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1.
Electrotransformation of Rhizobium leguminosarum was successfully carried out with a 15.1-kb plasmid, pMP154 (Cmr), containing a nodABC-lacZ fusion by electroporation. The maximum transformation efficiency, 108 transformants/μg of DNA, was achieved at a field strength of 14 kV/cm with a pulse of 7.3 ms (186 Ω). The number of transformants was found to increase with increasing cell density, with no sign of saturation. In relation to DNA dosage, the maximum transformation efficiency (5.8 × 108 transformants/μg of DNA) was obtained with 0.5 μg of DNA/ml of cell suspension, and a further increase in the DNA concentration resulted in a decline in transformation efficiency.  相似文献   

2.
Electrotransformation of Rhizobium leguminosarum was successfully carried out with a 15.1-kb plasmid, pMP154 (Cmr), containing a nodABC-lacZ fusion by electroporation. The maximum transformation efficiency, 10(8) transformants/microg of DNA, was achieved at a field strength of 14 kV/cm with a pulse of 7.3 ms (186 Omega). The number of transformants was found to increase with increasing cell density, with no sign of saturation. In relation to DNA dosage, the maximum transformation efficiency (5.8 x 10(8) transformants/microg of DNA) was obtained with 0.5 microg of DNA/ml of cell suspension, and a further increase in the DNA concentration resulted in a decline in transformation efficiency.  相似文献   

3.
Summary The degradation of tryptophan (Try) and some of its potential intermediates has been studied in nodule bacteria (Rhizobium leguminosarum Frank, ATCC 10324). In feeding experiments with washed suspensions the following degradation products of Try could be identified by thin-layer chromatography: indolyl-3-pyruvic acid (IBS); indolyl-3-acetic acid (IES); -(indolyl-3)-lactic acid (IMS); indole-carboxylic acid-(3) (ICS); -(indolyl-3)-ethanol (-IÄ); indole-aldehyde-(3) (IAld); indolyl-3-acetaldehyde (IAAld); N-acetyl-tryptophan (Ac-Try).An active Try-transaminase leading to the formation of IBS has been demonstrated. Phenylpyruvic acid as well as -ketoglutaric acid served as amino group acceptors.The breakdown of Try was followed quantitatively by using C-14(2-alanyl-) D,L-tryptophan. After 16 hrs nearly 16% of the original radioactivity was found in the ether-extractable material. IES and IMS were formed in much the highest concentrations.Indole-3-acetonitrile (IAN), although not a Try-metabolite in Rhizobium leguminosarum was converted to IES via indole-3-acetamide (IAAm). The following physiological pathways in the breakdown of Try in Rhizobium leguminosarum have been confirmed: Try Ac-Try and IBS; IBS IAAld; IAAld -IÄ and IES; no further degradation of IES was observed.  相似文献   

4.
Genetic transformation of Rhizobium leguminosarum by plasmid DNA.   总被引:2,自引:0,他引:2       下载免费PDF全文
We demonstrated the genetic transformation of Rhizobium leguminosarum by R68.45 plasmid DNA by freezing and thawing cell suspensions in the presence of R68.45 plasmid DNA and 20 mM MgCl2. Clones resistant to kanamycin and tetracycline were recovered at a frequency of 10(-8) per recipient cell. No colonies that were doubly drug resistant were recovered in parallel control experiments.  相似文献   

5.
The chromium (CrIII and CrVI) removal capability of Rhizobium leguminosarum was checked by estimating the amount of chromium in the medium before and after inoculation. To determine the efficiency of R. leguminosarum in removal of chromium, the influence of physical and chemical parameters such as temperature, pH and different concentrations (0.1–1.0 mM) of trivalent (CrIII) and hexavalent (CrVI) chromium were studied. The chromium removal in aqueous solution by different size of active and inactivated biomass and immobilized cells of R. leguminosarum in a packed-bed column was also carried out. Results showed that in a medium containing up to 0.5 mM concentration of both CrIII and CrVI, R. leguminosarum showed optimal growth. The maximum chromium removal was at pH 7.0 and 35°C. Active biomass removed 84.4 ± 3.6% of CrIII and 77.3 ± 4.3% of CrVI in 24 h of incubation time. However, inactivated biomass removed maximum chromium after 36 h of incubation. Immobilized bacterial cells in a packed-bed column removed 86.4 ± 1.7% of CrIII and 83.8 ± 2.2% of CrVI in 16 and 20 h of incubation time, respectively.  相似文献   

