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Glucose oxidase from Penicillium amagasakiense : Characterization of the transition state of its denaturation from molecular dynamics simulations
Author(s) -
Todde Guido,
Hovmöller Sven,
Laaksonen Aatto,
Mocci Francesca
Publication year - 2014
Publication title -
proteins: structure, function, and bioinformatics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.699
H-Index - 191
eISSN - 1097-0134
pISSN - 0887-3585
DOI - 10.1002/prot.24596
Subject(s) - denaturation (fissile materials) , molecular dynamics , glucose oxidase , chemistry , amino acid , dimer , moiety , native state , biochemistry , enzyme , biophysics , stereochemistry , computational chemistry , organic chemistry , biology , nuclear chemistry
ABSTRACT Glucose oxidase (GOx) is a flavoenzyme having applications in food and medical industries. However, GOx, as many other enzymes when extracted from the cells, has relatively short operational lifetimes. Several recent studies (both experimental and theoretical), carried out on small proteins (or small fractions of large proteins), show that a detailed knowledge of how the breakdown process starts and proceeds on molecular level could be of significant help to artificially improve the stability of fragile proteins. We have performed extended molecular dynamics (MD) simulations to study the denaturation of GOx (a protein dimer containing nearly 1200 amino acids) to identify weak points in its structure and in this way gather information to later make it more stable, for example, by mutations. A denaturation of a protein can be simulated by increasing the temperature far above physiological temperature. We have performed a series of MD simulations at different temperatures (300, 400, 500, and 600 K). The exit from the protein's native state has been successfully identified with the clustering method and supported by other methods used to analyze the simulation data. A common set of amino acids is regularly found to initiate the denaturation, suggesting a moiety where the enzyme could be strengthened by a suitable amino acid based modification. Proteins 2014; 82:2353–2363. © 2014 Wiley Periodicals, Inc.