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M Lanciotti

Publications and source records attributed to M Lanciotti.

15 recordsLinked to original sources

The combination of gamma-interferon and tumor necrosis factor causes a rapid and extensive differentiation of human neuroblastoma cells.

Neuroblastoma (NB), a tumor originating from the sympathetic nervous system, is the most common extracranial neurological tumor of childhood. Human NB cells may differentiate in vitro under treatment with biological agents, as gamma-interferon (IFN-gamma) and tumor necrosis factor (TNF). Unfortunately, NB cell lines resistant to the differentiation-inducing effects of both drugs have been observed. Here we demonstrate that a combination of IFN-gamma plus TNF causes extensive and generalized differentiation of NB cells toward a neuronal phenotype. Both IFN-gamma and TNF, given alone, moderately reduced cell growth and induced partial morphological maturation. Their combination further reduced cell proliferation. The combined treatment gave a synergistic rather than additive cytostatic effect, documented also by a dramatically enhanced differentiation toward a neuronal morphology. Membrane immunofluorescence showed a homologous and heterologous up-regulation of IFN-gamma receptor, as well as a marked induction of HLA Class I antigens and, to a lesser extent, of Class II antigens on NB cells induced to differentiate. Treatment of NB cell lines with IFN-gamma/TNF results in the induction of a differentiated phenotype, as indicated by the increased expression of the Mr 160,000 and 200,000 neurofilament proteins and that of microtubule-associated proteins. Evaluation of biochemical markers of neuronal differentiation confirmed the ability of the combined treatment to induce neuroblast maturation. These results suggest that the combination of IFN-gamma and TNF should be considered for experimental clinical trials in neuroblastoma.

Acetylcholinesterase

A combined evaluation of biochemical and morphological changes during human neuroblastoma cell differentiation.

1. The effects of retinoic acid, gamma-interferon, cytosine arabinoside, nerve growth factor, tumor necrosis factor, and 12-O-tetradecanoylphorbol 13-acetate on the human neuroblastoma cell line, LAN-5, were studied. Intracellular levels of acetylcholinesterase, neuron-specific enolase, catecholamines and related neurotransmitters, vasointestinal peptide, and substance P were evaluated after induction. 2. Cell morphology was strongly affected by retinoic acid, gamma-interferon, cytosine arabinoside, and 12-O-tetradecanoylphorbol 13-acetate. The main effects of retinoic acid and gamma-interferon were the loosening of cell clusters and the extension of long neurites; cytosine arabinoside induced cell body swelling and marked neuritogenesis. Following 12-O-tetradecanoylphorbol 13-acetate treatment, the cells became small, round, and neuritic. Conversely, modifications induced by nerve growth factor and tumor necrosis factor were mild. Cell proliferation rate was reduced by retinoic acid, gamma-interferon, cytosine arabinoside, and 12-O-tetradecanoylphorbol 13-acetate, while nerve growth factor and tumor necrosis factor were devoid of effects. 3. Acetylcholinesterase activity was significantly stimulated by retinoic acid and by gamma-interferon. Neuron-specific enolase activity was unaffected by all treatments except 12-O-tetradecanoylphorbol 13-acetate, which enhanced it by 1.6-fold. 4. The cellular catecholamine and related metabolite content was lowered by retinoic acid and gamma-interferon, while cytosine arabinoside and, even more, 12-O-tetradecanoylphorbol 13-acetate showed a stimulatory activity on their intracellular accumulation. 5. Finally, the cell-associated vasointestinal peptide level was strikingly increased by gamma-interferon and, to a lesser extent, by retinoic acid, cytosine arabinoside, and 12-O-tetradecanoylphorbol 13-acetate. 6. It is concluded that the most relevant biochemical changes associated with LAN-5 cells differentiation involve the repertoire of neurotransmitters and neuropeptides. These events vary in quality and in quantity, likely due to the pattern complexity of gene expression triggered by each inducer in determining the diversity of neuronal phenotypes.

Biomarkers, Tumor

Accumulation of m-iodobenzylguanidine by neuroblastoma cells results from independent uptake and storage mechanisms.

