Literature DB >> 10339416

Thermodynamics of the unfolding of the cold-shock protein from Thermotoga maritima.

D Wassenberg1, C Welker, R Jaenicke.   

Abstract

Proteins from (hyper-)thermophiles are known to exhibit high intrinsic stabilities. Commonly, their thermodynamic characterization is impeded by irreversible side reactions of the thermal analysis or calorimetrical problems. Small single-domain proteins are suitable candidates to overcome these obstacles. Here, the thermodynamics of the thermal denaturation of the recombinant cold-shock protein (Csp) from the hyperthermophilic bacterium Thermotoga maritima (Tm) was studied by differential scanning calorimetry. The unfolding transition can be described over a broad pH range (3.5-8.5) by a reversible two-state process. Maximum stability (DeltaG (25 degrees C)=6.5 kcal/mol) was observed at pH 5-6 where Tm Csp unfolds with a melting temperature at 95 degrees C. The heat capacity difference between the native and the denatured states is 1.1(+/-0.1) kcal/(mol K). At pH 7, thermal denaturation occurs at 82 degrees C. The corresponding free energy profile has its maximum at 30 degrees C with DeltaGN-->U=4.8(+/-0.5) kcal/mol. At the optimal growth temperature of T. maritima (80 degrees C), Tm Csp in the absence of ligands is only marginally stable, with a free energy of stabilization not far beyond the thermal energy. With the known stabilizing effect of nucleic acids in mind, this suggests a highly dynamical interaction of Tm Csp with its target molecules. Copyright 1999 Academic Press.

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Year:  1999        PMID: 10339416     DOI: 10.1006/jmbi.1999.2772

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  13 in total

1.  Contribution of proton linkage to the thermodynamic stability of the major cold-shock protein of Escherichia coli CspA.

Authors:  S A Petrosian; G I Makhatadze
Journal:  Protein Sci       Date:  2000-02       Impact factor: 6.725

2.  Some thermodynamic implications for the thermostability of proteins.

Authors:  D C Rees; A D Robertson
Journal:  Protein Sci       Date:  2001-06       Impact factor: 6.725

3.  High-temperature solution NMR structure of TmCsp.

Authors:  Astrid Jung; Christian Bamann; Werner Kremer; Hans Robert Kalbitzer; Eike Brunner
Journal:  Protein Sci       Date:  2004-02       Impact factor: 6.725

4.  Toward the physical basis of thermophilic proteins: linking of enriched polar interactions and reduced heat capacity of unfolding.

Authors:  Huan-Xiang Zhou
Journal:  Biophys J       Date:  2002-12       Impact factor: 4.033

5.  Role of residual structure in the unfolded state of a thermophilic protein.

Authors:  Srebrenka Robic; Mercedes Guzman-Casado; Jose M Sanchez-Ruiz; Susan Marqusee
Journal:  Proc Natl Acad Sci U S A       Date:  2003-09-22       Impact factor: 11.205

6.  The origin of nonmonotonic complex behavior and the effects of nonnative interactions on the diffusive properties of protein folding.

Authors:  Ronaldo J Oliveira; Paul C Whitford; Jorge Chahine; Jin Wang; José N Onuchic; Vitor B P Leite
Journal:  Biophys J       Date:  2010-07-21       Impact factor: 4.033

7.  Type III secretion system effector proteins are mechanically labile.

Authors:  Marc-André LeBlanc; Morgan R Fink; Thomas T Perkins; Marcelo C Sousa
Journal:  Proc Natl Acad Sci U S A       Date:  2021-03-23       Impact factor: 11.205

Review 8.  Lessons in stability from thermophilic proteins.

Authors:  Abbas Razvi; J Martin Scholtz
Journal:  Protein Sci       Date:  2006-07       Impact factor: 6.725

9.  Ultrafast dynamics of protein collapse from single-molecule photon statistics.

Authors:  Daniel Nettels; Irina V Gopich; Armin Hoffmann; Benjamin Schuler
Journal:  Proc Natl Acad Sci U S A       Date:  2007-02-14       Impact factor: 11.205

10.  Thermal and conformational stability of Ssh10b protein from archaeon Sulfolobus shibattae.

Authors:  Su Xu; Sanbo Qin; Xian-Ming Pan
Journal:  Biochem J       Date:  2004-09-01       Impact factor: 3.857

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