ueda3Takatoshi Ohkuri4Faculty of Pharmaceutical Sciences, Sojo UniversityFaculty of Pharmaceutical Sciences, Sojo UniversityFaculty of Pharmaceutical Sciences, Sojo UniversityGraduate School of Pharmaceutical Sciences, Kyushu UniversityFaculty of Pharmaceutical Sciences, Sojo UniversityAbstract Generally, intermolecular disulfide bond contribute to the conformational protein stability. To identify sites where intermolecular disulfide bond can be introduced into the Fab’s constant domain of the therapeutic IgG, Fab mutants were predicted using the MOE software, a molecular simulator, and expressed in Pichia pastoris. SDS-PAGE analysis of the prepared Fab mutants from P. pastoris indicated that among the nine analyzed Fab mutants, the F130C(H):Q124C(L), F174C(H):S176C(L), V177C(H):Q160C(L), F174C(H):S162C(L), F130C(H):S121C(L), and A145C(H):F116C(L) mutants mostly formed intermolecular disulfide bond. All these mutants showed increased thermal stability compared to that of Fab without intermolecular disulfide bond. In the other mutants, the intermolecular disulfide bond could not be completely formed, and the L132C(H):F118C(L) mutant showed only a slight decrease in binding activity and β-helix content, owing to the exertion of adverse intermolecular disulfide bond effects. Thus, our comprehensive analysis reveals that the introduction of intermolecular disulfide bond in the Fab’s constant domain is possible at various locations. These findings provide important insights for accomplishing human Fab stabilization.https://doi.org/10.1038/s41598-021-92225-9
collection DOAJ
language English
format Article
sources DOAJ
author Hitomi Nakamura
Moeka Yoshikawa
Naoko Oda-Ueda
Tadashi Ueda
Takatoshi Ohkuri
spellingShingle Hitomi Nakamura
Moeka Yoshikawa
Naoko Oda-Ueda
Tadashi Ueda
Takatoshi Ohkuri
A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
Scientific Reports
author_facet Hitomi Nakamura
Moeka Yoshikawa
Naoko Oda-Ueda
Tadashi Ueda
Takatoshi Ohkuri
author_sort Hitomi Nakamura
title A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
title_short A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
title_full A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
title_fullStr A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
title_full_unstemmed A comprehensive analysis of novel disulfide bond introduction site into the constant domain of human Fab
title_sort comprehensive analysis of novel disulfide bond introduction site into the constant domain of human fab
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-06-01
description Abstract Generally, intermolecular disulfide bond contribute to the conformational protein stability. To identify sites where intermolecular disulfide bond can be introduced into the Fab’s constant domain of the therapeutic IgG, Fab mutants were predicted using the MOE software, a molecular simulator, and expressed in Pichia pastoris. SDS-PAGE analysis of the prepared Fab mutants from P. pastoris indicated that among the nine analyzed Fab mutants, the F130C(H):Q124C(L), F174C(H):S176C(L), V177C(H):Q160C(L), F174C(H):S162C(L), F130C(H):S121C(L), and A145C(H):F116C(L) mutants mostly formed intermolecular disulfide bond. All these mutants showed increased thermal stability compared to that of Fab without intermolecular disulfide bond. In the other mutants, the intermolecular disulfide bond could not be completely formed, and the L132C(H):F118C(L) mutant showed only a slight decrease in binding activity and β-helix content, owing to the exertion of adverse intermolecular disulfide bond effects. Thus, our comprehensive analysis reveals that the introduction of intermolecular disulfide bond in the Fab’s constant domain is possible at various locations. These findings provide important insights for accomplishing human Fab stabilization.
url https://doi.org/10.1038/s41598-021-92225-9
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