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Biomedical subjects

G Mazza

Publications and source records attributed to G Mazza.

At least 91 records · Page 5Linked to original sources

Covalent structure of turnip peroxidase 7. Cyanogen bromide fragments, complete structure and comparison to horseradish peroxidase C.

The complete amino acid sequence of turnip peroxidase TP 7, the principal isoperoxidase during winter in turnip, Brassica napus L., variety Blanc dur d'hiver, has been determined by sequence analysis of cyanogen bromide fragments and of tryptic peptides. The turnip peroxidase TP 7 enzyme is composed of 296 amino acids, one hemin group and one neutral carbohydrate side chain attached through asparagine. The molecular weight of the polypeptide part is 31,060, and including hemin and carbohydrate the molecular weight of the native enzyme is close to 33,400. The isoelectric point of turnip peroxidase TP 7 is 11.6. Comparison of turnip peroxidase TP 7 and horseradish peroxidase HRP C shows that they contain four similarly located disulfide bridges and have pyrrolidone carboxylyl N termini. Their common evolutionary origin is distant as their amino acid sequences are only 49% identical. Furthermore, turnip peroxidase TP 7 differs significantly from three other isoperoxidases of turnip root, turnip peroxidases TP 1, TP 2 and TP 3, and from horseradish peroxidase HRP C in its physico-chemical and enzymatic properties, and its pronounced season-dependent appearance. All these differences of turnip peroxidase TP 7 and of the others suggest they serve separate biological functions.

Amino Acid Sequence↗

A bacterial test in liquid culture for the detection of mutagenic activity of antibacterial compounds: studies with cephalosporine HR 756.

A detailed procedure for the short term evaluation of mutagenic activity in the Salmonella assay in liquid cultures is given for Cephalosporine HR 756. The essential steps of the test are: a) determination of absence of interference of the pKM101 plasmid present in the bacterial tester strains, b) determination of the doses of the antibiotic required to obtain a limited killing, c) introduction of appropriate controls with known mutagenic compounds active in the presence and in the absence of metabolic activation, d) segregation of mutants. Following this procedure we have determined the absence of any mutagenic activity in the liquid assay of Cephalosporine HR 756.

Animals↗

Effect of 6-(p-hydroxyphenylazo)-uracil on the homologous and heterologous transduction processes in Bacillus subtilis.

We have studied the effect of 6-(p-hydroxyphenylazo)-uracil on the recombination processes that operate in the homologous and heterologous transduction mediated by PBS1 and SP10 phages of Bacillus subtilis. The results obtained demonstrate that the process of heterologous genetic exchange is sensitive to this compound, whereas the homologous process is not. The present data, along with those of our previous work (U. Canosi, A. G. Siccardi, A. Falaschi, and G. Mazza, J. Bacteriol. 126:108--121, 1976), suggest that the DNA polymerase III is involved in the recombination process that operates in transformation and heterologous transduction, whereas homologous transduction follows a partially independent pathway not involving this protein.

Bacillus subtilis↗

Studies on transduction process by SPP1 phage.

The conditions for optimal transduction efficiency of the Bacillus subtilis phage SPP1 have been investigated. By irradiating transducing lysates with u.v. light we have been able to obtain a fivefold increase in the number of transductants and to reduce strongly the interference caused by infective particles. Any dependence of SPP1 transduction on PBSX induction has been ruled out by the use of xin mutants, which are unable to induce the defective phage. SPP1 mediated transduction is susceptible to the restriction and modification system of B. subtilis. The rec functions involved in the recombination of the SPP1 transduced DNA fragment are probably identical to those required in DNA transformation and heterologous PBS1 transduction.

Bacillus subtilis↗

[Treatment of renal carcinoma with metastases].

They stress the need to evaluate certain characteristic of the tumour metastasis in the light of a series of limit events pin-pointing the lack of understanding of the natural history of renal carcinoma. They stress the need to evaluate certain characteristic of the tumour which are not normally taken into consideration by the surgeon: rate of proliferation, monitoring of hormonal receptors, and immunological monitoring. They reach the conclusion that treatment of renal carcinoma with metastasis must be the outcome of multidisciplinary planning.

Antineoplastic Agents↗

Amino-acid sequences of heme-linked, histidine-containing peptides of five peroxidases from horseradish and turnip.

