Affiliation:
1. Symbiosis Research Group, Max Planck Institute for Terrestrial Microbiology, D-35043 Marburg,1 and
2. Laboratory of General Microbiology, Faculty of Biology and Chemistry, University of Bremen, D-28334 Bremen,2 Germany
Abstract
ABSTRACT
The endophytic diazotroph
Azoarcus
sp. strain BH72 is capable of infecting rice roots and of expressing the nitrogenase (
nif
) genes there. In order to study the genetic background for nitrogen fixation in strain BH72, the structural genes of nitrogenase (
nifHDK
) were cloned and sequenced. The sequence analysis revealed an unusual gene organization: downstream of
nifHDK
, a ferredoxin gene (
fdxN
; 59% amino acid sequence identity to
R. capsulatus
FdxN) and open reading frames showing 52 and 36% amino acid sequence identity to
nifY
of
Pseudomonas stutzeri
A15 and ORF1 of
Azotobacter vinelandii
were located. Northern blot analysis, reverse transcriptase PCR and primer extension analysis revealed that these six genes are located on one transcript transcribed from a ς
54
-type promoter. Shorter transcripts sequentially missing genes of the 3′ part of the full-length mRNA were more abundantly detected. Mutational analyses suggested that FdxN is an important but not the essential electron donor for dinitrogenase reductase. An in-frame deletion of
fdxN
resulted in reduced growth rates (59% ± 9%) and nitrogenase activities (81%) in nitrogen-fixing pure cultures in comparison to the wild type. Nitrogenase activity was fully complemented in an
fdxN
mutant which carried a
nifH
promoter-driven
fdxN
gene in
trans
. Also, in coculture with the ascomycete
Acremonium alternatum
, where strain BH72 develops intracytoplasmic membrane stacks, the nitrogenase activity in the
fdxN
deletion mutant was decreased to 56% of the wild-type level. Surprisingly, the
fdxN
deletion also had an effect on the rapid “switch-off” of nitrogenase activity in response to ammonium. Wild-type strain BH72 and the deletion mutant complemented with
fdxN
in
trans
showed a rapid reversible inactivation of acetylene reduction, while the deletion mutant did not cease to reduce acetylene. In concordance with the hypothesis that changes in the redox state of NifH or electron flux towards nitrogenase may be involved in the mechanism of physiological nitrogenase switch-off, our results suggest that the ferredoxin may be a component involved in this process.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Cited by
33 articles.
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