Search PubMed⌕ Search

Biomedical subjects

L Silengo

Publications and source records attributed to L Silengo.

At least 73 records · Page 4Linked to original sources

Hemopexin is localized to human chromosome 11.

Hemopexin, a plasma protein that migrates during electrophoresis with the beta-globulins, transports free heme to sites of its catabolism in the liver. A hemopexin cDNA clone has been utilized for mapping the hemopexin (HPX) gene to human chromosome 11 in the region pter----p11 by somatic cell hybrid analysis.

Animals↗

Cloning of the gene coding for human L apoferritin.

A recently reported cDNA clone coding for human promyelocytic L apoferritin, shows some differences with a liver L apoferritin cDNA. We have investigated if these differences are due to the expression of different genes or to an alternative transcription of an unique gene. In this paper we report data suggesting that a single gene is mainly expressed in several tissues examined. This gene has been cloned and characterized. Its sequence shows three introns: the exon sequence is identical to that of cDNA clone isolated from human liver. A minimum of five related pseudogenes have been also analysed. One of them is a processed pseudogene interrupted by an intron-like fragment.

Amino Acid Sequence↗

The primary structure of human hemopexin deduced from cDNA sequence: evidence for internal, repeating homology.

We have cloned and analyzed a cDNA containing the coding sequence for human hemopexin. We have first identified, by immunological screening of 30.000 colonies of a liver cDNA library in the expression vector pEX1, a clone carrying an insert 1170 base pairs long that shows 100% homology with a known human hemopexin peptide. The complete sequence coding for hemopexin was isolated from a liver cDNA library in the vector pAT218. The DNA insert of 1523 base pairs shows an open reading frame coding for 439 amino acids, a 3' noncoding region of 159 nucleotides long, followed by a poly(A) tail. The insert spans the entire coding region and from which the primary structure of the protein was deduced. By computer assisted analysis of the amino acid sequence, it was possible to recognize a core unit, of about 45 amino acids, which is repeated 8 or possibly even 10 fold along the polypeptide chain. This feature suggests that the gene might have evolved through a series of duplications. This characteristic, together with prediction of secondary structure, suggest a rough model for the tridimensional folding that allows some speculations on the function of hemopexin. Blot hybridization of total RNA from human liver with nick translated hemopexin cDNA detected a message of about 1600 nucleotides. Southern blot experiments to identify the hemopexin gene (s) suggest that it is not a large multi-gene family, but that there is only one or at most a few genes in the human genome.

Amino Acid Sequence↗

DNA sequences complementary to human 7 SK RNA show structural similarities to the short mobile elements of the mammalian genome.

A complementary DNA clone of 7 SK RNA from HeLa cells was used to study the genomic organization of 7 SK sequences in the human genome. Genomic hybridizations and genomic clones show that 7 SK is homologous to a family of disperse repeated sequences most of which lack the 3' end of the 7 SK RNA sequence. Only few of the genomic K sequences are homologous to both 3' and 5' 7 SK probes and presumably include the gene(s) for 7 SK RNA. The sequence of four genomic 7 SK clones confirms that they are in most cases pseudogenes. Although Alu sequences are frequently found near the 3' and 5' end of K DNA, the sequences immediately flanking the pseudogenes are different in all clones studied. However, direct repeats were found flanking directly the K DNA or the K-Alu unit, suggesting that the K sequences alone or in conjunction with Alu DNA might constitute a mobile element.

Base Sequence↗

Multiple gene deletions within the human immunoglobulin heavy-chain cluster.

