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Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties

Recombinant thermostable direct hemolysin from Grimontia hollisae (Gh-rTDH) exhibits paradoxical Arrhenius effect, where the hemolytic activity is inactivated by heating at 60 (o)C but is reactivated by additional heating above 80 (o)C. This study investigated individual or collective mutational eff...

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Autores principales: Wang, Yu-Kuo, Huang, Sheng-Cih, Wu, Yi-Fang, Chen, Yu-Ching, Lin, Yen-Ling, Nayak, Manoswini, Lin, Yan Ren, Chen, Wen-Hung, Chiu, Yi-Rong, Li, Thomas Tien-Hsiung, Yeh, Bo-Sou, Wu, Tung-Kung
Formato: Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3076507/
https://www.ncbi.nlm.nih.gov/pubmed/21494434
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author Wang, Yu-Kuo
Huang, Sheng-Cih
Wu, Yi-Fang
Chen, Yu-Ching
Lin, Yen-Ling
Nayak, Manoswini
Lin, Yan Ren
Chen, Wen-Hung
Chiu, Yi-Rong
Li, Thomas Tien-Hsiung
Yeh, Bo-Sou
Wu, Tung-Kung
author_facet Wang, Yu-Kuo
Huang, Sheng-Cih
Wu, Yi-Fang
Chen, Yu-Ching
Lin, Yen-Ling
Nayak, Manoswini
Lin, Yan Ren
Chen, Wen-Hung
Chiu, Yi-Rong
Li, Thomas Tien-Hsiung
Yeh, Bo-Sou
Wu, Tung-Kung
author_sort Wang, Yu-Kuo
collection PubMed
description Recombinant thermostable direct hemolysin from Grimontia hollisae (Gh-rTDH) exhibits paradoxical Arrhenius effect, where the hemolytic activity is inactivated by heating at 60 (o)C but is reactivated by additional heating above 80 (o)C. This study investigated individual or collective mutational effect of Tyr53, Thr59, and Ser63 positions of Gh-rTDH on hemolytic activity, Arrhenius effect, and biophysical properties. In contrast to the Gh-rTDH wild-type (Gh-rTDH(WT)) protein, a 2-fold decrease of hemolytic activity and alteration of Arrhenius effect could be detected from the Gh-rTDH(Y53H/T59I) and Gh-rTDH(T59I/S63T) double-mutants and the Gh-rTDH(Y53H/T59I/S63T) triple-mutant. Differential scanning calorimetry results showed that the Arrhenius effect-loss and -retaining mutants consistently exhibited higher and lower endothermic transition temperatures, respectively, than that of the Gh-rTDH(WT). Circular dichroism measurements of Gh-rTDH(WT) and Gh-rTDH(mut) showed a conspicuous change from a β-sheet to α-helix structure around the endothermic transition temperature. Consistent with the observation is the conformational change of the proteins from native globular form into fibrillar form, as determined by Congo red experiments and transmission electron microscopy.
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spelling pubmed-30765072011-04-14 Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties Wang, Yu-Kuo Huang, Sheng-Cih Wu, Yi-Fang Chen, Yu-Ching Lin, Yen-Ling Nayak, Manoswini Lin, Yan Ren Chen, Wen-Hung Chiu, Yi-Rong Li, Thomas Tien-Hsiung Yeh, Bo-Sou Wu, Tung-Kung Int J Biol Sci Research Paper Recombinant thermostable direct hemolysin from Grimontia hollisae (Gh-rTDH) exhibits paradoxical Arrhenius effect, where the hemolytic activity is inactivated by heating at 60 (o)C but is reactivated by additional heating above 80 (o)C. This study investigated individual or collective mutational effect of Tyr53, Thr59, and Ser63 positions of Gh-rTDH on hemolytic activity, Arrhenius effect, and biophysical properties. In contrast to the Gh-rTDH wild-type (Gh-rTDH(WT)) protein, a 2-fold decrease of hemolytic activity and alteration of Arrhenius effect could be detected from the Gh-rTDH(Y53H/T59I) and Gh-rTDH(T59I/S63T) double-mutants and the Gh-rTDH(Y53H/T59I/S63T) triple-mutant. Differential scanning calorimetry results showed that the Arrhenius effect-loss and -retaining mutants consistently exhibited higher and lower endothermic transition temperatures, respectively, than that of the Gh-rTDH(WT). Circular dichroism measurements of Gh-rTDH(WT) and Gh-rTDH(mut) showed a conspicuous change from a β-sheet to α-helix structure around the endothermic transition temperature. Consistent with the observation is the conformational change of the proteins from native globular form into fibrillar form, as determined by Congo red experiments and transmission electron microscopy. Ivyspring International Publisher 2011-03-31 /pmc/articles/PMC3076507/ /pubmed/21494434 Text en © Ivyspring International Publisher. This is an open-access article distributed under the terms of the Creative Commons License (http://creativecommons.org/licenses/by-nc-nd/3.0/). Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited.
spellingShingle Research Paper
Wang, Yu-Kuo
Huang, Sheng-Cih
Wu, Yi-Fang
Chen, Yu-Ching
Lin, Yen-Ling
Nayak, Manoswini
Lin, Yan Ren
Chen, Wen-Hung
Chiu, Yi-Rong
Li, Thomas Tien-Hsiung
Yeh, Bo-Sou
Wu, Tung-Kung
Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title_full Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title_fullStr Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title_full_unstemmed Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title_short Site-Directed Mutations of Thermostable Direct Hemolysin from Grimontia hollisae Alter Its Arrhenius Effect and Biophysical Properties
title_sort site-directed mutations of thermostable direct hemolysin from grimontia hollisae alter its arrhenius effect and biophysical properties
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3076507/
https://www.ncbi.nlm.nih.gov/pubmed/21494434
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