Recombinant production and biochemical characterization of a hyperthermostable α‐glucan/maltodextrin phosphorylase from Pyrococcus furiosus
Author(s) -
Md. Mizanur Rahman,
Amanda K. K. Griffin,
Nicola L. B. Pohl
Publication year - 2007
Publication title -
archaea
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.8
H-Index - 40
eISSN - 1472-3654
pISSN - 1472-3646
DOI - 10.1155/2008/549759
Subject(s) - pyrococcus furiosus , maltodextrin , chemistry , glucan , hyperthermophile , recombinant dna , food science , biochemistry , chromatography , archaea , gene , spray drying
Alpha-glucan phosphorylase catalyzes the reversible cleavage of alpha-1-4-linked glucose polymers into alpha-D-glucose-1-phosphate. We report the recombinant production of an alpha-glucan/maltodextrin phosphorylase (PF1535) from a hyperthermophilic archaeon, Pyrococcus furiosus, and the first detailed biochemical characterization of this enzyme from any archaeal source using a mass-spectrometry-based assay. The apparent 98 kDa recombinant enzyme was active over a broad range of temperatures and pH, with optimal activity at 80 degrees C and pH 6.5-7. This archaeal protein retained its complete activity after 24 h at 80 degrees C in Tris-HCl buffer. Unlike other previously reported phosphorylases, the Ni-affinity column purified enzyme showed broad substrate specificity in both the synthesis and degradation of maltooligosaccharides. In the synthetic direction of the enzymatic reaction, the lowest oligosaccharide required for the chain elongation was maltose. In the degradative direction, the archaeal enzyme can produce glucose-1-phosphate from maltotriose or longer maltooligosaccharides including both glycogen and starch. The specific activity of the enzyme at 80 degrees C in the presence of 10 mM maltoheptaose and at 10 mg ml(-1) glycogen concentration was 52 U mg(-1) and 31 U mg(-1), respectively. The apparent Michaelis constant and maximum velocity for inorganic phosphate were 31 +/- 2 mM and 0.60 +/- 0.02 mM min(-1) microg(-1), respectively. An initial velocity study of the enzymatic reaction indicated a sequential bi-bi catalytic mechanism. Unlike the more widely studied mammalian glycogen phosphorylase, the Pyrococcus enzyme is active in the absence of added AMP.
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