Ancestral sequence reconstruction is a powerful method for inferring ancestors of modern enzymes and for studying structure-function relationships of enzymes. We have previously applied this approach to haloalkane dehalogenases (HLDs) from the subfamily HLD-II and obtained thermodynamically highly stabilized enzymes (Delta T-m up to 24 degrees C), showing improved catalytic properties. Here we combined crystallographic structural analysis and computational molecular dynamics simulations to gain insight into the mechanisms by which ancestral HLDs became more robust enzymes with novel catalytic properties. Reconstructed ancestors exhibited similar structure topology as their descendants with the exception of a few loop deviations. Strikingly,...
Haloalkane dehalogenase (DhlA) was used as a model protein to explore the possibility to use molecul...
Enzymes are the catalysts of nature and they facilitate thousands of chemical conversions in living ...
Abstract: Protein dynamics are often invoked in explanations of enzyme catalysis, but their design h...
Haloalkane dehalogenases (EC 3.8.1.5) play an important role in hydrolytic degradation of halogenate...
To obtain structural insights into the emergence of biological functions from catalytically promiscu...
Computational design of protein catalysts with enhanced stabilities for use in research and enzyme t...
Mechanistic insight into the biochemistry of carbon–halogen bond cleavage is rapidly growing because...
Through ancestral sequence reconstruction (ASR) techniques, ancient enzymes can be recreated and bio...
Understanding how changes in functional requirements of the cell select for changes in protein seque...
© 2021 The Authors.Halohydrin dehalogenases (HHDHs) are promising enzymes for application in biocata...
Crystal structures of haloalkane dehalogenase were determined in the presence of the substrate 1,2-d...
Ancestral sequence reconstruction (ASR) provides insight into the changes within a protein sequence ...
To improve the applicability of halohydrin dehalogenase as a catalyst for reactions in the presence ...
Haloalkane dehalogenase (DhlA) was used as a model protein to explore the possibility to use molecul...
Enzymes are the catalysts of nature and they facilitate thousands of chemical conversions in living ...
Abstract: Protein dynamics are often invoked in explanations of enzyme catalysis, but their design h...
Haloalkane dehalogenases (EC 3.8.1.5) play an important role in hydrolytic degradation of halogenate...
To obtain structural insights into the emergence of biological functions from catalytically promiscu...
Computational design of protein catalysts with enhanced stabilities for use in research and enzyme t...
Mechanistic insight into the biochemistry of carbon–halogen bond cleavage is rapidly growing because...
Through ancestral sequence reconstruction (ASR) techniques, ancient enzymes can be recreated and bio...
Understanding how changes in functional requirements of the cell select for changes in protein seque...
© 2021 The Authors.Halohydrin dehalogenases (HHDHs) are promising enzymes for application in biocata...
Crystal structures of haloalkane dehalogenase were determined in the presence of the substrate 1,2-d...
Ancestral sequence reconstruction (ASR) provides insight into the changes within a protein sequence ...
To improve the applicability of halohydrin dehalogenase as a catalyst for reactions in the presence ...
Haloalkane dehalogenase (DhlA) was used as a model protein to explore the possibility to use molecul...
Enzymes are the catalysts of nature and they facilitate thousands of chemical conversions in living ...
Abstract: Protein dynamics are often invoked in explanations of enzyme catalysis, but their design h...