Sha_2023_Int.J.Biol.Macromol__128302

Reference

Title : Structure-directed bioengineering the lid1 of cold-adapted Pseudomonas sp. TB11 esterase to boost catalytic capacity - Sha_2023_Int.J.Biol.Macromol__128302
Author(s) : Sha L , He WS , Zheng T , Fei Y , Fang Y , Yang H , Chen G
Ref : Int J Biol Macromol , :128302 , 2023
Abstract :

Structure-guided bioengineering enzymes has been an efficient strategy to obtain biocatalyst with desirable properties. In this study, the cold-adapted esterase from Pseudomonas sp. (CPE) was optimized through bioinformatic-based structured-guided bioengineering on lid1 region. Substitutions of non-conserved Q55 led to noticeable increase in hydrolysis without sacrificing enzyme thermostability, activating effects of Ca(2+) and organic solvents. Compared to the wild type, both of Q55V and Q55N among the constructed variants exhibited about a 2.0-fold and 6.5-fold higher hydrolytic activity toward short-chain and long-chain substrates, respectively. In contrast, lid swapping with the lid of Thermomyces lanuginosus lipase reduced the activity and thermostability of CPE. Catalytic kinetics revealed that substitution of Q55 with Y, V, N and R enhanced the substrate affinity of CPE. Hydrolysis by Q55V remarkedly enriched the characteristic flavor components of single cream. The study sheds light on structure-guided bioengineering of lid tailoring cold-adapted esterases with desired catalytic performance to meet the demand from biotechnological applications.

PubMedSearch : Sha_2023_Int.J.Biol.Macromol__128302
PubMedID: 37992944
Gene_locus related to this paper: 9sped-a0a0s2cee2

Related information

Gene_locus 9sped-a0a0s2cee2

Citations formats

Sha L, He WS, Zheng T, Fei Y, Fang Y, Yang H, Chen G (2023)
Structure-directed bioengineering the lid1 of cold-adapted Pseudomonas sp. TB11 esterase to boost catalytic capacity
Int J Biol Macromol :128302

Sha L, He WS, Zheng T, Fei Y, Fang Y, Yang H, Chen G (2023)
Int J Biol Macromol :128302