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1.
PLoS One ; 8(12): e83635, 2013.
Article in English | MEDLINE | ID: mdl-24358302

ABSTRACT

Cellulases play a key role in enzymatic routes for degradation of plant cell-wall polysaccharides into simple and economically-relevant sugars. However, their low performance on complex substrates and reduced stability under industrial conditions remain the main obstacle for the large-scale production of cellulose-derived products and biofuels. Thus, in this study a novel cellulase with unusual catalytic properties from sugarcane soil metagenome (CelE1) was isolated and characterized. The polypeptide deduced from the celE1 gene encodes a unique glycoside hydrolase domain belonging to GH5 family. The recombinant enzyme was active on both carboxymethyl cellulose and ß-glucan with an endo-acting mode according to capillary electrophoretic analysis of cleavage products. CelE1 showed optimum hydrolytic activity at pH 7.0 and 50 °C with remarkable activity at alkaline conditions that is attractive for industrial applications in which conventional acidic cellulases are not suitable. Moreover, its three-dimensional structure was determined at 1.8 Å resolution that allowed the identification of an insertion of eight residues in the ß8-α8 loop of the catalytic domain of CelE1, which is not conserved in its psychrophilic orthologs. This 8-residue-long segment is a prominent and distinguishing feature of thermotolerant cellulases 5 suggesting that it might be involved with thermal stability. Based on its unconventional characteristics, CelE1 could be potentially employed in biotechnological processes that require thermotolerant and alkaline cellulases.


Subject(s)
Cellulase/chemistry , Cellulase/metabolism , Metagenome , Saccharum , Catalysis , Cellulase/genetics , Cellulase/isolation & purification , Cellulose/metabolism , Cloning, Molecular , Hydrogen-Ion Concentration , Microbiota/genetics , Models, Molecular , Protein Structure, Tertiary , Saccharum/microbiology , Soil/chemistry , Soil Microbiology , Structure-Activity Relationship
2.
Biochem J ; 441(1): 95-104, 2012 Jan 01.
Article in English | MEDLINE | ID: mdl-21880019

ABSTRACT

Cellulases participate in a number of biological events, such as plant cell wall remodelling, nematode parasitism and microbial carbon uptake. Their ability to depolymerize crystalline cellulose is of great biotechnological interest for environmentally compatible production of fuels from lignocellulosic biomass. However, industrial use of cellulases is somewhat limited by both their low catalytic efficiency and stability. In the present study, we conducted a detailed functional and structural characterization of the thermostable BsCel5A (Bacillus subtilis cellulase 5A), which consists of a GH5 (glycoside hydrolase 5) catalytic domain fused to a CBM3 (family 3 carbohydrate-binding module). NMR structural analysis revealed that the Bacillus CBM3 represents a new subfamily, which lacks the classical calcium-binding motif, and variations in NMR frequencies in the presence of cellopentaose showed the importance of polar residues in the carbohydrate interaction. Together with the catalytic domain, the CBM3 forms a large planar surface for cellulose recognition, which conducts the substrate in a proper conformation to the active site and increases enzymatic efficiency. Notably, the manganese ion was demonstrated to have a hyper-stabilizing effect on BsCel5A, and by using deletion constructs and X-ray crystallography we determined that this effect maps to a negatively charged motif located at the opposite face of the catalytic site.


Subject(s)
Bacillus subtilis/enzymology , Bacterial Proteins/metabolism , Cellulases/metabolism , Bacillus subtilis/genetics , Bacillus subtilis/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Calcium/metabolism , Cellulases/chemistry , Cellulases/genetics , Cloning, Molecular , Gene Expression Regulation, Bacterial/physiology , Hot Temperature , Kinetics , Manganese/chemistry , Models, Molecular , Protein Conformation , Protein Structure, Tertiary , Substrate Specificity
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