Beta-D-xylosidases are hemilcellulases that hydrolyze short xylooligosaccharides into xylose units. Here, we describe the characterization and kinetic analysis of a family 43 beta-xylosidase from Geobacillus stearothermophilus T-6 (XynB3). Enzymes in this family use an inverting single-displacement mechanism with two conserved carboxylic acids, a general acid, and a general base. XynB3 was most active at 65 degrees C and pH 6.5, with clear preference to xylose-based substrates. Products analysis indicated that XynB3 is an exoglycosidase that cleaves single xylose units from the nonreducing end of xylooligomers. On the basis of sequence homology, amino acids Asp15 and Glu187 were suggested to act as the general-base and general-acid catalytic residues, respectively. Kinetic analysis with substrates bearing different leaving groups showed that, for the wild-type enzyme, the k(cat) and k(cat)/K(m) values were only marginally affected by the leaving-group reactivity, whereas for the E187G mutant, both values exhibited significantly greater dependency on the pK(a) of the leaving group. The pH-dependence activity profile of the putative general-acid mutant (E187G) revealed that the protonated catalytic residue was removed. Addition of the exogenous nucleophile azide did not affect the activities of the wild type or the E187G mutant but rescued the activity of the D15G mutant. On the basis of thin-layer chromatography and (1)H NMR analyses, xylose and not xylose azide was the only product of the accelerated reaction, suggesting that the azide ion does not attack the anomeric carbon directly but presumably activates a water molecule. Together, these results confirm the suggested catalytic role of Glu187 and Asp15 in XynB3 and provide the first unequivocal evidence regarding the exact roles of the catalytic residues in an inverting GH43 glycosidase.
Beta-D-xylosidases (EC 3.2.1.37) are hemicellulases that hydrolyze short xylooligosaccharides into single xylose units. In this study, the first crystallization and preliminary X-ray analysis of a family 52 glycoside hydrolase, the beta-D-xylosidase (XynB2) from Geobacillus stearothermophilus T-6, is described. XynB2 is a dimeric protein consisting of two identical subunits of 705 amino acids with a calculated molecular weight of 79 894 Da. XynB2 was crystallized by the hanging-drop vapour-diffusion method and the crystals were found to belong to space group P1, with unit-cell parameters a = 80.6, b = 97.5, c = 107.2 A, alpha = 107.4, beta = 98.2, gamma = 106.6 degrees. The native crystals diffracted X-rays to a resolution of 2.0 A.
beta-D-Xylosidases (EC 3.2.1.37) are hemicellulases that hydrolyze short xylooligosaccharides into single xylose units. In this study, the crystallization and preliminary X-ray analysis of the beta-D-xylosidase (XynB1) from Geobacillus stearothermophilus T-6, a family 39 glycoside hydrolase, are described. XynB1 is a tetrameric protein consisting of four identical subunits of 503 amino acids and with a calculated molecular weight of 58 001 Da. Both the native and the selenomethionine-containing XynB1 were crystallized by the hanging-drop vapour-diffusion method and the crystals were found to belong to space group P2(1)2(1)2(1), with unit-cell parameters a = 92.7, b = 165.7, c = 311.0 A. The native crystals diffracted X-rays to a resolution of 2.1 A.
