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1.
Int J Biol Macromol ; 125: 181-190, 2019 Mar 15.
Article in English | MEDLINE | ID: mdl-30521894

ABSTRACT

Members of the genus Aspergillus are extensively studied ascomycetes because of their ability to synthesize high value-added compounds and enzymes of industrial interest. Precise whole genome assembly and gene annotation are significant for gene functional analyses. Here, we report the draft genome sequencing, assembly and whole genome analysis of Aspergillus terreus P14_T3, isolated from rumen sample of cattle fed with coconut-coir. A total of 13,340 protein-coding genes were predicted, among them 493 are involved in degradation of complex carbohydrate polysaccharides. Further, it was found that 29 genes, encoding ß-glucosidase belong to Glycosyl hydrolase (GH) family 1 (3 gene), 3 (17 gene), 5 (4 gene), 17 (3 gene), 132 (2 gene). The tertiary structure of all the ß-glucosidases was designed by homology modeling; modeled structure AtBgl1.3 (GH1), AtBgl3.1 (GH3), AtBgl5.4 (GH5), AtBgl17.1 (GH17) show classical (α/ß) TIM-like barrel motif. Molecular docking of different ß-glucosidases with cellobiose revealed that conserved amino acids i.e. Glu, Trp, Arg, His, Tyr and Asp are taking part in substrate hydrolysis. Moreover, some other amino acids i.e. Ser, Phe, Gln and Asn are found to be involved in hydrogen bond formation and catalysis. These findings may provide valuable insights in designing ß-glucosidases with higher cellulose-hydrolyzing efficiency.


Subject(s)
Aspergillus/genetics , Aspergillus/metabolism , Genome, Fungal , Lignin/chemistry , Lignin/metabolism , Models, Molecular , beta-Glucosidase/chemistry , beta-Glucosidase/metabolism , Aspergillus/isolation & purification , Computational Biology/methods , Gene Ontology , Genomics/methods , Hydrolysis , Molecular Conformation , Molecular Docking Simulation , Molecular Dynamics Simulation , Quantitative Structure-Activity Relationship , Substrate Specificity
2.
Int J Biol Macromol ; 113: 73-81, 2018 Jul 01.
Article in English | MEDLINE | ID: mdl-29454942

ABSTRACT

Cellulase hydrolyses the cellulose by cleaving the ß-1,4-linkages to produce mono-, oligo- and shorter polysaccharide units. These enzymes have applications in various industries such as pulp and paper, laundry, food and feed, textile, brewing industry and in biofuel production. In the present study we have cloned acid-cellulase gene (Cel-1) from the fosmid library of buffalo rumen metagenomic DNA and functionally expressed it in Escherichia coli. The ORF encoding cellulase consisted of 1176-bp, corresponding to protein of 391 amino acid and has catalytic domain belonging to glycosyl hydrolase family 5. The purified protein has a molecular weight of 43-kDa on SDS-PAGE and its expression was confirmed by western blotting. The tertiary structure of the cellulase (Cel-1) showed a classical (α/ß) TIM-like barrel motif. Model surface charge of Cel-1 predicted that surface near active site was mostly negative which might be responsible for the stability of enzyme at lower pH. The pH and temperature for maximum enzyme activity were 4.5 and 45°C respectively. Various metal ions enhanced the enzyme activity and in presence of Mn+2 activity was significantly increased. Cel-1 hydrolyzed pre-treated wheat straw and released reducing sugars (62.60%). These desirable properties of Cel-1 make it attractive for the bioconversion of biomass.


Subject(s)
Biomass , Buffaloes/genetics , Cellulase/genetics , Cellulase/metabolism , Lignin/metabolism , Rumen/enzymology , Amino Acid Sequence , Animals , Catalytic Domain , Cellulase/chemistry , Cloning, Molecular , Hydrogen-Ion Concentration , Models, Molecular , Sequence Homology, Amino Acid , Substrate Specificity , Triticum/chemistry
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