In a previous paper we have characterized five plant peroxidases, P1, P2, P3 and P7 of turnip and horseradish isoperoxidase C by peptide mapping studies, and only found two highly homologous sequences present in all. Both contained histidine. The findings supported previous suggestions of two histidine sequences nearthe peroxidase heme prostetic group. In the present paper we present the amino acid sequences around the histidine residues of all four turnip peroxidases, i. e. of 25 residues around the histidine proximal to heme, and 34 residues around the probably distally located histidine, and compare them with the histidine-containing sequences of the complete amino acid sequence of horseradish isoperoxidase C. Substitutions of residues are rare close to these histidines, but more abundant with greater distances. The probably distal sequences of P1, P2, P3, and horseradish peroxidase C all contain two histidine residues, at positions 40 and 42. In P7, however, residue 40 is phenylalanine, a substitution presumably important to its abnormal physio-chemical and enzymic properties. Gel filtration profiles of tryptic digests of the turnip isoperoxidases confirm their previous classification into a P1, and P3 group and a distinct P7 enzyme, but further prove the presence of several sites of carbohydrate attachment in P1, P2 and P3 peroxidases, like in horeseradish peroxidase C which has eight sites. P7 has one such site.

Amino Acid Sequence↗

Host cell reactivation of Bacillus subtilis bacteriophages.

Host cell reactivation of ultraviolet-irradiated phage can be used as a probe of the bacterial repair system and to determine phage and cellular contributions to the repair process. Using the Bacillus subtilis phages SPP1, SP01, phie, and phi29, we found that the uvr-1 and polA functions are involved in the host cell reactivation of the four phages. SPP1 was the only phage whose reactivation was also decreased in recA, recD, and recF mutant cells. We studied variations of host cell reactivation for SPP1 during spore outgrowth; at high ultraviolet doses the activity of a spore repair system requiring deoxyribonucleic acid polymerase I became evident. The spore repair system was completely replaced by the vegetative one by 120 min of outgrowth.

Bacillus subtilis↗

On the identity of dnaP and dnaF genes of Bacillus subtilis.

The dnaP strains of Bacillus subtilis are altered in the initiation of DNA replication at high temperature (Riva et al., 1975). Fine mapping of the gene shows that it is located very close to the dnaF gene described by Karamata and Gross (1970) and mapped by Love et al. (1976) in the polC region. The phenotype of both mutants is indistinguishable: the DNA synthesis stops at non permissive temperature after synthesizing an amount of DNA equivalent to the completion of the rounds of replication already initiated; at permissive temperature they are abnormally sensitive to MMS and are reduced in the ability to be transformed. Both mutants are to be considered as belonging to the dnaF locus. The dnaF gene is very close to the polC gene, which specifies the DNA polymerase III of B. subtilis. The DNA polymerase III of the dnaF mutants is not temperature sensitive in vitro, however, the level of this enzyme is lower by a factor of 4 or 5 in the dnaF mutants, at the permissive temperature. Following shift of dnaF cultures to the non permissive temperature, the level of DNA polymerase III activity specifically decreases further by a factor of at least 10 in the mutant, whereas the DNA polymerase I level is unaffected. The possible roles of the dnaF gene in the control of the cellular level of the DNA polymerase III, and the possibility of a regulatory role of DNA polymerase III in the initiation of DNA replication in bacteria are discussed.

Bacillus subtilis↗

Effect of deoxyribonucleic acid replication inhibitors on bacterial recombination.

Two inhibitors of replicative deoxyribonucleic acid (DNA) synthesis, nalidixic acid (NAL) and 6-(p-hydroxyphenylazo)-uracil (HPUra), showed different effects on genetic recombination and DNA repair in Bacillus subtilis. Previous work (Pedrini et al., 1972) showed that NAL does not interfere with the transformation process of B. subtilis. The results reported in this work demonstrated that the drug was also without effect on the transfection by SPP1 or SPO-1 phage DNA (a process that requires a recombination event). The drug was also ineffective on the host cell reactivation of ultraviolet-irradiated SPP1 phage, as well as on transfection with ultraviolet-irradiated DNA of the same phage. HPUra instead markedly reduced the transformation process, as well as transfection, by SPO-1 DNA, but it did not affect the host cell reactivation of SPO-1 phage. In conclusion, whereas the NAL target seems to be specific for replicative DNA synthesis, the HPUra target (i.e., the DNA polymerase III of B. subtilis) seems to be involved also in recombination, but not in the excision repair process. The mutations conferring NAL and HPUra resistance used in this work were mapped by PBS-1 transduction.

Bacillus subtilis↗

New purine markers in Bacillus subtilis.

Four new genetic markers involved in purine biosynthesis in Bacillus subtilis are clustered and lie between purE and tre. An additional new pur marker is located near purA.

Bacillus subtilis↗

Bacillus subtilis mutant temperature sensitive in the synthesis of ribonucleic acid.

