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1.
Braz. j. med. biol. res ; 50(1): e5658, 2017. tab, graf
Article in English | LILACS | ID: biblio-839234

ABSTRACT

Chitinases are hydrolases that degrade chitin, a polymer of N-acetylglucosamine linked β(1-4) present in the exoskeleton of crustaceans, insects, nematodes and fungal cell walls. A metagenome fosmid library from a wastewater-contaminated soil was functionally screened for chitinase activity leading to the isolation and identification of a chitinase gene named metachi18A. The metachi18A gene was subcloned and overexpressed in Escherichia coli BL21 and the MetaChi18A chitinase was purified by affinity chromatography as a 6xHis-tagged fusion protein. The MetaChi18A enzyme is a 92-kDa protein with a conserved active site domain of glycosyl hydrolases family 18. It hydrolyses colloidal chitin with an optimum pH of 5 and temperature of 50°C. Moreover, the enzyme retained at least 80% of its activity in the pH range from 4 to 9 and 98% at 600 mM NaCl. Thin layer chromatography analyses identified chitobiose as the main product of MetaChi18A on chitin polymers as substrate. Kinetic analysis showed inhibition of MetaChi18A activity at high concentrations of colloidal chitin and 4-methylumbelliferyl N,N′-diacetylchitobiose and sigmoid kinetics at low concentrations of colloidal chitin, indicating a possible conformational change to lead the chitin chain from the chitin-binding to the catalytic domain. The observed stability and activity of MetaChi18A over a wide range of conditions suggest that this chitinase, now characterized, may be suitable for application in the industrial processing of chitin.


Subject(s)
Chitinases/genetics , Chitin/genetics , Metagenome/genetics , Chitinases/chemistry , Chitin/chemistry , Chromatography, High Pressure Liquid , Escherichia coli , Gene Expression/genetics , Gene Library , Genetic Vectors , Hydrogen-Ion Concentration , Substrate Specificity
2.
Braz. j. med. biol. res ; 44(12): 1215-1221, Dec. 2011. ilus, tab
Article in English | LILACS | ID: lil-606546

ABSTRACT

Sugarcane is an important agricultural product of Brazil, with a total production of more than 500 million tons. Knowledge of the bacterial community associated with agricultural crops and the soil status is a decisive step towards understanding how microorganisms influence crop productivity. However, most studies aim to isolate endophytic or rhizosphere bacteria associated with the plant by culture-dependent approaches. Culture-independent approaches allow a more comprehensive view of entire bacterial communities in the environment. In the present study, we have used this approach to assess the bacterial community in the rhizosphere soil of sugarcane at different times and under different nitrogen fertilization conditions. At the high taxonomic level, few differences between samples were observed, with the phylum Proteobacteria (29.6 percent) predominating, followed by Acidobacteria (23.4 percent), Bacteroidetes (12.1 percent), Firmicutes (10.2 percent), and Actinobacteria (5.6 percent). The exception was the Verrucomicrobia phylum whose prevalence in N-fertilized soils was approximately 0.7 percent and increased to 5.2 percent in the non-fertilized soil, suggesting that this group may be an indicator of nitrogen availability in soils. However, at low taxonomic levels a higher diversity was found associated with plants receiving nitrogen fertilizer. Bacillus was the most predominant genus, accounting for 19.7 percent of all genera observed. Classically reported nitrogen-fixing and/or plant growth-promoting bacterial genera, such as Azospirillum, Rhizobium, Mesorhizobium, Bradyrhizobium, and Burkholderia were also found although at a lower prevalence.


Subject(s)
Biota , Bacteria/genetics , Rhizosphere , /genetics , Soil Microbiology , Saccharum/microbiology , Brazil , Bacteria/classification , DNA, Bacterial/genetics , Fertilizers , Nitrogen , Phylogeny , Plant Roots/microbiology
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