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S Ferrari

Publications and source records attributed to S Ferrari.

At least 343 records · Page 19Linked to original sources

Cell-cycle-dependent expression of human ornithine decarboxylase.

A human ornithine decarboxylase (ODC) gene probe has been isolated from a Jurkat T-cell cDNA expression library, sequenced, and used to analyze ODC mRNA levels in untransformed human lymphocytes and fibroblasts stimulated to proliferate by various mitogens. The partial cDNA sequence is 86% homologous to the mouse ODC cDNA, and Northern blots indicate that the human and mouse mRNA species are similar in size. ODC mRNA is barely detectable in quiescent human T lymphocytes and undetectable in density-arrested W138 fibroblasts. Following stimulation of T-lymphocyte proliferation with phytohemagglutinin, the ODC mRNA level rises to a peak around mid G1 phase and decreases as the cells enter S phase. Serum stimulation of density-arrested fibroblasts results in an elevation of the ODC mRNA level which persists throughout the cell cycle. Epidermal growth factor (20 ng/ml) but not insulin (10 mg/ml) or dexamethasone (55 ng/ml) stimulates ODC expression in quiescent W138 fibroblasts. Southern blots suggest that human cells have a single copy of the ODC gene.

Amino Acid Sequence↗

The complete sequence of chick apolipoprotein AI mRNA and its expression in the developing chick.

The nucleotide (nt) sequence analysis of a full-length cDNA for chick apolipoprotein AI (Apo-AI) shows an open reading frame (ORF) of 792 nt, coding for a 264-aa protein. RNase mapping and sequence analysis of the 3' end show that apo-AI mRNA consists of at least two different species of 985 and 996 nt, respectively. During the embryonic life of the chick apo-AI mRNA is found in high concentration only in the liver, while its level in the intestine, the major Apo-AI producing organ in the adult, becomes significant only after hatching. This switch from liver to intestine, as primary site of apo-AI mRNA synthesis, takes place about ten days after hatching. The developmental control of the tissue levels of apo-AI mRNA is particularly evident in the skeletal muscle, where this mRNA species is present at high level only immediately after hatching. Preliminary evidence suggests that the time-limited rise in muscle apo-AI mRNA might be due to an increased rate of transcription.

Amino Acid Sequence↗

The gene encoding human vimentin is located on the short arm of chromosome 10.

The gene for vimentin, an intermediate-filament protein, is growth regulated. We used Southern blot analysis and in situ chromosome hybridization to determine the location of the human vimentin gene. Our results show that there is only one copy of the vimentin gene and that it is located on the short arm of chromosome 10 (10pter-10q23) close to the interleukin-2 receptor gene, which is also growth regulated. In situ hybridization studies suggest that the most likely location of the vimentin gene is 10p13. Sequence similarities and homologies of human vimentin to other genes are presented.

Animals↗

Direct characterization of influenza viral NS1 mRNA and related sequences from infected HeLa cells and a cell-free transcription system.

The NS1 mRNA of the influenza A virus WSN (H0N1) strain was isolated from a cell-free transcription system, and from the cytoplasm of virus-infected HeLa cells. The 32P-labeled NS1 mRNA derived from the infected cell cytoplasm was characterized by the secondary enzymatic analysis of sixteen of its large or distinct RNAase T1-resistant oligonucleotides. Several WSN strain-specific nucleotide differences from the previously-determined sequence of NS1 mRNA from the PR8 (H0N1) strain of influenza A virus, were located within these sequences. The RNAase T1-resistant oligonucleotides were placed within the primary sequence of NS1 mRNA, using the PR8 strain sequence data. The resulting linear map was then used to identify NS2 mRNA isolated from the infected cell cytoplasm, and an NS-related RNA species generated from NS1 mRNA incubated in a HeLa cell-free extract.

Base Sequence↗

Expression of growth-regulated genes in tsJT60 cells, a temperature-sensitive mutant of the cell cycle.

We have investigated the expression of growth-regulated genes in tsJT60 cells, a temperature-sensitive (ts) mutant of Fischer rat cells, which, on the basis of its kinetic behavior, can be classified as a G0 mutant. It grows normally at 34 degrees C and also at 39.5 degrees C if shifted to the higher temperature during exponential growth. However, if the cell population is first made quiescent by serum deprivation, subsequent stimulation by serum induces the cells to enter S phase at 34 degrees C but not at 39.5 degrees C. A panel of growth-regulated genes was used that included three protooncogenes (c-fos, c-myc, and p53), several genes that are induced in G0 cells stimulated by growth factors (beta-actin, 2A9, 2F1, vimentin, JE-3, KC-1, and ornithine decarboxylase), and an S-phase gene (histone H3). The expression of these growth-regulated genes was studied in both tsJT60 cells and its parental cell line, rat 3Y1 cells. All the genes tested, except histone H3, are similarly induced when quiescent tsJT60 cells are stimulated by serum at either permissive or restrictive temperatures. These results raise intriguing questions on the nature of quiescence and the relationship between G0 and G1 in cells in culture.

Animals↗

[Urinary tract infections in a general medicine department. Comments on cases collected over 3 years].