A Bacillus subtilis temperature-sensitive mutant (PB1653) has been isolated in which the rate of ribonucleic acid (RNA) synthesis sharply decreases after shift to 45 degrees C. Both stable and unstable RNAs are affected by the mutation. The possibility that the block of transcription at high temperature could be due to a "stringent" effect, mediated by an increase in the concentration of "magic spot" nucleotides, has been ruled out. Treatment with chloramphenicol (or streptomycin) rapidly restores the rate of RNA synthesis at 45 degrees C. The synthesis of RNA in the mutant during the early phases of spore germination is not temperature sensitive. The phage-specific transcription during infection with SPP1 phage, at high temperature, is less affected than that of the bacterial chromosome. In vitro experiments indicate that, in the mutant at high temperature, RNA polymerase undergoes a change in template specificity. The rna-53 mutation has been located on the B. subtilis genetic map near the hisA locus.

Bacillus subtilis↗

Pleiotropic, extragenic suppression of dna mutants in Bacillus subtilis.

Thermosensitive (dna) mutants of Bacillus subtilis defective in deoxyribonucleic acid replication can be divided into two groups on the basis of their ability to spontaneously yield secondary mutants with an HDS phenotype (thermoin-sensitivity and resistance to aryl-azo-pyrimidines) at frequencies higher than 10(-8). Such a phenotype is due to alleles at the hds locus (mapping close to cysA), which act as extragenic pleiotropic suppressors. HDS suppressibility has been used as a screening tool to identify new dna strains among uncharacterized temperature-sensitive mutants.

Alleles↗

Ureteric substitution with a tapered ileal loop. An experimental study.

The authors present their experience in replacement of the ureter by a tapered ileal loop over a 24-month period, in a group of 10 dogs. With regard to the morphological and functional behaviour of the neo-ureter, the results on the whole were considered satisfactory. However, some problems such as pyelonephritis, associated with obstruction due to mucosal hyperexcretion, remain unsolved at the present time.

Animals↗

Proton magnetic resonance studies of peroxidases from turnip and horseradish.

Proton NMR spectra at 270 MHz have been measured for horseradish peroxidase and turnip peroxidase isoenzymes (P1, P2, P3 and P7) in both their high spin ferric native states and as the low spin ferric cyanide complexes. Resonances of amino acids near the heme have been identified and used to investigate variations in the structure of the heme crevice amongst the enzymes. Ligand proton resonances have been resolved in spectra of the cyanide complexes of the peroxidases and these provide information on the heme electronic structure. The electronic structure of the heme and the tertiary structure of the heme crevice are essentially the same in the acidic turnip isoenzymes, P1, P2 and, to a lesser extent, P3 but differ in the basic turnip enzyme, P7. The heme electronic structure and nature of the iron ligands in peroxidases are discussed. Further evidence is presented for histidine as the proximal ligand. A heme-linked ionizable group with a pK of 6.5 has been detected by NMR in the cyanide complex of horseradish peroxidase.

Binding Sites↗

Similarities and differences of five peroxidases from turnip and horseradish. Peptide mapping studies on glycoproteins.

Four isoperoxidases of turnip root and isoperoxidase C of horseradish root were digested with trypsin, and their peptide maps, prepared by high-voltage paper electrophoresis, were compared. All five tryptic digests were completely soluble at pH 8. The maps were developed with a variety of general and specific reagents: ninhydrin, histidine, tyrosine, tryptophan and arginine reagents. Cystine peptides and cysteic acid derivatives have also been characterized. All detected half-cystine residues seemed engaged in disulfide bridges. For each individual peroxidase the number of specifically staining peptides agreed very well with the amino acid composition. The two most acidic peroxidases of turnip, P1 and P2, only differ significantly in one peptide. The P2 gene is tentatively proposed to have developed from the P1 gene by a single base mutation, changing an asparagine residue to alysine residue. A less acidic turnip peroxidase, P3, is distinct, although related to peroxidases P1 and P2. Horseradish isoperoxidase C also belongs to this group which appears to be closely related in the amino acid sequences around four disulfide bridges. Peroxidase P7 differs from this group, at least around two of its disulfide bridges, and therefore, may differ from the other four in parts of its three dimensional structure. Sequences of particular importance to peroxidase function must be present in all peroxidases. From the peptide mapping studies we only find two highly homologous sequences present in all five examined peroxidases. Both contain histidine. This finding corroborates previous suggestions of two histidine sequences near the peroxidase heme prosthetic group. The rules applied in relating peptides of different proteins are outlined, and the sources of errors in mapping of glycoproteins of high carbohydrate content (about 20%) are discussed in detail.

Amino Acids↗