Studying the Role of a Single Mutation of a Family 11 Glycoside Hydrolase Using High-Resolution X-ray Crystallography
Author(s) -
Zhihong Li,
Xiaoshuai Zhang,
Chunran Li,
Andrey Kovalevsky,
Qun Wan
Publication year - 2020
Publication title -
the protein journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.72
H-Index - 52
eISSN - 1875-8355
pISSN - 1572-3887
DOI - 10.1007/s10930-020-09938-5
Subject(s) - glycoside hydrolase , residue (chemistry) , hydrolase , chemistry , nucleophile , catalysis , mutant , stereochemistry , enzyme , active site , crystallography , biochemistry , gene
XynII is a family 11 glycoside hydrolase that uses the retaining mechanism for catalysis. In the active site, E177 works as the acid/base and E86 works as the nucleophile. Mutating an uncharged residue (N44) to an acidic residue (D) near E177 decreases the enzyme's optimal pH by ~ 1.0 unit. D44 was previously suggested to be a second proton carrier for catalysis. To test this hypothesis, we abolished the activity of E177 by mutating it to be Q, and mutated N44 to be D or E. These double mutants have dramatically decreased activities. Our high-resolution crystallographic structures and the microscopic pK a calculations show that D44 has similar position and pK a value during catalysis, indicating that D44 changes electrostatics around E177, which makes it prone to rotate as the acid/base in acidic conditions, thus decreases the pH optimum. Our results could be helpful to design enzymes with different pH optimum.
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