Affiliation:
1. Institut für Allgemeine Mikrobiologie, Christian-Albrechts-Universität Kiel, Kiel, Germany
Abstract
ABSTRACT
During growth of the halophilic archaeon
Haloarcula marismortui
on
d
-xylose, a specific
d
-xylose dehydrogenase was induced. The enzyme was purified to homogeneity. It constitutes a homotetramer of about 175 kDa and catalyzed the oxidation of xylose with both NADP
+
and NAD
+
as cosubstrates with 10-fold higher affinity for NADP
+
. In addition to
d
-xylose,
d
-ribose was oxidized at similar kinetic constants, whereas
d
-glucose was used with about 70-fold lower catalytic efficiency (
k
cat
/
K
m
). With the N-terminal amino acid sequence of the subunit, an open reading frame (ORF)—coding for a 39.9-kDA protein—was identified in the partially sequenced genome of
H. marismortui
. The function of the ORF as the gene designated
xdh
and coding for xylose dehydrogenase was proven by its functional overexpression in
Escherichia coli
. The recombinant enzyme was reactivated from inclusion bodies following solubilization in urea and refolding in the presence of salts, reduced and oxidized glutathione, and substrates. Xylose dehydrogenase showed the highest sequence similarity to glucose-fructose oxidoreductase from
Zymomonas mobilis
and other putative bacterial and archaeal oxidoreductases. Activities of xylose isomerase and xylulose kinase, the initial reactions of xylose catabolism of most bacteria, could not be detected in xylose-grown cells of
H. marismortui
, and the genes that encode them,
xylA
and
xylB
, were not found in the genome of
H. marismortui
. Thus, we propose that this first characterized archaeal xylose dehydrogenase catalyzes the initial step in xylose degradation by
H. marismortui
.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Reference46 articles.
1. Aoki, S., S. Ishikura, Y. Asada, N. Usami, and A. Hara. 2001. Identity of dimeric dihydrodiol dehydrogenase as NADP+-dependent d-xylose dehydrogenase in pig liver. Chemico-Biol. Interact.130-132:775-784.
2. Arimitsu, E., S. Aoki, S. Ishikura, K. Nakanishi, K. Matsuura, and A. Hara. 1999. Cloning and sequencing of the cDNA species for mammalian dimeric dihydrodiol dehydrogenases. Biochem. J.342(Pt. 3):721-728.
3. Molecular and industrial aspects of glucose isomerase.
4. Biesterveld, S., M. D. Kok, C. Dijkema, A. J. B. Zehnder, and A. J. M. Stams. 1994. d-Xylose catabolism in Bacteriodes xylanolyticus X5-1. Arch. Microbiol.161:521-527.
5. Bode, C., H. Goebell, and E. Stahler. 1968. Elimination of errors caused by turbidity in the determination of protein by the biuret method. Z. Klin. Chem. Klin. Biochem.6:418-422.
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