The modalities of uptake and storage of iodine-labeled m-iodobenzylguanidine (MIBG) by four human neuroblastoma cell lines have been studied. SK-N-BE(2)C cell line has been shown to possess the specific (type 1) MIBG uptake, as well as an efficient extravesicular storage mechanism. Conversely, LAN-5 cells, which show a nonsaturation kinetic of MIBG incorporation, lack only the ability to efficiently store the MIBG taken up by a mechanism that can be pharmacologically defined as uptake 1. The two other neuroblastoma cell lines tested, GI-LI-N and GI-CA-N, lack both uptake and storage capacity. In view of the fact that the only detailed study on specific MIBG uptake by a human neuroblastoma cell line has been carried out on SK-N-SH, a highly heterogeneous cell line, our report provides new insights on the molecular and cellular pharmacology of radiolabeled MIBG.

3-Iodobenzylguanidine

Gamma-interferon, retinoic acid, and cytosine arabinoside induce neuroblastoma differentiation by different mechanisms.

1. The effects of gamma-interferon (gamma-IFN), retinoic acid (RA), and cytosine arabinoside (ARA-C) on the growth, morphology, and phenotype of the human neuroblastoma (NB) cell lines, LAN-1 and GI-ME-N, have been extensively tested. 2. RA, gamma-IFN, and ARA-C induced a dose-dependent morphological differentiation and growth inhibition, without affecting cell viability. Cells exposed to 10(-6) M RA or 1000 U/ml gamma-IFN significantly decreased their growth rate within the first 24 and 48 hr of culture, respectively. Cells became smaller and polygonal and sprouted long cellular processes with varicosities along their courses. In contrast, ARA-C-differentiated cells were larger and flattened, with few elongated dendritic processes. 3. Analysis of membrane and cytoskeletal markers by immunofluorescence and Western blot showed several changes in NB-specific antigen expression after 5 days of treatment with all inducing agents. Analysis of labeled phosphatidylinositol metabolites from prelabeled cells showed, within 1 min of treatment with RA, a rapid decrease in inositol 1,4,5-trisphosphate and of 1,2-diacylglycerol levels. No changes in inositol phospholipid metabolism were observed in gamma-IFN- or ARA-C-treated cells. 4. We conclude that RA-induced decrease in phosphatidylinositol (PI) hydrolysis is not likely to be a consequence of the acquisition of a different phenotype, as its changes precede the acquisition of neuronal markers. In addition, gamma-IFN and ARA-C, both inducing a mature phenotype, did not affect PI hydrolysis. 5. Decreased PI hydrolysis seems to be sufficient, although not necessary, to commit NB cells to neuronal differentiation. Analysis of molecular mechanisms associated with NB cell differentiation may be helpful to clarify the potential of various biological agents in affecting the development of the neural cell.

Antigens, Neoplasm

Retinoic acid rapidly decreases phosphatidylinositol turnover during neuroblastoma cell differentiation.

Phosphatidylinositol (PI) turnover has recently been implicated in the regulation of cell proliferation and transformation. We have investigated its role in differentiation using LAN-1 cells, a human neuroblastoma cell line that can be induced to differentiate along the neuronal pathway by retinoic acid (RA). We have found that treatment of LAN-1 cells with RA is followed by a rapid decrease of inositol phospholipid metabolism, using myo-[1,2-3H]inositol or [1(3)-3H]glycerol. No changes were observed in both [3H]inositol and [3H]glycerol uptake within 24 h of RA treatment. Decreased incorporation of the metabolic precursor into PI 4-monophosphate and PI 4,5-bisphosphate occurred within 1 h of RA treatment. No changes were seen in the specific radioactivity of the precursor pools up to 1 h of treatment with RA. Analysis of labeled PI metabolites from prelabeled cells indicated a rapid decrease of inositol 1,4,5-trisphosphate and 1,2-diacylglycerol content within 1 min of induction of LAN-1 cell differentiation. These findings constitute the earliest reported events in neuroblastoma cell differentiation.