6.
7.
Succinate transport in Rhizobium leguminosarum.   总被引:19,自引:13,他引:6       下载免费PDF全文
The transport of succinate was studied in an effective streptomycin-resistant strain of Rhizobium leguminosarum. High levels of succinate transport occurred when cells were grown on succinate, fumarate, or malate, whereas low activity was found when cells were grown on glucose, sucrose, arabinose, or pyruvate as the sole carbon source. Because of the rapid metabolism of succinate after transport into the cells, a succinate dehydrogenase-deficient mutant was isolated in which intracellular succinate accumulated to over 400 times the external concentration. Succinate transport was completely abolished in the presence of metabolic uncouplers but was relatively insensitive to sodium arsenate. Succinate transport was a saturable function of the succinate concentration, and the apparent Km and Vmax values for transport were determined in both the parent and the succinate dehydrogenase mutant. Malate and fumarate competitively inhibited succinate transport, whereas citrate and malonate had no effect. Succinate transport mutants were isolated by transposon (Tn5) mutagenesis. These mutants were unable to transport succinate or malate and were unable to grow on succinate, malate, or fumarate as the sole carbon source. The mutants grew normally on pyruvate, oxaloacetate, citrate, or arabinose, and revertants isolated on succinate minimal medium had regained the ability to grow on malate and fumarate. From these data, we conclude that R. leguminosarum possesses a C4-dicarboxylic acid transport system which is inducible and mediates the active transport of succinate, fumarate, and malate into the cell.  相似文献   

8.
R factor transfer in Rhizobium leguminosarum   总被引:191,自引:0,他引:191  
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11.
The effect of host plant cultivar on H2 evolution by root nodules was examined in symbioses between Pisum sativum L. and selected strains of Rhizobium leguminosarum. Hydrogen evolution from root nodules containing Rhizobium represents the sum of H2 produced by the nitrogenase enzyme complex and H2 oxidized by any uptake hydrogenase present in those bacterial cells. Relative efficiency (RE) calculated as RE = 1 − (H2 evolved in air/C2 H2 reduced) did not vary significantly among `Feltham First,' `Alaska,' and `JI1205' peas inoculated with R. leguminosarum strain 300, which lacks uptake hydrogenase activity (Hup). That observation suggests that the three host cultivars had no effect on H2 production by nitrogenase. However, RE of strain 128C53 was significantly (P ≤ 0.05) greater in symbiosis with cultivar JI1205 than in root nodules of Feltham First. At a similar rate of C2H2 reduction on a whole-plant basis, nearly 24 times more H2 was evolved from the Feltham First/128C53 symbiosis than from the JI1205/128C53 association. Root nodules from the Alaska/128C53 symbiosis had an intermediate RE over the entire study period, which extended from 21 to 36 days after planting. Direct assays of uptake hydrogenase by two methods showed significant (P ≤ 0.05) host cultivar effects on H2 uptake capacity of both strain 128C53 and the genetically related strain 3960. The 3H2 incorporation assay showed that strains 128C53 and 3960 in symbiosis with Feltham First had about 10% of the uptake hydrogenase activity measured in root nodules of Alaska or JI1205. These data are the first demonstration of significant host plant effects on rhizobial uptake hydrogenase in a single plant species.  相似文献   

12.
Response of Rhizobium leguminosarum to nickel stress   总被引:2,自引:0,他引:2  
Rhizobium leguminosarum strain P-5 biovar viciae was sensitive to Ni2+ (MIC, 75 M) and showed concentration-dependent Ni2+ uptake in a wide concentration range (50–500 M). Ni2+ uptake up to a certain threshold limit also increased thiol content (66 nmol mg–1 protein), proline content (10.85 nmol mg–1 protein) and urease specific activity (500 nmol min–1 mg–1 protein) maximum corresponding to 100 M Ni2+ as the external concentration or 151 nmol Ni2+ mg–1 protein as the intracellular buildup. Proline synthesis was stimulated most even at much lower Ni2+ concentration (25 M). Higher intracellular Ni2+ load neither favoured thiol nor proline biosynthesis nor urease activity. Ni2+ requirement of urease was ascertained by using EDTA-grown cells and the addition of bicarbonate (NaHCO3, 100 mM) to the crude extract. The induction of thiol or proline by Ni2+, therefore, reflects the possible strategies adopted by bacterial cells to overcome the environmental stress.  相似文献   

