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Biomedical subjects

M Bazzicalupo

Publications and source records attributed to M Bazzicalupo.

7 recordsLinked to original sources

Monitoring a genetically engineered bacterium in a freshwater environment by rapid enzymatic amplification of a synthetic DNA "number-plate".

In order to set up a sensitive and reliable detection method to monitor environmentally released genetically engineered microorganisms (GEMs) a 72-bp, double-stranded DNA fragment has been built by annealing and ligating four synthetic oligonucleotides. Binding sites for two 20-mer oligonucleotides are situated inside the DNA fragment, flanking the centre. Into the central part of the construction a 30-nucleotide identification sequence has been fitted. Thanks to the presence of the two oligonucleotide binding sites, the synthetic construction ("number-plate") can be submitted to enzymatic amplification using the polymerase chain reaction (PCR), thus enabling the identification system to take advantage of the outstanding sensitivity of this technique. When released into a freshwater microcosm, cells of Pseudomonas putida carrying a "number-plated" chromosome could be easily and rapidly detected merely by submitting boiled cell sediments to PCR amplification.

Base Sequence

DNA restriction fingerprint analysis of the soil bacterium Azospirillum.

Total DNAs of 18 strains of Azospirillum from different sources and geographical areas were compared by restriction endonuclease pattern analysis. Fragments obtained with HindIII or BglII were separated by PAGE and stained with silver nitrate. Each strain possessed a unique and reproducible fingerprint with each enzyme, thereby facilitating strain recognition. UPGMA analysis recovered clusters of band patterns that were compared to the distribution of species within the genus Azospirillum.

Bacteria

Nucleotide sequence of the gene encoding the nitrogenase iron protein (nifH) of Azospirillum brasilense and identification of a region controlling nifH transcription.

The DNA sequence was determined for the Azospirillum brasilense nifH gene and part of the nifD gene. The nifH gene is 885 bp long and encodes 293 amino acid residues. The region upstream of the nifH open reading frame contains a putative promoter whose sequence shows perfect homology with promoters of other diazotrophic bacteria and two putative upstream activator sequences. Experiments with the promoter-probe vector pAF300 showed that this region promotes transcription in response to the nitrogen and oxygen availability of the cell. The amino acid sequence was deduced from the DNA nucleotide sequence of nifH; the polypeptide contains the four cysteine residues highly conserved among other nifH products and an arginine residue at position 101 which could be the site of the modification occurring during the "switch-off" of nitrogenase. The codon usage appears to be very biased reflecting the high G + C content of the Azospirillum nifH gene. In a comparison of the amino acid sequence with the other 18 known nifH gene products, the A. brasilense nifH product showed the highest level of homology with fast-growing Rhizobia suggesting interesting evolutionary implications.

Amino Acid Sequence

Cloning of histidine genes of Azospirillum brasilense: organization of the ABFH gene cluster and nucleotide sequence of the hisB gene.

A cluster of four Azospirillum brasilense histidine biosynthetic genes, hisA, hisB, hisF and hisH, was identified on a 4.5 kb DNA fragment and its organization studied by complementation analysis of Escherichia coli mutations and nucleotide sequence. The nucleotide sequence of a 1.3 kb fragment that complemented the E. coli hisB mutation was determined and an ORF of 624 nucleotides which can code for a protein of 207 amino acids was identified. A significant base sequence homology with the carboxy-terminal moiety of the E. coli hisB gene (0.53) and the Saccharomyces cerevisiae HIS3 gene (0.44), coding for an imidazole glycerolphosphate dehydratase activity was found. The amino acid sequence and composition, the hydropathic profile and the predicted secondary structures of the yeast, E. coli and A. brasilense proteins were compared. The significance of the data presented is discussed.

Amino Acid Sequence

Genetic and biochemical characterization of a ribosomal mutant of Bacillus subtilis resistant to sporangiomycin.

The antibiotic sporangiomycin affects the growth of Bacillus subtilis by inhibiting protein synthesis. Mutants of B. subtilis resistant to sporangiomycin have been isolated. One of these, PB 1690, has been further studied. The analysis of subcellular fractions from the mutant has shown that the biochemical effect of the mutation is an alteration of a site on the 50S ribosomal subunit responsible for the binding of the antibiotic: the mutant ribosomes do not bind sporangiomycin and are capable of carrying out phenylalanine polymerization in the presence of sporangiomycin. The resistance mutation maps on the chromosomal region where the ribosomal markers map. The mutant strain is also resistant to the action of the chemically related antibiotic thiostrepton. Treatment of B. subtilis ribosomes with LiCl results in the detachment of a group of proteins including the one responsible for sporangiomycin resistance. Active ribosomes can be reconstructed by mixing "split proteins" and "core particles" of either parental or mutant origin. The fate of the mutant protein can now be followed by assaying reconstructed ribosomes for capacity to bind sporangiomycin and for resistance to the action of the antibiotic in the reactions for phenylalanine polymerization.

Anti-Bacterial Agents

Protein synthesis in Bacillus subtilis: differential effect of potassium ions on in vitro peptide chain initiation and elongation.

The preparation and fractionation of a highly active and stable in vitro protein-synthesizing system from Bacillus subtilis is described. Potassium satisfied the requirement for a monovalent ion when the initiation factor-dependent binding of formyl-methionyl-transfer ribonucleic acid and synthesis of formyl-methionyl-puromycin were assayed, whereas it inhibited the reactions for polyphenylalanine synthesis. On the other hand, the ammonium ion satisfied the requirement for all assayed reactions. The in vitro experimental evidence suggested that potassium is an inhibitor of one or a few specific reactions involved in peptide chain elongation in B. subtilis.

Bacillus subtilis