Cell Differentiation

Retinoic acid inhibits phosphatidylinositol turnover only in RA-sensitive while not in RA-resistant human neuroblastoma cells.

Phosphatidylinositol (PI) turnover has recently been implicated in the regulation of cell proliferation and transformation. We have investigated its role in differentiation using LAN-1 cells, a human neuroblastoma cell line which can be induced to differentiate along the neuronal pathway by retinoic acid (RA), and a derivated RA-resistant subline of it (LAN-1-res). We have found that treatment of LAN-1 cells with RA is followed by a rapid decrease of inositol phospholipid metabolism, using myo-[1,2-3H] inositol or [1,(3)-3H] glycerol. Analysis of labelled phosphatidylinositol metabolites from prelabelled LAN-1 cells indicated a rapid decrease of inositol (1,4,5)-trisphosphate and (1,2) diacylglycerol within 1 min. of induction of differentiation by RA, while no changes were observed in RA-treated LAN-1-res cells. These findings indicate that phosphoinositides-derived metabolites may be directly implicated in the induction processes of RA-triggered NB cell differentiation.

Cell Differentiation

Phosphatidylinositol turnover is not a general regulator of neuroblastoma cell differentiation: comparison between two differentiating agents, retinoic acid and gamma-interferon.

The turnover of phosphatidylinositol (PI) is believed to constitute a crucial step in the signaling pathways for stimulation of cells by a variety of bioactive substances, including differentiating agents; however decisive evidence for the idea has not been obtained. In the present paper, we investigated the involvement of PI turnover in cell differentiation using a human neuroblastoma cell line, LAN-1, which can be induced to differentiate along the neuronal pathway by both retinoic acid (RA) and gamma-interferon (gamma-IFN). Analysis of labelled phosphatidylinositol metabolites from prelabelled cells indicated a rapid decrease of inositol 1,4,5-trisphosphate and 1,2-diacylglycerol within 1 min of induction of LAN-1 cell differentiation by RA, while no changes were observed in gamma-IFN-treated cells. These findings indicate the occurrence of decreased inositol phospholipid turnover in RA-treated LAN-1 cells and suggest that phosphoinositide-derived metabolites may not constitute general regulators of cellular differentiation.

Cell Differentiation

Morphologic and phenotypic changes of human neuroblastoma cells in culture induced by cytosine arabinoside.

The effects of cytosine-arabinoside (ARA-C) on the growth and phenotypic expression of a new human neuroblastoma (NB) cell line (GI-ME-N) have been extensively tested. Low doses of ARA-C allowing more than 90% cell viability induce morphological differentiation and growth inhibition. Differentiated cells were larger and flattened with elongated dendritic processes; such cells appeared within 48 h after a dose of ARA-C as low as 0.1 micrograms/ml (about 1000-fold lower than the conventional clinic dose). The new morphological aspect reached the maximum expression after 5-6 days of culture being independent from the addition of extra drug to the culture. A decrease in [3H]thymidine incorporation was also observed within 24 h and the cell growth was completely inhibited on the sixth day. Moreover, ARA-C strongly inhibited anchorage-independent growth in soft agar assay. Membrane immunofluorescence showed several dramatic changes in NB-specific antigen expression after 5 days of treatment with ARA-C. At the same time ARA-C also modulated cytoskeletal proteins and slightly increased catecholamine expression. These findings suggest that noncytotoxic doses of ARA-C do promote the differentiation of GI-ME-N neuroblastoma cells associated with reduced expression of the malignant phenotype.

Cell Differentiation

Purification to homogeneity and biochemical characterization of two suppressor factors from human malignant T-cells.

A cell clone (GI-CO-T-9) derived from a long term T-cell culture (PF-382), established from a patient affected by acute T-lymphoblastic leukemia (T-ALL), was selected for the presence in the culture medium of factors suppressing T-cell proliferation. The crude supernatant has been subjected to a multi-step chromatographic fractioning, including: preparative gel permeation, anion exchange, and hydrophobic interaction High Performance Liquid Chromatography (HPLC). The highly purified material was characterized by polyacrylamide gel electrophoresis in sodium dodecyl sulfate (SDS-PAGE), revealing single bands of 115 Kd and 80 Kd. The isoelectric points (pI), determined by flat-bed isoelectric-focusing, were 7.4 for High Molecular Weight Suppressor Factor (HMWSF) and 3.5-3.6 for Low Molecular Weight Suppressor Factor (LMWSF).