Two subjects, of 11,000 healthy individuals screened, were found to be missing three and four immunoglobulin isotypes, respectively (IgA1, IgG2, and IgG4; IgA1, IgG2, IgG4, and IgE), and have been analyzed at the DNA level by means of Southern blotting and Ig heavy-chain-specific probes. A broad deletion within the heavy-chain constant region (C) gene cluster was found on chromosome 14 of both probands. Two different haplotypes are described: the first has lost the C alpha 1, C psi gamma, C gamma 2, C gamma 4, and C epsilon genes; the second lacks the C psi epsilon, C alpha 1, C psi gamma, C gamma 2, and C gamma 4 genes. These findings confirm the reciprocal order of the Ig heavy-chain genes as derived by molecular cloning. The inclusion of the C psi gamma gene within the deleted regions confirms its location between C alpha 1 and C gamma 2. From the observed frequency of the homozygous genotype, 1%-3% of healthy subjects from our population are expected to be heterozygous for multiple heavy-chain gene deletions. Cross-over between mispaired homologous regions seems to be the favored mechanism of multiple Ig gene deletions and duplications, and, generally, in the evolution of the human Ig heavy-chain gene family.

Alleles↗

Mutagenicity of diallate, sulfallate, and triallate and relationship between structure and mutagenic effects of carbamates used widely in agriculture.

In an investigation of the mutagenic properties of 20 carbamate herbicides and fungicides by use of the Salmonella/microsome mutagenicity test as developed by Ames et al. (Mutation Res., 31: 347-364, 1975), we have found that three thiocarbamate compounds, diallate, sulfallate and triallate, are mutagenic in the presence of a liver microsomal fraction on strains TA1535 and TA100. This indicates that the metabolic products of these thiocarbamates are causing base-pair substitutions. Since the 2-chloro-allyl group is common to the three mutagenic compounds but is not common to the 17 nonmutagenic compounds, a metabolic derivative of this group is probably responsible for the mutagenic activity.

Animals↗

Mutagenicity of pesticides containing 1,3-dichloropropene.

In a systematic study of the mutagenic effect of chemical compounds used as pesticides, we found that D. D. soil fumigant and Telone are mutagenic. The test was performed using the bacterial tester strains following the procedure developed by Ames. The active principle of D. D. soil fumigant and Telone is a mixture of the cis and trans isomers of 1,3-dichloropropene. Both isomers are mutagenic in Salmonella strains TA 1535 and TA 100. 2,3-Dichloro-1-propene, a minor component (5%) of the commercial preparation Telone, was also found to be mutagenic in strains TA 1535 and TA 100. Mutagenesis of these tester strains is an indication of a base-pair substitution event causing a missense mutation. 1,3-Dichloropropene is widely used in agriculture all over the world. In Italy 2,187,100 kg were produced in 1972. In California over 1,000,000 kg of 1,3-dichloropropene-containing pesticides were used in 1971.

Allyl Compounds↗

Stability of "spacer" sequences of pre-ribosomal RNA in Escherichia coli.

"SPACER" SEQUENCES OF AN RRNA gene transcript were detected with high efficiency by hybridization with DNA of the specilized transducing phase phi80rrn. Hybridization-competition studies revealed that 20 to 23% of the 30S precursor rRNA, obtained from E. coli mutant strain AB301/105, consist of "spacer" sequences. The "spacer" sequences formed hybrids with E. coli DNA, but not with Vibrio DNA. Experiments with RNA labeling in the presence of rifampicin showed that more than 80% of the spacer sequences arrive in full-length 30S pre rRNA chains before any cleavage of the RNA occurs. The hybridization assays also permitted the detection of "spacer" sequences in pulse-labeled rRNA of wild-type cells, in which the 30S pre-rRNA is already cleaved during its synthesis. Many of these "spacer" sequences degraded to alcohol-soluble materials with a half-life time of 1.2 min. The half-life was not lengthened by the treatment of cells with chloramphenicol, which stabilizes bulk mRNA. However, unstable "spacer" sequences transcribed in cells deficient in RNase III exhibited slower degradation, with a half-life time of about 9 min, whereas the cleavage of 30S pre-rRNA to smaller RNA species occurred with a half-life of about 3 min. These results are consistent with the notion that a rate-limiting action of RNase III in the initial attack leads to degradation of "spacer" sequences in rRNA gene transcript; and that degradation is not at all connected with ribosome translocation.

