Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Tuning the Transglycosylation Reaction of a GH11 Xylanase by a Delicate Enhancement of its Thumb Flexibility

View through CrossRef
Abstract Glycoside hydrolases (GHs) are attractive tools for multiple biotechnological applications. In conjunction with their hydrolytic function, GHs can perform transglycosylation under specific conditions. In nature, oligosaccharide synthesis is performed by glycosyltransferases (GTs); however, the industrial use of GTs is limited by their instability in solution. A key difference between GTs and GHs is the flexibility of their binding site architecture. We have used the xylanase from Bacillus circulans (BCX) to study the interplay between active‐site flexibility and transglycosylation. Residues of the BCX “thumb” were substituted to increase the flexibility of the enzyme binding site. Replacement of the highly conserved residue P116 with glycine shifted the balance of the BCX enzymatic reaction toward transglycosylation. The effects of this point mutation on the structure and dynamics of BCX were investigated by NMR spectroscopy. The P116G mutation induces subtle changes in the configuration of the thumb and enhances the millisecond dynamics of the active site. Based on our findings, we propose the remodelling of the GH enzymes glycon site flexibility as a strategy to improve the transglycosylation efficiency of these biotechnologically important catalysts.
Title: Tuning the Transglycosylation Reaction of a GH11 Xylanase by a Delicate Enhancement of its Thumb Flexibility
Description:
Abstract Glycoside hydrolases (GHs) are attractive tools for multiple biotechnological applications.
In conjunction with their hydrolytic function, GHs can perform transglycosylation under specific conditions.
In nature, oligosaccharide synthesis is performed by glycosyltransferases (GTs); however, the industrial use of GTs is limited by their instability in solution.
A key difference between GTs and GHs is the flexibility of their binding site architecture.
We have used the xylanase from Bacillus circulans (BCX) to study the interplay between active‐site flexibility and transglycosylation.
Residues of the BCX “thumb” were substituted to increase the flexibility of the enzyme binding site.
Replacement of the highly conserved residue P116 with glycine shifted the balance of the BCX enzymatic reaction toward transglycosylation.
The effects of this point mutation on the structure and dynamics of BCX were investigated by NMR spectroscopy.
The P116G mutation induces subtle changes in the configuration of the thumb and enhances the millisecond dynamics of the active site.
Based on our findings, we propose the remodelling of the GH enzymes glycon site flexibility as a strategy to improve the transglycosylation efficiency of these biotechnologically important catalysts.

Related Results

PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
Xylanase breaks xylan down to xylose which is used in industries such as pulp and paper, food, and feed, among others. The utilization of wastes for xylanase production is economic...
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
Xylanase breaks xylan down to xylose which is used in industries such as pulp and paper, food, and feed, among others. The utilization of wastes for xylanase production is economic...
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus megaterium THROUGH SOLID-STATE FERMENTATION
Xylanase breaks xylan down to xylose which is used in industries such as pulp and paper, food, and feed, among others. The utilization of wastes for xylanase production is economic...
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus sp. (BA) THROUGH SOLID-STATE FERMENTATION
PRODUCTION OF XYLANASE BY Aspergillus niger GIO AND Bacillus sp. (BA) THROUGH SOLID-STATE FERMENTATION
Xylanase breaks xylan down to xylose which is used in industries such as pulp and paper, food, and feed, among others. The utilization of wastes for xylanase production is economic...
Production of xylanase by Aspergillus niger GIO and Bacillus megaterium through solid-state fermentation
Production of xylanase by Aspergillus niger GIO and Bacillus megaterium through solid-state fermentation
Xylanase breaks xylan down to xylose, which is used in industries such as pulp and paper, food and feed, among others. The utilization of wastes for xylanase production is economic...
Isolasi Identifikasi Bakteri Penghasil Xilanase serta Karakterisasi Enzimnya
Isolasi Identifikasi Bakteri Penghasil Xilanase serta Karakterisasi Enzimnya
<p>Xylanase is an extracellular enzyme produced by<br />microorganisms. This enzyme is able to hydrolise xylane<br />(hemicellulose) to produce xylooligosaccharid...
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
 Isolation, characterization of natural products dimeric amide alkaloids from roots of the Piper chaba Hunter. The synthesis of these products using intermolecular [4+2] cycloaddit...
Structural and biophysical characterization of the multidomain xylanase Xyl
Structural and biophysical characterization of the multidomain xylanase Xyl
The depletion of fossil fuels, associated pollution, and resulting health hazards are of concern worldwide. Woody biomass constitutes an alternative source of cleaner and renewable...

Back to Top