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J Bacteriol, March 1998, p. 1473-1479, Vol. 180, No. 6
0021-9193/98/$04.00+0
Copyright © 1998, American Society for Microbiology. All rights reserved.
Helicobacter pylori ribBA-Mediated
Riboflavin Production Is Involved in Iron Acquisition
Dennis J.
Worst,
Monique
M. Gerrits,
Christina M. J. E.
Vandenbroucke-Grauls, and
Johannes
G.
Kusters*
Department of Medical Microbiology, Faculty
of Medicine, Vrije Universiteit, 1081 BT Amsterdam, The Netherlands
Received 16 June 1997/Accepted 15 January 1998
In this study, we cloned and sequenced a DNA fragment from an
ordered cosmid library of Helicobacter pylori NCTC 11638 which confers to a siderophore synthesis mutant of Escherichia
coli (EB53 aroB hemA) the ability to grow on
iron-restrictive media and to reduce ferric iron. Sequence analysis of
the DNA fragment revealed the presence of an open reading frame with
high homology to the ribA gene of Bacillus
subtilis. This gene encodes a bifunctional enzyme with the
activities of both 3,4-dihydroxy-2-butanone 4-phosphate (DHBP) synthase
and GTP cyclohydrolase II, which catalyze two essential steps in
riboflavin biosynthesis. Expression of the gene (designated
ribBA) resulted in the formation of one translational product, which was able to complement both the ribA and the
ribB mutation in E. coli. Expression of
ribBA was iron regulated, as was suggested by the presence
of a putative FUR box in its promotor region and as shown by RNA dot
blot analysis. Furthermore, we showed that production of riboflavin in
H. pylori cells is iron regulated. E. coli
EB53 containing the plasmid with H. pylori ribBA
excreted riboflavin in the culture medium, and this riboflavin excretion also appeared to be iron regulated. We postulate that the
iron-regulated production of riboflavin and ferric-iron-reduction activity by E. coli EB53 transformed with the H. pylori ribBA gene is responsible for the survival of EB53 on
iron-restrictive medium. Because disruption of ribBA in
H. pylori eliminates its ferric-iron-reduction
activity, we conclude that ribBA has an important role in
ferric-iron reduction and iron acquisition by H. pylori.
*
Corresponding author. Mailing address: Department of
Medical Microbiology, Faculty of Medicine, Vrije Universiteit, Van der Boechorststraat 7, 1081 BT Amsterdam, The Netherlands. Phone: 31 20 4448319. Fax: 31 20 4448318. E-mail:
JG.KUSTERS.MM{at}MED.VU.NL.
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