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Backbone circularization of Bacillus subtilis family 11 xylanase increases its thermostability and its resistance against aggregation.
Waldhauer, Max C; Schmitz, Silvan N; Ahlmann-Eltze, Constantin; Gleixner, Jan G; Schmelas, Carolin C; Huhn, Anna G; Bunne, Charlotte; Büscher, Magdalena; Horn, Max; Klughammer, Nils; Kreft, Jakob; Schäfer, Elisabeth; Bayer, Philipp A; Krämer, Stephen G; Neugebauer, Julia; Wehler, Pierre; Mayer, Matthias P; Eils, Roland; Di Ventura, Barbara.
Afiliação
  • Waldhauer MC; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Schmitz SN; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Ahlmann-Eltze C; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Gleixner JG; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Schmelas CC; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Huhn AG; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Bunne C; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Büscher M; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Horn M; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Klughammer N; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Kreft J; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Schäfer E; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Bayer PA; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Krämer SG; German Cancer Research Center (DKFZ), Division of Theoretical Bioinformatics, Heidelberg, Germany.
  • Neugebauer J; German Cancer Research Center (DKFZ), Division of Theoretical Bioinformatics, Heidelberg, Germany.
  • Wehler P; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
  • Mayer MP; Zentrum für Molekulare Biologie der Universität Heidelberg (ZMBH), DKFZ-ZMBH-Alliance, Heidelberg, Germany.
  • Eils R; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de and German Cancer Research Center (DKFZ), Division of Theoretical Bioinformatics, Heidelberg, Germany.
  • Di Ventura B; Center for Quantitative Analysis of Molecular and Cellular Biosystems (BioQuant), University of Heidelberg, Germany. barbara.diventura@bioquant.uni-heidelberg.de.
Mol Biosyst ; 11(12): 3231-43, 2015 Dec.
Article em En | MEDLINE | ID: mdl-26434634
ABSTRACT
The activity of proteins is dictated by their three-dimensional structure, the native state, and is influenced by their ability to remain in or return to the folded native state under physiological conditions. Backbone circularization is thought to increase protein stability by decreasing the conformational entropy in the unfolded state. A positive effect of circularization on stability has been shown for several proteins. Here, we report the development of a cloning standard that facilitates implementing the SICLOPPS technology to circularize proteins of interest using split inteins. To exemplify the usage of the cloning standard we constructed two circularization vectors based on the Npu DnaE and gp41-1 split inteins, respectively. We use these vectors to overexpress in Escherichia coli circular forms of the Bacillus subtilis enzyme family 11 xylanase that differ in the identity and number of additional amino acids used for circularization (exteins). We found that the variant circularized with only one additional serine has increased thermostability of 7 °C compared to native xylanase. The variant circularized with six additional amino acids has only a mild increase in thermostability compared to the corresponding exteins-bearing linear xylanase, but is less stable than native xylanase. However, this circular xylanase retains more than 50% of its activity after heat shock at elevated temperatures, while native xylanase and the corresponding exteins-bearing linear xylanase are largely inactivated. We correlate this residual activity to the fewer protein aggregates found in the test tubes of circular xylanase after heat shock, suggesting that circularization protects the protein from aggregation under these conditions. Taken together, these data indicate that backbone circularization has a positive effect on xylanase and can lead to increased thermostability, provided the appropriate exteins are selected. We believe that our cloning standard and circularization vectors will facilitate testing the effects of circularization on other proteins.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Bacillus subtilis / Proteínas de Bactérias / Xilosidases / Agregados Proteicos Idioma: En Revista: Mol Biosyst Assunto da revista: BIOLOGIA MOLECULAR / BIOQUIMICA Ano de publicação: 2015 Tipo de documento: Article País de afiliação: Alemanha

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Bacillus subtilis / Proteínas de Bactérias / Xilosidases / Agregados Proteicos Idioma: En Revista: Mol Biosyst Assunto da revista: BIOLOGIA MOLECULAR / BIOQUIMICA Ano de publicação: 2015 Tipo de documento: Article País de afiliação: Alemanha