Literature DB >> 3508295

Relationship of protein flexibility to thermostability.

M Vihinen1.   

Abstract

Thermostability of proteins arises from the simultaneous effect of several forces, which in fact lead to decreased flexibility of the polypeptide chain. This is verified by flexibility indices, which are derived from normalized B-values of individual amino acids in several refined three-dimensional structures. Flexibility indices show that overall flexibility is reduced when thermostability is increased. Protein molecules require both flexibility and rigidity to function, but the higher the temperature optimum and stability the more rigid is the structure needed to compensate for increased thermal fluctuations. Flexibilities of proteins performing the same catalytic activity seem to be about the same at their temperature optima, but the more rigid thermostable proteins reach the flexibility of thermolabile proteins at higher temperatures. In several proteins such as allosteric enzymes, some local sites of flexibility are highly conserved. The relevance of reduced flexibility to overall stability of proteins is also discussed. Flexibility indices and profiles can be used in the design of more stable proteins by site-directed mutagenesis.

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Year:  1987        PMID: 3508295     DOI: 10.1093/protein/1.6.477

Source DB:  PubMed          Journal:  Protein Eng        ISSN: 0269-2139


  75 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2001-01-30       Impact factor: 11.205

Review 2.  Hyperthermophilic enzymes: sources, uses, and molecular mechanisms for thermostability.

Authors:  C Vieille; G J Zeikus
Journal:  Microbiol Mol Biol Rev       Date:  2001-03       Impact factor: 11.056

3.  Pressure-induced thermostabilization of glutamate dehydrogenase from the hyperthermophile Pyrococcus furiosus.

Authors:  M M Sun; N Tolliday; C Vetriani; F T Robb; D S Clark
Journal:  Protein Sci       Date:  1999-05       Impact factor: 6.725

4.  Improved amino acid flexibility parameters.

Authors:  David K Smith; Predrag Radivojac; Zoran Obradovic; A Keith Dunker; Guang Zhu
Journal:  Protein Sci       Date:  2003-05       Impact factor: 6.725

5.  B-factor Analysis and Conformational Rearrangement of Aldose Reductase.

Authors:  Ganesaratnam K Balendiran; J Rajendran Pandian; Evin Drake; Anubhav Vinayak; Malkhey Verma; Duilio Cascio
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6.  Mutations derived from the thermophilic polyhydroxyalkanoate synthase PhaC enhance the thermostability and activity of PhaC from Cupriavidus necator H16.

Authors:  Der-Shyan Sheu; Wen-Ming Chen; Yung-Wei Lai; Rey-Chang Chang
Journal:  J Bacteriol       Date:  2012-03-09       Impact factor: 3.490

7.  Engineering of a type III rubisco from a hyperthermophilic archaeon in order to enhance catalytic performance in mesophilic host cells.

Authors:  Shosuke Yoshida; Haruyuki Atomi; Tadayuki Imanaka
Journal:  Appl Environ Microbiol       Date:  2007-08-03       Impact factor: 4.792

8.  pH-, temperature- and ion-dependent oligomerization of Sulfolobus solfataricus recombinant amidase: a study with site-specific mutants.

Authors:  Laura Politi; Emilia Chiancone; Laura Giangiacomo; Laura Cervoni; Anna Scotto d'Abusco; Stefano Scorsino; Roberto Scandurra
Journal:  Archaea       Date:  2009-02-17       Impact factor: 3.273

9.  Using empirical phase diagrams to understand the role of intramolecular dynamics in immunoglobulin G stability.

Authors:  Joshua D Ramsey; Michelle L Gill; Tim J Kamerzell; E Shane Price; Sangeeta B Joshi; Steven M Bishop; Cynthia N Oliver; C Russell Middaugh
Journal:  J Pharm Sci       Date:  2009-07       Impact factor: 3.534

10.  Flagellar structure and hyperthermophily: analysis of a single flagellin gene and its product in Aquifex pyrophilus.

Authors:  W Behammer; Z Shao; W Mages; R Rachel; K O Stetter; R Schmitt
Journal:  J Bacteriol       Date:  1995-11       Impact factor: 3.490

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