Cen_2019_Nat.Commun_10_3198

Reference

Title : Artificial cysteine-lipases with high activity and altered catalytic mechanism created by laboratory evolution - Cen_2019_Nat.Commun_10_3198
Author(s) : Cen Y , Singh W , Arkin M , Moody TS , Huang M , Zhou J , Wu Q , Reetz MT
Ref : Nat Commun , 10 :3198 , 2019
Abstract :

Engineering artificial enzymes with high activity and catalytic mechanism different from naturally occurring enzymes is a challenge in protein design. For example, many attempts have been made to obtain active hydrolases by introducing a Ser --> Cys exchange at the respective catalytic triads, but this generally induced a breakdown of activity. We now report that this long-standing dogma no longer pertains, provided additional mutations are introduced by directed evolution. By employing Candida antarctica lipase B (CALB) as the model enzyme with the Ser-His-Asp catalytic triad, a highly active cysteine-lipase having a Cys-His-Asp catalytic triad and additional mutations W104V/A281Y/A282Y/V149G can be evolved, showing a 40-fold higher catalytic efficiency than wild-type CALB in the hydrolysis of 4-nitrophenyl benzoate, and tolerating bulky substrates. Crystal structures, kinetics, MD simulations and QM/MM calculations reveal dynamic features and explain all results, including the preference of a two-step mechanism involving the zwitterionic pair Cys105(-)/His224(+) rather than a concerted process.

PubMedSearch : Cen_2019_Nat.Commun_10_3198
PubMedID: 31324776
Gene_locus related to this paper: canar-LipB

Related information

Gene_locus canar-LipB
Structure 6ISP    6ISQ    6ISR

Citations formats

Cen Y, Singh W, Arkin M, Moody TS, Huang M, Zhou J, Wu Q, Reetz MT (2019)
Artificial cysteine-lipases with high activity and altered catalytic mechanism created by laboratory evolution
Nat Commun 10 :3198

Cen Y, Singh W, Arkin M, Moody TS, Huang M, Zhou J, Wu Q, Reetz MT (2019)
Nat Commun 10 :3198