Urinary infections often complicate the clinical course of hospitalised patients especially those with immunological diseases or under antibiotic treatment for other infectious pathologies. Urethral catheterisation is also a well known cause of such infections. The problem of urinary infections was examined in a general medical division. Over a three year period (1982-84), 384 urinary tract infections (UTI) with one infecting organism and 21 UTI with two bacterial species in urine cultures were found. UTI was more often found to be caused by gram negative than gram positive bacilli in both catheterised and non-catheterised patients and E. Coli accounted for most infections. Pseudomonas, Serratia and Acinetobacter were only found in catheterised patients and Enterobacter cloacae almost exclusively so. Among gram-positive bacilli, Enterococcus was the most common. Staphylococcus aureus was rare but created major pathogenetic and therapeutic problems. The results are discussed with particular reference to the high incidence of Escherichia coli and the significance of the different distribution of Pseudomonas, Serratia, Acinetobacter and Enterobacter cloacae between catheterised and non-catheterised patients. Finally the pathogenic and therapeutic problems of UTI caused by more than one germ are considered.

Aged↗

Characterization of the phosphorylation of rat mammary ATP-citrate lyase and acetyl-CoA carboxylase by Ca2+ and calmodulin-dependent multiprotein kinase and Ca2+ and phospholipid-dependent protein kinase.

ATP-citrate lyase and acetyl-CoA carboxylase purified from lactating rat mammary gland are phosphorylated stoichiometrically by the calmodulin-dependent multiprotein kinase from rabbit skeletal muscle. The reactions are completely dependent on the presence of both Ca2+ and calmodulin. ATP-citrate lyase and acetyl-CoA carboxylase are also phosphorylated stoichiometrically by the Ca2+- and phospholipid-dependent protein kinase (protein kinase C) purified from bovine brain. Phosphorylation of these substrates is stimulated 6-fold and 40-fold respectively by Ca2+ and phosphatidylserine. The calmodulin-dependent and phospholipid-dependent protein kinases phosphorylate the same serine residue on ATP-citrate lyase that is phosphorylated by cyclic-AMP-dependent protein kinase. The sequence of the tryptic peptide containing this site on the mammary enzyme is identical with the sequence of the peptide containing the site on ATP-citrate lyase that is phosphorylated in isolated hepatocytes in response to insulin and/or glucagon. The calmodulin-dependent, phospholipid-dependent and cyclic-AMP-dependent protein kinases phosphorylate distinct sites on acetyl-CoA carboxylase. However, one of the three phosphorylated tryptic peptides derived from enzyme treated with the phospholipid-dependent kinase is identical with the major phosphopeptide (T1) derived from enzyme treated with cyclic-AMP-dependent protein kinase. Phosphorylation of acetyl-CoA carboxylase by the phospholipid-dependent protein kinase inactivates acetyl-CoA carboxylase in a similar manner to cyclic-AMP-dependent protein kinase. With either protein kinase slightly greater phosphorylation and inactivation is seen after pretreatment of acetyl-CoA carboxylase with protein phosphatase-2A, but the effects of the protein phosphatase treatment are not completely reversed. Inactivation by the phospholipid-dependent protein kinase is Ca2+- and phospholipid-dependent, is reversed by protein phosphatase-2A, and correlates with the degree of phosphorylation. The relevance of these findings to insulin- and growth-factor-promoted phosphorylation of ATP-citrate lyase and acetyl-CoA carboxylase in intact cells is discussed.

ATP Citrate (pro-S)-Lyase↗

Tissue antigen distribution in hepatocellular carcinoma.

An immunohistochemical study on 63 hepatocellular carcinomas (HCC) was performed for the demonstration of alpha 1-antitrypsin (AAT), alpha-fetoprotein (AFP) and hepatitis B virus (HBV) antigens. AAT and AFP were also investigated in 54 cases of cirrhosis not associated with HCC. AAT was frequently expressed both in HCC (82.5%) and in cirrhosis (53.7%), whereas AFP was present in 41.2% of HCC and never detected in cirrhosis used as controls. These findings suggest that AFP is the more specific antigen for use as a marker of malignant cellular transformation. The HBsAg-positivity in 31.7% of HCC supports the hypothesis of a close link between virus B infection and the tumor.

Antigens↗

Isolation of a cDNA clone for chick intestinal apolipoprotein AI (Apo-AI) and its use for detecting apo-AI mRNA expression in several chick tissues.

Three cDNA clones for chick apolipoprotein AI (Apo-AI), the major protein component of plasma high-density lipoproteins, have been isolated. The identity of the clones has been established first by screening a cDNA library in the pEX1 expression vector with anti-Apo-AI antibodies, second by Western blot analysis of the proteins expressed by positive clones. The use of the clone containing the largest, presumably full-size, cDNA insert (apo5C12) in molecular hybridization experiments confirms that apo-AI mRNA is expressed mainly in chick small intestine and liver. Furthermore, we provide evidence that brain, heart and skeletal muscle also synthesize significant amounts of apo-AI mRNA. The Southern-blot hybridization pattern of the restriction-enzyme-digested chick DNA with the apo5C12 DNA is consistent with there being a single copy of the apo-AI gene.

