Literature DB >> 14983065

Optimized electrostatic surfaces parallel increased thermostability: a structural bioinformatic analysis.

Eric Alsop1, Melanie Silver, Dennis R Livesay.   

Abstract

It has been known for some time that thermophilic proteins generally have increased numbers of non-covalent interactions (salt bridges, hydrogen bonds, etc.) compared with their mesophilic orthologs. Recently, anecdotal structural comparisons suggest that non-specific acid-base ion pairs on the protein surface can be an evolutionary efficient mechanism to increase thermostability. In this comprehensive structural analysis, we confirm this to be the case. Comparison of 127 orthologous mesophilic- thermophilic protein groups indicates a clear preference for stabilizing acid-base pairs on the surface of thermophilic proteins. Compared with positions in the core, stabilizing surface mutations are less likely to disrupt the tertiary structure, and thus more likely to be evolutionarily selected. Therefore, we believe that our results, in addition to being theoretically interesting, will facilitate identification of charge-altering mutations likely to increase the stability of a particular protein structure.

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Year:  2003        PMID: 14983065     DOI: 10.1093/protein/gzg131

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


  11 in total

1.  Comparison of the structural basis for thermal stability between archaeal and bacterial proteins.

Authors:  Yanrui Ding; Yujie Cai; Yonggang Han; Bingqiang Zhao
Journal:  Extremophiles       Date:  2011-10-21       Impact factor: 2.395

2.  In silico characterization of thermostable lipases.

Authors:  Debamitra Chakravorty; Saravanan Parameswaran; Vikash Kumar Dubey; Sanjukta Patra
Journal:  Extremophiles       Date:  2010-12-12       Impact factor: 2.395

3.  Genomic and proteomic adaptations to growth at high temperature.

Authors:  Donal A Hickey; Gregory A C Singer
Journal:  Genome Biol       Date:  2004-09-30       Impact factor: 13.583

4.  Shape and evolution of thermostable protein structure.

Authors:  Ryan G Coleman; Kim A Sharp
Journal:  Proteins       Date:  2010-02-01

5.  In Silico Analysis of β-Galactosidases Primary and Secondary Structure in relation to Temperature Adaptation.

Authors:  Vijay Kumar; Nikhil Sharma; Tek Chand Bhalla
Journal:  J Amino Acids       Date:  2014-03-24

6.  Protein thermal stability enhancement by designing salt bridges: a combined computational and experimental study.

Authors:  Chi-Wen Lee; Hsiu-Jung Wang; Jenn-Kang Hwang; Ching-Ping Tseng
Journal:  PLoS One       Date:  2014-11-13       Impact factor: 3.240

7.  Post-duplication charge evolution of phosphoglucose isomerases in teleost fishes through weak selection on many amino acid sites.

Authors:  Yukuto Sato; Mutsumi Nishida
Journal:  BMC Evol Biol       Date:  2007-10-29       Impact factor: 3.260

8.  Structural basis of thermal stability of the tungsten cofactor synthesis protein MoaB from Pyrococcus furiosus.

Authors:  Nastassia Havarushka; Katrin Fischer-Schrader; Tobias Lamkemeyer; Guenter Schwarz
Journal:  PLoS One       Date:  2014-01-20       Impact factor: 3.240

Review 9.  Role of Proteome Physical Chemistry in Cell Behavior.

Authors:  Kingshuk Ghosh; Adam M R de Graff; Lucas Sawle; Ken A Dill
Journal:  J Phys Chem B       Date:  2016-08-24       Impact factor: 2.991

10.  Mechanisms for stabilisation and the maintenance of solubility in proteins from thermophiles.

Authors:  Richard B Greaves; Jim Warwicker
Journal:  BMC Struct Biol       Date:  2007-03-29
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