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1.
Braz. j. med. biol. res ; 45(12): 1135-1140, Dec. 2012. ilus, tab
Article in English | LILACS | ID: lil-659653

ABSTRACT

Azospirillum brasilense is a diazotroph that associates with important agricultural crops and thus has potential to be a nitrogen biofertilizer. The A. brasilense transcription regulator NifA, which seems to be constitutively expressed, activates the transcription of nitrogen fixation genes. It has been suggested that the nitrogen status-signaling protein GlnB regulates NifA activity by direct interaction with the NifA N-terminal GAF domain, preventing the inhibitory effect of this domain under conditions of nitrogen fixation. In the present study, we show that an N-terminal truncated form of NifA no longer required GlnB for activity and lost regulation by ammonium. On the other hand, in trans co-expression of the N-terminal GAF domain inhibited the N-truncated protein in response to fixed nitrogen levels. We also used pull-down assays to show in vitro interaction between the purified N-terminal GAF domain of NifA and the GlnB protein. The results showed that A. brasilense GlnB interacts directly with the NifA N-terminal domain and this interaction is dependent on the presence of ATP and 2-oxoglutarate.


Subject(s)
Adenosine Triphosphate/metabolism , Azospirillum brasilense/enzymology , Bacterial Proteins/metabolism , Ketoglutaric Acids/metabolism , Transcription Factors/metabolism , beta-Galactosidase/metabolism , Azospirillum brasilense/metabolism , Genetic Vectors , Plasmids
2.
Braz. j. med. biol. res ; 45(2): 113-117, Feb. 2012. ilus, tab
Article in English | LILACS | ID: lil-614577

ABSTRACT

Azospirillum brasilense is a nitrogen-fixing bacterium associated with important agricultural crops such as rice, wheat and maize. The expression of genes responsible for nitrogen fixation (nif genes) in this bacterium is dependent on the transcriptional activator NifA. This protein contains three structural domains: the N-terminal domain is responsible for the negative control by fixed nitrogen; the central domain interacts with the RNA polymerase σ54 co-factor and the C-terminal domain is involved in DNA binding. The central and C-terminal domains are linked by the interdomain linker (IDL). A conserved four-cysteine motif encompassing the end of the central domain and the IDL is probably involved in the oxygen-sensitivity of NifA. In the present study, we have expressed, purified and characterized an N-truncated form of A. brasilense NifA. The protein expression was carried out in Escherichia coli and the N-truncated NifA protein was purified by chromatography using an affinity metal-chelating resin followed by a heparin-bound resin. Protein homogeneity was determined by densitometric analysis. The N-truncated protein activated in vivo nifH::lacZ transcription regardless of fixed nitrogen concentration (absence or presence of 20 mM NH4Cl) but only under low oxygen levels. On the other hand, the aerobically purified N-truncated NifA protein bound to the nifB promoter, as demonstrated by an electrophoretic mobility shift assay, implying that DNA-binding activity is not strictly controlled by oxygen levels. Our data show that, while the N-truncated NifA is inactive in vivo under aerobic conditions, it still retains DNA-binding activity, suggesting that the oxidized form of NifA bound to DNA is not competent to activate transcription.


Subject(s)
Azospirillum brasilense/metabolism , Bacterial Proteins/metabolism , Nitrogen Fixation/genetics , Transcription Factors/metabolism , Azospirillum brasilense/chemistry , Azospirillum brasilense/genetics , Bacterial Proteins/genetics , Bacterial Proteins/isolation & purification , Carrier Proteins/genetics , Carrier Proteins/isolation & purification , Carrier Proteins/metabolism , Transcription Factors/genetics , Transcription Factors/isolation & purification
3.
Braz. j. med. biol. res ; 44(12): 1215-1221, Dec. 2011. ilus, tab
Article in English | LILACS | ID: lil-606546

ABSTRACT

Sugarcane is an important agricultural product of Brazil, with a total production of more than 500 million tons. Knowledge of the bacterial community associated with agricultural crops and the soil status is a decisive step towards understanding how microorganisms influence crop productivity. However, most studies aim to isolate endophytic or rhizosphere bacteria associated with the plant by culture-dependent approaches. Culture-independent approaches allow a more comprehensive view of entire bacterial communities in the environment. In the present study, we have used this approach to assess the bacterial community in the rhizosphere soil of sugarcane at different times and under different nitrogen fertilization conditions. At the high taxonomic level, few differences between samples were observed, with the phylum Proteobacteria (29.6 percent) predominating, followed by Acidobacteria (23.4 percent), Bacteroidetes (12.1 percent), Firmicutes (10.2 percent), and Actinobacteria (5.6 percent). The exception was the Verrucomicrobia phylum whose prevalence in N-fertilized soils was approximately 0.7 percent and increased to 5.2 percent in the non-fertilized soil, suggesting that this group may be an indicator of nitrogen availability in soils. However, at low taxonomic levels a higher diversity was found associated with plants receiving nitrogen fertilizer. Bacillus was the most predominant genus, accounting for 19.7 percent of all genera observed. Classically reported nitrogen-fixing and/or plant growth-promoting bacterial genera, such as Azospirillum, Rhizobium, Mesorhizobium, Bradyrhizobium, and Burkholderia were also found although at a lower prevalence.


