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Journal of Bacteriology, May 2000, p. 2778-2786, Vol. 182, No. 10
Department of Biology, Tokyo Metropolitan
University, Minamiohsawa, Hachioji, Tokyo 192-0397, Japan
Received 8 December 1999/Accepted 29 February 2000
The purple photosynthetic bacterium Rhodovulum
sulfidophilum synthesizes photosynthetic apparatus even under
highly aerated conditions in the dark. To understand the
oxygen-independent expression of photosynthetic genes, the expression
of the puf operon coding for the light-harvesting 1 and
reaction center proteins was analyzed. Northern blot hybridization
analysis showed that puf mRNA synthesis was not
significantly repressed by oxygen in this bacterium. High-resolution 5'
mapping of the puf mRNA transcriptional initiation sites
and DNA sequence analysis of the puf upstream regulatory
region indicated that there are three possible promoters for the
puf operon expression, two of which have a high degree of
sequence similarity with those of Rhodobacter capsulatus,
which shows a high level of oxygen repression of photosystem synthesis.
Deletion analysis showed that the third promoter is oxygen independent,
but the activity of this promoter was not enough to explain the aerobic
level of mRNA. The posttranscriptional puf mRNA degradation
is not significantly influenced by oxygen in R. sulfidophilum. From these results, we conclude that
puf operon expression in R. sulfidophilum is weakly repressed by oxygen, perhaps as a result of the following: (i)
there are three promoters for puf operon transcription, at least one of which is oxygen independent; (ii) readthrough transcripts which may not be affected by oxygen may be significant in maintaining the puf mRNA levels; and (iii) the puf mRNA is
fairly stable even under aerobic conditions.
0021-9193/00/$04.00+0
Copyright © 2000, American Society for Microbiology. All rights reserved.
Transcriptional Control of Expression of Genes for Photosynthetic
Reaction Center and Light-Harvesting Proteins in the Purple Bacterium
Rhodovulum sulfidophilum
*
Corresponding author. Mailing address: Department of
Biology, Tokyo Metropolitan University, Minamiohsawa, Hachioji, Tokyo 192-0397, Japan. Phone: 81-426-77-2582. Fax: 81-426-77-2559. E-mail: masuda-shinji{at}c.metro-u.ac.jp.
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