Animals↗

Cellular levels of mRNA from c-myc, c-myb and c-fes onc-genes in normal myeloid and erythroid precursors of human bone marrow: an in situ hybridization study.

The expression of three onc-genes, c-myc, c-myb and c-fes, has been evaluated at the cellular level in myeloid and erythroid precursors of normal human bone marrow, by "in situ" hybridization with tritium-labelled probes. A relatively large amount of m-RNA from the three onc-genes was detected in myeloblasts and promyelocytes, but whereas the expression of c-myc and c-myb decreased in more advanced stage of maturation of the myeloid lineage, c-fes mRNA remained at a relatively high level until the granulocyte stage. c-myc and c-myb were expressed at a fairly high level in basophilic erythroblasts, which also showed low levels of c-fes mRNA. No expression of these onc-genes was detectable in more mature erythroblasts. Megakaryocytes showed high levels of m-RNA from all three onc-genes. Our results suggest that c-myc and c-myb expression is related in some way to the cellular proliferation of myeloid and erythroid precursors, whereas c-fes expression is more restricted to myeloid differentiation.

Bone Marrow Cells↗

Coding sequence and growth regulation of the human vimentin gene.

We have established the complete coding sequence of the human vimentin gene. It had 91% homology to the coding sequence of the Syrian hamster vimentin gene (Quax et al., Cell 35:215-223, 1983) and partial homology to several other sequences coding for intermediate filament proteins. The most striking difference between the Syrian hamster and human vimentin genes was in the 3' untranslated region, which was considerably longer in the Syrian hamster. Using RNA blots and a human vimentin cDNA clone from an Okayama-Berg library, we have established that expression of the vimentin gene was growth regulated. The steady-state levels of cytoplasmic vimentin mRNA in 3T3 cells were increased by serum and platelet-derived growth factor, but not by epidermal growth factor, insulin, or platelet-poor plasma. The increase in expression of the vimentin gene that occurred when G0-phase cells were stimulated to proliferate was detected in six different cell types from four different species. The expression of the vimentin gene was also increased when HL60 cells were induced to differentiate by phorbol esters; it decreased when differentiation was induced by retinoic acid.

Amino Acid Sequence↗

[Not Available].

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History, Modern 1601-↗

Expression of growth-regulated genes in human acute leukemias.

We have investigated the expression of six growth-regulated genes (c-myc, c-myb, p53, 4F1, 2F1, and ornithine decarboxylase) and the S-phase-specific histone H3 gene in acute myeloid and lymphoid leukemic cells. We have purposely chosen three growth-regulated protooncogenes that share similar biological features and three gene sequences that have in common the cell cycle dependence of their expression in cells of different tissue and in different species. The level of expression was determined by measuring the amounts of specific RNA by Northern blot analysis. Levels of expression of the six growth-regulated genes were compared to the level of expression of the S-phase-specific H3 gene and among themselves. This method distinguishes the increased expression of a growth-regulated gene due to a true altered activation from over-expression which simply reflects an increase in the fraction of cycling cells. We have found that six of 14 patients with acute leukemias have markedly high ratios of c-myc/H3, c-myc/p53, and c-myc/c-myb expression. Two patients with altered c-myc expression have also a high ratio p53/H3. Within the group of cell cycle-dependent genes the ratios of expression seem in the overall much more regular with the clear exception of a patient with acute myelogenous leukemia in which the ratios 4F1/H3 and 2F1/H3 are significantly increased. A possible interpretation of these findings is that the fraction of noncycling leukemic cells that often constitute the majority of the entire leukemic population is in some cases in a true resting state, whereas in other cases heterogeneous degrees of growth arrest might occur. The altered expression of c-myc seems the feature most commonly associated with this putative growth arrest of leukemic cells suggesting that this gene may contribute to the impairment of proliferative control that is associated with the leukemic phenotype.

Acute Disease↗

Induction of a 70,000 dalton protein in hypertrophic rat heart.

Two-dimensional gel electrophoresis analysis of the product of in vitro translation of polyadenylated RNAs extracted from rat heart rendered hypertrophic by aortic constriction, shows a new protein species not present in the map of control hearts. The same is also obtained when hypertrophy is induced by treatment with thyroxine.

Animals↗

The effect of cycloheximide on the expression of cell cycle dependent genes.

We have investigated the inducibility of several cell cycle-dependent genes (plus control sequences, not expressed in a cell cycle-dependent manner) in the presence of cycloheximide, an inhibitor of protein synthesis. The genes studied include: 1) five cDNA clones that are preferentially expressed in the G1 phase of the cell cycle: KC-1, JE-3, 2F1, 4F1 and 2A9; 2) one gene preferentially expressed in late G1/S phase: histone H3; and 3) the cell cycle-dependent oncogene p53. All the genes studied are induced by serum even in the presence of cycloheximide. Previous results in the literature have shown that 2 other oncogenes, c-myc and c-fos, can be induced by growth factors in the presence of cycloheximide. Together with our results, these findings indicate that protein synthesis is not required for the induction of at least nine cell cycle genes by growth factors.

Animals↗