Subject(s)
Biota , Bacteria/genetics , Rhizosphere , /genetics , Soil Microbiology , Saccharum/microbiology , Brazil , Bacteria/classification , DNA, Bacterial/genetics , Fertilizers , Nitrogen , Phylogeny , Plant Roots/microbiology
4.
Braz. j. med. biol. res ; 44(3): 182-185, Mar. 2011. ilus, tab
Article in English | LILACS | ID: lil-576068

ABSTRACT

Herbaspirillum seropedicae is an endophytic diazotrophic bacterium, which associates with important agricultural plants. In the present study, we have investigated the attachment to and internal colonization of Phaseolus vulgaris roots by the H. seropedicae wild-type strain SMR1 and by a strain of H. seropedicae expressing a red fluorescent protein (DsRed) to track the bacterium in the plant tissues. Two-day-old P. vulgaris roots were incubated at 30°C for 15 min with 6 x 10(8) CFU/mL H. seropedicae SMR1 or RAM4. Three days after inoculation, 4 x 10(4) cells of endophytic H. seropedicae SMR1 were recovered per gram of fresh root, and 9 days after inoculation the number of endophytes increased to 4 x 10(6) CFU/g. The identity of the recovered bacteria was confirmed by amplification and sequencing of the 16SrRNA gene. Furthermore, confocal microscopy of P. vulgaris roots inoculated with H. seropedicae RAM4 showed that the bacterial cells were attached to the root surface 15 min after inoculation; fluorescent bacteria were visible in the internal tissues after 24 h and were found in the central cylinder after 72 h, showing that H. seropedicae RAM4 is capable of colonizing the roots of the dicotyledon P. vulgaris. Determination of dry weight of common bean inoculated with H. seropedicae SMR1 suggested that this bacterium has a negative effect on the growth of P. vulgaris.


Subject(s)
Herbaspirillum/growth & development , Phaseolus/microbiology , Plant Roots/microbiology , Colony Count, Microbial , Herbaspirillum/genetics , Microscopy, Confocal , Microscopy, Fluorescence
5.
Braz. j. med. biol. res ; 41(4): 289-294, Apr. 2008. ilus
Article in English | LILACS | ID: lil-479679

ABSTRACT

Azospirillum brasilense is a diazotroph found in association with important agricultural crops. In this organism, the regulation of nitrogen fixation by ammonium ions involves several proteins including the uridylyltransferase/uridylyl-removing enzyme, GlnD, which reversibly uridylylates the two PII proteins, GlnB and GlnZ, in response to the concentration of ammonium ions. In the present study, the uridylylation/deuridylylation cycle of A. brasilense GlnB and GlnZ proteins by GlnD was reconstituted in vitro using the purified proteins. The uridylylation assay was analyzed using non-denaturing polyacrylamide gel electrophoresis and fluorescent protein detection. Our results show that the purified A. brasilense GlnB and GlnZ proteins were uridylylated by the purified A. brasilense GlnD protein in a process dependent on ATP and 2-oxoglutarate. The dependence on ATP for uridylylation was similar for both proteins. On the other hand, at micromolar concentration of 2-oxoglutarate (up to 100 µM), GlnB uridylylation was almost twice that of GlnZ, an effect that was not observed at higher concentrations of 2-oxoglutarate (up to 10 mM). Glutamine inhibited uridylylation and stimulated deuridylylation of both GlnB and GlnZ. However, glutamine seemed to inhibit GlnZ uridylylation more efficiently. Our results suggest that the differences in the uridylylation pattern of GlnB and GlnZ might be important for fine-tuning of the signaling pathway of cellular nitrogen status in A. brasilense.


Subject(s)
Humans , Azospirillum brasilense/metabolism , Bacterial Proteins/metabolism , Azospirillum brasilense/genetics , Bacterial Proteins/genetics , Electrophoresis, Polyacrylamide Gel , Escherichia coli/genetics , Escherichia coli/metabolism , Nucleotidyltransferases , PII Nitrogen Regulatory Proteins/genetics , PII Nitrogen Regulatory Proteins/metabolism , Plasmids/genetics , Signal Transduction
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