Abstract
Pyrococcus furiosus is a strictly anaerobic hyperthermophilic archaebacterium with an optimal growth temperature of about 100 degrees C. When this organism was grown in the presence of certain complex carbohydrates, the production of several amylolytic enzymes was noted. These enzymes included an alpha-glucosidase that was located in the cell cytoplasm. This alpha-glucosidase has been purified 310-fold and corresponded to a protein band of 125 kilodaltons as resolved by 10% sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The enzyme exhibited optimum activity at pH 5.0 to 6.0 and over a temperature range of 105 to 115 degrees C. Kinetic analysis conducted at 108 degrees C revealed hydrolysis of the substrates p-nitrophenyl-alpha-D-glucopyranoside (PNPG), methyl-alpha-D-glucopyranoside, maltose, and isomaltose. Trace activity was detected towards p-nitrophenyl-beta-D-glucopyranoside, and no activity could be detected towards starch or sucrose. Inhibition studies conducted at 108 degrees C with PNPG as the substrate and maltose as the inhibitor yielded a Ki for maltose of 14.3 mM. Preincubation for 30 min at 98 degrees C in 100 mM dithiothreitol and 1.0 M urea had little effect on enzyme activity, whereas preincubation in 1.0% sodium dodecyl sulfate and 1.0 M guanidine hydrochloride resulted in significant loss of enzyme activity. Purified alpha-glucosidase from P. furiosus exhibited remarkable thermostability; incubation of the enzyme at 98 degrees C resulted in a half life of nearly 48 h.
MeSH Terms
Archaea/enzymology,growth & development
Bacteria/enzymology
Carbohydrate Metabolism
Chromatography
Chromatography, DEAE-Cellulose
Chromatography, Gel
Durapatite
Enzyme Stability
Hot Temperature
Hydroxyapatites
Kinetics
Molecular Weight
Substrate Specificity
Thermodynamics
alpha-Glucosidases/isolation & purification,metabolism
Chemicals
Hydroxyapatites
Durapatite
alpha-Glucosidases
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Costantino H R
Department of Chemical Engineering, Johns Hopkins University, Baltimore, Maryland 21218.
Brown S H
Kelly R M
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