TY - JOUR
T1 - Hydrolysis and Transglycosylation Transition States of Glycoside Hydrolase Family 3 beta-Glucosidases Differ in Charge and Puckering Conformation
AU - Geronimo, Inacrist
AU - Payne, Christina
AU - Sandgren, Mats
PY - 2018
Y1 - 2018
N2 - beta-Glucosidases (beta gls) from glycoside hydrolase family 3 play an important role in biomass degradation by catalyzing cellobiose hydrolysis. However, the hydrolysis rate decreases when the glucose product or another cellobiose competes with water to form oligosaccharides in a reaction called transglycosylation. Both reactions involve proton transfer to the acid/base residue and nucleophilic attack on the glycosyl-enzyme intermediate. To gain a deeper understanding of these competing reactions, quantum mechanics/molecular mechanics calculations were performed. Although both reactions are exothermic and have similar free-energy barriers (similar to 18 kcal/mol), the transitionstate (TS) characteristics are different. The glycosyl-water bond is nearly formed in the hydrolysis TS, leading to reduced ionic character and a C-4(1) chair conformation. The transglycosylation TS is more positively charged and adopts the H-4(3) half-chair conformation because bond formation is less advanced. Water interacts solely with acid/base residue E441, though the long distance between them (2.1 angstrom) suggests that E441 does not activate water for nucleophilic attack. In comparison, a glucose acceptor has a lower deprotonation enthalpy and hydrogen bonds to E441 (1.6 angstrom) as well as to Y204, R169, and R67. Knowledge of these factors that are relevant to TS formation and stability is valuable for engineering beta gls with enhanced hydrolytic activity for industrial applications.
AB - beta-Glucosidases (beta gls) from glycoside hydrolase family 3 play an important role in biomass degradation by catalyzing cellobiose hydrolysis. However, the hydrolysis rate decreases when the glucose product or another cellobiose competes with water to form oligosaccharides in a reaction called transglycosylation. Both reactions involve proton transfer to the acid/base residue and nucleophilic attack on the glycosyl-enzyme intermediate. To gain a deeper understanding of these competing reactions, quantum mechanics/molecular mechanics calculations were performed. Although both reactions are exothermic and have similar free-energy barriers (similar to 18 kcal/mol), the transitionstate (TS) characteristics are different. The glycosyl-water bond is nearly formed in the hydrolysis TS, leading to reduced ionic character and a C-4(1) chair conformation. The transglycosylation TS is more positively charged and adopts the H-4(3) half-chair conformation because bond formation is less advanced. Water interacts solely with acid/base residue E441, though the long distance between them (2.1 angstrom) suggests that E441 does not activate water for nucleophilic attack. In comparison, a glucose acceptor has a lower deprotonation enthalpy and hydrogen bonds to E441 (1.6 angstrom) as well as to Y204, R169, and R67. Knowledge of these factors that are relevant to TS formation and stability is valuable for engineering beta gls with enhanced hydrolytic activity for industrial applications.
UR - https://res.slu.se/id/publ/97010
U2 - 10.1021/acs.jpcb.8b07118
DO - 10.1021/acs.jpcb.8b07118
M3 - Journal article
SN - 1520-6106
VL - 122
SP - 9452
EP - 9459
JO - Journal of Physical Chemistry B
JF - Journal of Physical Chemistry B
IS - 41
ER -