Author:
Takahashi Shouji,Furukawara Makoto,Omae Keishi,Tadokoro Namiho,Saito Yayoi,Abe Katsumasa,Kera Yoshio
Abstract
ABSTRACTd-Amino acid oxidase (DAO) is a biotechnologically attractive enzyme that can be used in a variety of applications, but its utility is limited by its relatively poor stability. A search of a bacterial genome database revealed a gene encoding a protein homologous to DAO in the thermophilic bacteriumRubrobacter xylanophilus(RxDAO). The recombinant protein expressed inEscherichia coliwas a monomeric protein containing noncovalently bound flavin adenine dinucleotide as a cofactor. This protein exhibited oxidase activity against neutral and basicd-amino acids and was significantly inhibited by a DAO inhibitor, benzoate, but not by any of the testedd-aspartate oxidase (DDO) inhibitors, thus indicating that the protein is DAO. RxDAO exhibited higher activities and affinities toward branched-chaind-amino acids, with the highest specific activity towardd-valine and catalytic efficiency (kcat/Km) towardd-leucine. Substrate inhibition was observed in the case ofd-tyrosine. The enzyme had an optimum pH range and temperature of pH 7.5 to 10 and 65°C, respectively, and was stable between pH 5.0 and pH 8.0, with aT50(the temperature at which 50% of the initial enzymatic activity is lost) of 64°C. No loss of enzyme activity was observed after a 1-week incubation period at 30°C. This enzyme was markedly inactivated by phenylmethylsulfonyl fluoride but not by thiol-modifying reagents and diethyl pyrocarbonate, which are known to inhibit certain DAOs. These results demonstrated that RxDAO is a highly stable DAO and suggested that this enzyme may be valuable for practical applications, such as the determination and quantification of branched-chaind-amino acids, and as a scaffold to generate a novel DAO via protein engineering.
Publisher
American Society for Microbiology
Subject
Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology
Cited by
24 articles.
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