Base Sequence↗

Polypeptide formation and polyribosomes in Escherichia coli treated with chloramphenicol.

In Escherichia coli cultures maximally inhibited with chloramphenicol, formation of polypeptides still continued at a slow, constant rate for at least 90 min. The rate of leucine incorporation was reduced to 0.5%, but methionine was only reduced to 2%, suggesting that chains are normally initiated with methionine but are prematurely released at a short chain length. Consistent with this possibility was the distribution of the products on Sephadex columns: a range of peptides longer than 4 and shorter than 60 to 70 residues was seen. Less than 10% of the peptides broke down during a chase with cold amino acids, and during continuous labeling they accumulated progressively. On the average, one peptide was formed per ribosome every 5 min. Peptide synthesis in the presence of chloramphenicol was still dependent on ribosome translocation; it stopped in a mutant with an inactivated temperature-sensitive elongation factor G. But even in the absence of translocation, new messenger ribonucleic acid (mRNA) chains were found joined to one or a few ribosomes. The chains had a size distribution comparable to that of mRNA from polyribosomes of growing cells. They were stabilized for an average time of about 5 min, but were more rapidly degraded after puromycin was added to the cells. This suggests that stabilization may be related to the average time spent by a ribosome on an mRNA chain, with or without polypeptide formation.

Amino Acids↗

Synthesis of a large precursor to ribosomal RNA in a mutant of Escherichia coli.

A mutant of E. coli, isolated by Kindler and Hofschneider as a strain defective in RNase III activity, forms a 30S precursor of ribosomal RNA ("30S pre-rRNA"). The half-life of the 30S pre-rRNA in growing cells at 30 degrees , estimated by the rate of specific (3)[H]uridine incorporation, is about 1 min. In rifampicin-treated cells, the RNA is metabolized to mature rRNA with a half-life of about 2 min. The 30S pre-rRNA has been highly purified. DNA-RNA hybridization tests demonstrate that it contains both 16S and 23S rRNA sequences. Also, in cultures treated with rifampicin, the cleavage products of radioactive 30S pre-rRNA include 25S and 17.5S RNA species, destined to becomes 23S and 16S rRNA. Thus, each 30S chain probably contains one 16S and one 23S RNA sequence, as well as additional sequences. Two independent techniques indicate that the additional portions account for about 27% of the total lenght: (1) By comparison to the sedimentation rate and electrophoretic mobility of marker RNAs, the 30S pre-RNA has an apparent molecular weight of 2.3 x 10(6) +/- 5%, or 28% more than the sum of 16S and 23S rRNA; (2) 27% of the 30S pre-rRNA is not competed away from hybridization by mature 16S and 23S rRNA.Thus, bacteria appear to make a pre-rRNA similar in some respects to that observed in eukaryotes; though in normal E. coli cells, the pre-rRNA is ordinarily cleaved endonucleolytically during its formation.

Carbon Isotopes↗

Messenger ribonucleic acid stability in relaxed and stringent Escherichia coli starved for methionine.

During starvation for each of four amino acids, relaxed and stringent strains of Escherichia coli showed exponential decay of pulse-labeled unstable messenger ribonucleic acid (mRNA), with RNA degraded more slowly in the relaxed strain. An additional unique difference was observed during starvation for methionine: the relaxed strain showed non-exponential decay of mRNA, with a survival curve similar to that of an aging process.

Centrifugation, Density Gradient↗

3',5'-cyclic adenosine monophosphate-requiring mutants of Escherichia coli.

Mutants that require exogenous 3',5'-cyclic adenosine monophosphate (cAMP) for exponential growth were isolated from strains deficient in adenyl cyclase. Studies of one strain showed that cAMP is not incorporated into macromolecules; instead, it seems to have a regulatory function, i.e., in media lacking cAMP, cells form ribonucleic acid (RNA) and protein at linear rather than exponential rates. The exact lesion is not known; ribosomes, messenger RNA, and the beta and beta' subunits of RNA polymerase continue to be made in absence of added cAMP.

Adenylyl Cyclases↗