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Role of active site rigidity in activity: MD simulation and fluorescence study on a lipase mutant
- Source :
- PLoS ONE, PLoS ONE, Vol 7, Iss 4, p e35188 (2012)
- Publication Year :
- 2012
-
Abstract
- Relationship between stability and activity of enzymes is maintained by underlying conformational flexibility. In thermophilic enzymes, a decrease in flexibility causes low enzyme activity while in less stable proteins such as mesophiles and psychrophiles, an increase in flexibility is associated with enhanced enzyme activity. Recently, we identified a mutant of a lipase whose stability and activity were enhanced simultaneously. In this work, we probed the conformational dynamics of the mutant and the wild type lipase, particularly flexibility of their active site using molecular dynamic simulations and time-resolved fluorescence techniques. In contrast to the earlier observations, our data show that active site of the mutant is more rigid than wild type enzyme. Further investigation suggests that this lipase needs minimal reorganization/flexibility of active site residues during its catalytic cycle. Molecular dynamic simulations suggest that catalytically competent active site geometry of the mutant is relatively more preserved than wild type lipase, which might have led to its higher enzyme activity. Our study implies that widely accepted positive correlation between conformation flexibility and enzyme activity need not be stringent and draws attention to the possibility that high enzyme activity can still be accomplished in a rigid active site and stable protein structures. This finding has a significant implication towards better understanding of involvement of dynamic motions in enzyme catalysis and enzyme engineering through mutations in active site.
- Subjects :
- Proteomics
Protein Structure
Hydrolases
Mutant
Biophysics
lcsh:Medicine
Molecular Dynamics Simulation
Protein Engineering
Molecular Dynamics
Biochemistry
Protein Chemistry
Catalysis
Fluorescence
Protein Structure, Secondary
Enzyme catalysis
Computational Chemistry
Catalytic Domain
Macromolecular Structure Analysis
Lipase
lcsh:Science
Biology
chemistry.chemical_classification
Enzyme Kinetics
Multidisciplinary
biology
Chemistry
Enzyme Classes
Hydrolysis
lcsh:R
Wild type
Active site
Proteins
Computational Biology
Protein engineering
Enzyme assay
Enzymes
Enzyme
Enzyme Structure
biology.protein
Biocatalysis
lcsh:Q
Bacillus subtilis
Research Article
Biotechnology
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 7
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- PloS one
- Accession number :
- edsair.doi.dedup.....e15b295ea06f16d602379d4e1e012ab9