Geobacillus stearothermophilus T-6 encodes for a beta-xylosidase (XynB2) from family 52 of glycoside hydrolases that was previously shown to hydrolyze its substrate with net retention of the anomeric configuration. XynB2 significantly prefers substrates with xylose as the glycone moiety and exhibits a typical bell-shaped pH dependence curve. Binding properties of xylobiose and xylotriose to the active site were measured using isothermal titration calorimetry (ITC). Binding reactions were enthalpy driven with xylobiose binding more tightly than xylotriose to the active site. The kinetic constants of XynB2 were measured for the hydrolysis of a variety of aryl beta-D-xylopyranoside substrates bearing different leaving groups. The Brønsted plot of log k(cat) versus the pK(a) value of the aglycon leaving group reveals a biphasic relationship, consistent with a double-displacement mechanism as expected for retaining glycoside hydrolases. Hydrolysis rates for substrates with poor leaving groups (pK(a) > 8) vary widely with the aglycon reactivity, indicating that, for these substrates, the bond cleavage is rate limiting. However, no such dependence is observed for more reactive substrates (pK(a) < 8), indicating that in this case hydrolysis of the xylosyl-enzyme intermediate is rate limiting. Secondary kinetic isotope effects suggest that the intermediate breakdown proceeds with modest oxocarbenium ion character at the transition state, and bond cleavage proceeds with even lower oxocarbenium ion character. Inhibition studies with several gluco analogue inhibitors could be measured since XynB2 has low, yet sufficient, activity toward 4-nitrophenyl beta-D-glucopyranose. As expected, inhibitors mimicking the proposed transition state structure, such as 1-deoxynojirimycin, bind with much higher affinity to XynB2 than ground state inhibitors.
beta-D-Xylosidases (EC 3.2.1.37) are exo-type glycoside hydrolases that hydrolyze short xylooligosaccharides to xylose units. The enzymatic hydrolysis of the glycosidic bond involves two carboxylic acid residues, and their identification, together with the stereochemistry of the reaction, provides crucial information on the catalytic mechanism. Two catalytic mutants of a beta-xylosidase from Geobacillus stearothermophilus T-6 were subjected to detailed kinetic analysis to verify their role in catalysis. The activity of the E335G mutant decreased similar to10(6) fold, and this activity was enhanced 10(3)-fold in the presence of external nucleophiles such as formate and azide, resulting in a xylosyl-azide product with an opposite anomeric configuration. These results are consistent with Glu(335) as the nucleophile in this retaining enzyme. The D495G mutant was subjected to detailed kinetic analysis using substrates bearing different leaving groups (pK(a)). The mutant exhibited 10(3)-fold reduction in activity, and the Bronsted plot of log(k(cat)) versus pK(a) revealed that deglycosylation is the rate-limiting step, indicating that this step was reduced by 10(3)-fold. The rates of the glycosylation step, as reflected by the specificity constant (k(cat)/K-m), were similar to those of the wild type enzyme for hydrolysis of substrates requiring little protonic assistance ( low pK(a)) but decreased 10(2)-fold for those that require strong acid catalysis ( high pK(a)). Furthermore, the pH dependence profile of the mutant enzyme revealed that acid catalysis is absent. Finally, the presence of azide significantly enhanced the mutant activity accompanied with the generation of a xylosyl-azide product with retained anomeric configuration. These results are consistent with Asp(495) acting as the acid-base in XynB2.
A β‐xylosidase from Bacillus stearothermophilus T‐6 assigned to the uncharacterized glycosyl hydrolase family 52 was cloned, overexpressed in Escherichia coli and purified. The enzyme showed maximum activity at 65°C and pH 5.6–6.3. The stereochemistry of the hydrolysis of p‐nitrophenyl β‐D‐xylopyranoside was followed by 1H‐nuclear magnetic resonance. Time dependent spectrum analysis showed that the configuration of the anomeric carbon was retained, indicating that a retaining mechanism prevails in family 52 glycosyl hydrolases. Sequence alignment and site‐directed mutagenesis enabled the identification of functionally important amino acid residues of which Glu337 and Glu413 are likely to be the two key catalytic residues involved in enzyme catalysis.
A β‐xylosidase from Bacillus stearothermophilus T‐6 was cloned, overexpressed in Escherichia coli and purified to homogeneity. Based on sequence alignment, the enzyme belongs to family 39 glycoside hydrolases, which itself forms part of the wider GH‐A clan. The conserved Glu160 was proposed as the acid‐base catalyst. An E160A mutant was constructed and subjected to steady state and pre‐steady state kinetic analysis together with azide rescue and pH activity profiles. The observed results support the assignment of Glu160 as the acid‐base catalytic residue.