Cell Line

A human acute leukemia-derived T-cell line produces two inhibitor factors which suppress lymphocyte proliferation: characterization and purification of the molecules.

The crude supernatant of an CD1+/CD8+ T-cell clone (GI-CO-T-9) established from a long standing culture of an acute T-lymphoblastic leukemia (T-ALL) was shown to inhibit the responsiveness of normal PBMC to PHA. This clone does not produce TNF-alpha, TNF-beta, alpha-IFN, tau-IFN, IL-1, IL-2 and has no NK-like activity. The crude supernatant has been subjected to a multi-step chromatographic fractioning. Preparative gel permeation HPLC allowed us to recover two peaks of biologic activity in the range of 100-120 kDa and 75-85 kDa (referred to as "high molecular mass inhibitor factor", HMMIF, and "low molecular mass inhibitor factor", LMMIF, respectively). Both fractions were then subjected to anion exchange HPLC: HMMIF was recovered in fractions eluting at 0.04 M NaCl while LMMIF eluted at higher ionic strength (0.48 M NaCl). The fractions with biologic activity recovered from anion exchange HPLC have been subjected to hydrophobic interaction HPLC (HIC) for final purification. The highly purified material was characterized by polyacrylamide gel electrophoresis with and without sodium dodecyl sulfate (SDS) revealing single bands of 115 kDa and 80 kDa. The isoelectric points (pI), determined by flat-bed isoelectricfocusing, were 7.4 for HMMIF and 3.5-3.6 for LMMIF. Studies on temperature lability indicated that both proteins are stable for 3-4 hours at room temperature (RT), 24-36 hours at +4 degrees C and 7-10 days at -80 degrees C.

Chromatography, High Pressure Liquid

[Immunosuppressive factors produced by a T cell line derived from acute lymphoblastic leukemia].

The supernatant of CD8+ cells, isolated from a permanent lymphoblastoid cell clone established from a long term culture of a T cell acute lymphoblastic leukemia, contained two distinct molecules with suppressive activity on PHA1-induced PBMC proliferation. This clone does not produce TNF-alpha, TNF-beta, alpha-IFN, gamma-IFN, IL-1, IL-2 and has not natural killer activity. In the attempt to purify and biochemically characterize the lymphoblastic cell line-derived T-cell SFs, a multi-step chromatographic separation has been used. Two different peaks of biologic activity have been separated by HPLC gel permeation in the range of 100-120 Kd and 75-85 Kd referred to as high molecular weight suppressor factor HMWSF, and low molecular weight suppressor factor LMWSF, respectively. These fractions were then concentrated, dialyzed and further purified by anion exchange HPLC. This chromatographic step allowed us to considerably purify the two SFs. The biologically active fractions derived from the previous chromatographic step were eventually subjected to hydrophobic interaction HPLC (HIC) for final purification. The highly purified material was characterized by polyacrylamide gel electrophoresis in sodium-dodecylsulfate (SDS-PAGE): a single band corresponding to 115 Kd was observed for HMWSF, while LMWSF yielded a single band at 80 Kd. The isoelectric points (pI) of the different SFs was determined by flat-bed isoelectric-focusing: the HMWSF yielded a single band at pI 7.4, while a much lower pI was observed for LMWSF, 3.5-3.6. Studies on temperature lability indicated that both proteins are stable for 3-4 hours at room temperature (RT), 24-36 hours at +4 degrees C and 7-10 days at -80 degrees C.

Antigens, CD

[A rapid decrease in the phosphatidylinositol cycle during neuroblastoma cell differentiation induced by retinoic acid].