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15.
Rhizobium leguminosarum cytochromes (Vicia faba)   总被引:1,自引:1,他引:0  
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16.
Free living cells of Rhizobium leguminosarum contain a constitutive glucose uptake system, except when they are grown on succinate, which appears to prevent its formation. Bacteroids isolated from Pisum sativum L fail to accumulate glucose although they actively take up 14C-succinate. Glucose uptake in free living cells is an active process since uptake was inhibited by azide, cyanide, dinitrophenol and carbonyl-m-chlorophenyl hydrazone but not by fluoride or arsenate. The non-metabolizable analogue -methyl glucose was extracted unchanged from cells, showing that it was not phosphorylated during its transport. Galactose also appears to the transported via the glucose uptake system. Organic acids, amino acids and polyols had no effect on the actual uptake of glucose. The K m for -methyl glucose uptake was 2.9×10-4 M.  相似文献   

17.
Bacteroids of Rhizobium leguminosarum in root nodules of Pisum sativum are enclosed by a plant-derived peribacteriod membrane (PBM). The contents of the interstitial peribacteroid space (PBS) between bacteroid membrane and PBM were isolated by a controlled osmotic shock of PBM-enclosed bacteroids and analysed by two-dimensional gel electrophoresis. Silver staining revealed approximately 40 PBS polypeptides. Ex planta 35S-methionine labeling of PBM-enclosed bacteroids revealed that about 90% of the PBS proteins are synthesized by the bacteroid. Approximately 30% of the PBS polypeptides are common between the PBS and the periplasmic space of free-living bacteria; one (38kDa) PBS protein is also excreted by free-living bacteria in the bacterial culture medium. At least four bacteroid-encoded PBS polypeptides were clearly identified as symbiosis-specific.  相似文献   

18.
Microbiology - The regulatory protein encoded by the rosR gene is involved in the processes of adaptation of root nodule bacteria Rhizobium leguminosarum to changes in environmental conditions. It...  相似文献   

19.
Abstract Rhizobium trifolii TA1 and Rhizobium leguminosarum MNF 3841 grow on a range of aromatic substrates. R. trifolii TA1 possesses enzymes of both the catechol and protocatechuate pathways, whereas R. leguminosarum MNF 3841 only has enzymes of the latter pathway. The pathways are induced by growth on benzoate or 4-hydroxybenzoate, respectively, but they are not cross-inducible. 4-Hydroxybenzoate permease and hydroxylase are induced by growth on 4-hydroxybenzoate but not on protocatechuate, suggesting that they are regulated separately from protocatechuate dioxygenase. The uptake systems for both benzoate and 4-hydroxybenzoate are inhibited by azide, carbonyl cyanide m -chlorophenyl hydrazone and N , N '-dicyclohexylcarbodiimide but are insensitive to arsenate. Salicylate and protocatechuate interfere with benzoate and 4-hydroxybenzoate uptake, respectively.  相似文献   

20.
The Rhizobium leguminosarum biovar viciae nodulation protein NodO is partially homologous to haemolysin of Escherichia coli and, like haemolysin, is secreted into the growth medium. The NodO protein can be secreted by a strain of E. coli carrying the cloned nodO gene plus the haemolysin secretion genes hlyBD, in a process that also requires the outer membrane protein encoded by tolC. The related protease secretion genes, prtDEF, from Erwinia chrysanthemi also enable E. coli to secrete NodO. The Rhizobium genes encoding the proteins required for NodO secretion are unlinked to nodO and are unlike other nod genes, since they do not require flavonoids or NodO for their expression. Although proteins similar to NodO were not found in rhizobia other than R. leguminosarum bv. viciae, several rhizobia and an Agrobacterium strain containing the cloned nodO gene were found to have the ability to secrete NodO. These observations indicate that a wide range of the Rhizobiaceae have a protein secretion mechanism analogous to that which secretes haemolysin and related toxins and proteases in the ENterobacteriaceae.  相似文献   

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