The stability of enzymes is critical for their application in industrial processes, which generally require different conditions from the natural enzyme environment. Both rational and random protein engineering approaches have been used to increase stability, with the latter requiring extensive experimental effort for the screening of variants. Moreover, some general rules addressing the molecular origin of protein thermostability have been established. Herein, we demonstrate the use of molecular dynamics simulations to gain molecular level understanding of protein thermostability and to engineer stabilizing mutations. Carbonic anhydrase (CA) is an enzyme with a high potential for biotechnological carbon capture applications, provided it ca...
Structural and dynamic factors responsible for the themostability of β-glucuronidase (GUS) are analy...
Protein thermostability is a crucial factor for biotechnological enzyme applications. Protein engine...
Protein engineering strategies for increasing stability can be improved by replacing random mutagene...
The stability of enzymes is critical for their application in industrial processes, which generally ...
The stability of enzymes is critical for their application in industrial processes, which generally ...
Carbonic anhydrase (CA) is a family of metalloenzymes that has the potential to sequestrate carbon d...
Carbonic anhydrase (CA) is a family of metalloenzymes that has the potential to sequestrate carbon d...
Carbonic anhydrase can be used as an additive to improve the efficiency of carbon capture and utilis...
Thermodynamic stability is a central requirement for protein function, and one goal of protein engin...
AbstractThermal stability of proteins is crucial for both biotechnological and therapeutic applicati...
Enhancing the functionalities and properties of enzymes via computational prediction is an emerging ...
Exploiting carbonic anhydrase (CA), an enzyme that rapidly catalyzes carbon dioxide hydration, is an...
AbstractThermal stability of proteins is crucial for both biotechnological and therapeutic applicati...
Enhancing the functionalities and properties of enzymes via computational prediction is an emerging ...
Structural and dynamic factors responsible for the themostability of β-glucuronidase (GUS) are analy...
Structural and dynamic factors responsible for the themostability of β-glucuronidase (GUS) are analy...
Protein thermostability is a crucial factor for biotechnological enzyme applications. Protein engine...
Protein engineering strategies for increasing stability can be improved by replacing random mutagene...
The stability of enzymes is critical for their application in industrial processes, which generally ...
The stability of enzymes is critical for their application in industrial processes, which generally ...
Carbonic anhydrase (CA) is a family of metalloenzymes that has the potential to sequestrate carbon d...
Carbonic anhydrase (CA) is a family of metalloenzymes that has the potential to sequestrate carbon d...
Carbonic anhydrase can be used as an additive to improve the efficiency of carbon capture and utilis...
Thermodynamic stability is a central requirement for protein function, and one goal of protein engin...
AbstractThermal stability of proteins is crucial for both biotechnological and therapeutic applicati...
Enhancing the functionalities and properties of enzymes via computational prediction is an emerging ...
Exploiting carbonic anhydrase (CA), an enzyme that rapidly catalyzes carbon dioxide hydration, is an...
AbstractThermal stability of proteins is crucial for both biotechnological and therapeutic applicati...
Enhancing the functionalities and properties of enzymes via computational prediction is an emerging ...
Structural and dynamic factors responsible for the themostability of β-glucuronidase (GUS) are analy...
Structural and dynamic factors responsible for the themostability of β-glucuronidase (GUS) are analy...
Protein thermostability is a crucial factor for biotechnological enzyme applications. Protein engine...
Protein engineering strategies for increasing stability can be improved by replacing random mutagene...