Inositol phospholipid turnover is part of a signal transduction mechanism which mobilize intracellular calcium and activate a calcium- and phospholipid-dependent protein kinase, protein kinase C. Phosphatidylinositol turnover has recently been implicated in the regulation of cell proliferation and transformation. Its role in differentiation has now been investigated using LAN-1 cells, a human neuroblastoma cell line which can be induced to differentiate along the neuronal pathway by RA. Treatment of LAN-1 cells with RA was followed by a rapid decrease of inositol phospholipid metabolism, as determined by isotopic methodology employing myo-[1,2-3H] inositol or [1(3)-3H] glycerol. Analysis of labelled phosphatidylinositol metabolites from prelabelled cells indicated a rapid decrease of inositol (1,4,5)trisphosphate and (1,2)diacylglycerol within 1 min. of induction of LAN-1 cell differentiation. These findings suggest that inositol phospholipid-derived metabolites (i.e. diacylglycerol and inositol trisphosphate) may be part of the mechanism by which certain RA signals are transduced, playing a key role in control of neuroblastoma cell differentiation.

Cell Differentiation

Uridine phosphorylase from Escherichia coli B. Enzymatic and molecular properties.

Uridine phosphorylase (EC 2.4.2.3) from Escherichia coli B is an oligomeric protein composed of four identical subunits of 29,000 mol. wt. The enzyme has four half-cystine residues per subunit titrable only in denaturing condition. No disulphide linkages either inter- or intra-chain are present. The isoelectric point is 5.25. The enzyme shows strict specificity toward uridine and 5-methyluridine and is inhibited by thymine, deoxycytidine and heavy metal ions.

Amino Acids

Cytidine deaminase from Escherichia coli B. Purification and enzymatic and molecular properties.

Cytidine deaminase (cytidine aminohydrolase, EC 3.5.4.5) from Escherichia coli has been purified to homogeneity through a rapid and efficient two-step procedure consisting of anion-exchange chromatography followed by preparative electrophoresis. The final preparation is homogeneous, as judged by a single band obtained by disc gel electrophoresis performed in the absence and presence of denaturing agents. The native protein molecular weight determined by gel filtration is 56 000. Sodium dodecyl sulfate disc gel electrophoresis experiments conducted upon previous incubation of the enzyme with dimethyl suberimidate suggest an oligomeric structure of two identical subunits of 33 000 molecular weight. The absorption spectrum of the protein reveals a maximum at 277 nm and a minimum at 255 nm. The isoelectric point is at pH 4.35. Amino acid analysis indicates an excess of acidic amino acid residues as well as six half-cystine residues. No interchain disulfide groups have been evidenced. According to Cleland's nomenclature, kinetic analysis shows a rapid-equilibrium random Uni-Bi mechanism. Cytidine deaminase is competitively inhibited by various nucleosides. Km values for cytidine, deoxycytidine, and 5-methylcytidine are 1.8 X 10(-4), 0.9 X 10(-4), and 12.5 X 10(-4) M, respectively.

Amino Acids

In vitro pharmacology of metaiodobenzylguanidine uptake, storage and release in human neuroblastoma cells.

Four human neuroblastoma (NB) cell lines (LAN-5, SK-N-BE(2)C, GI-LI-N, and GI-CA-N) have been investigated for their ability to take up and store [125I]metaiodobenzylguanidine (125I-MIBG) in vitro. Only SK-N-BE(2)C and LAN-5 cells were able to specifically take up MIBG, with the former cell line showing a more efficient retention of the radiotracer. 125I-MIBG incorporation in both cell lines was inhibited by norepinephrine, desipramine, ouabain and energy depletion. Thus, all the major criteria for specific (type 1) uptake were fulfilled. Conversely, GI-LI-N and GI-CA-N cells did not show any specific uptake. Pharmacological manipulations aimed at defining the intracellular site(s) of 125I-MIBG storage clearly showed that the radiotracer is not accumulated in the reserpine-sensitive neurosecretory granules and vesicles in NB cells, contrary to what has been observed in a chromaffin derived tumor cell line (PC12). Our study provides new and suitable models to investigate in vitro the molecular and cellular pharmacology of MIBG in NB cells.

3-Iodobenzylguanidine