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B Conde

Publications and source records attributed to B Conde.

10 recordsLinked to original sources

A novel mutation within the extracellular domain of TrkA causes constitutive receptor activation.

The TrkA NGF receptor extracellular region contains three leucine repeats flanked by cysteine clusters and two immunoglobulin-like domains that are required for specific ligand binding. Deletion of the immunoglobulin-like domains abolishes NGF binding and causes ligand independent activation of the receptor. Here we report a specific mutation that increases the binding affinity of the TrkA receptor for NGF. A change of proline 203 to alanine (P203A) in the linker region between the leucine repeats and the first Ig-like domain increased NGF binding by decreasing the ligand rate of dissociation. This mutated receptor was appropriately expressed on the cell surface and promoted ligand-independent neurite outgrowth in PC12nnr5 cells. The mutant receptor was capable of spontaneous dimerization and was constitutively phosphorylated in the absence of ligand. Moreover, expression of TrkA-P203A receptor in fibroblasts induced DNA synthesis and transformation and generated tumours in nude mice. These data suggest that domains outside of the immunoglobulin-like structure contribute to ligand binding and constitutive activation of Trk receptors.

Amino Acid Substitution↗

TrkA immunoglobulin-like ligand binding domains inhibit spontaneous activation of the receptor.

The extracellular region of the nerve growth factor (NGF) receptor, TrkA, contains two immunoglobulin (Ig)-like domains that are required for specific ligand binding. We have investigated the possible role of these two Ig-like domains in receptor dimerization and activation by using different mutants of the TrkA extracellular region. Deletions of each Ig-like domain, of both, and of the entire extracellular region were made. To probe the structural constraints on ligand-independent receptor dimerization, chimeric receptors were generated by swapping the Ig-like domains of the TrkA receptor for the third or fourth Ig-like domain of c-Kit. We also introduced single-amino-acid changes in conserved residues within the Ig-like domains of TrkA. Most of these TrkA variants did not bind NGF, and their expression in PC12nnr5 cells, which lack endogenous TrkA, promoted ligand-independent neurite outgrowth. Some TrkA mutant receptors induced malignant transformation of Rat-1 cells, as assessed by measuring proliferation in the absence of serum, anchorage-independent growth, and tumorigenesis in nude mice. These mutants exhibited constitutive phosphorylation and spontaneous dimerization consistent with their biological activities. Our data suggest that spontaneous dimerization of TrkA occurs when the structure of the Ig-like domains is altered, implying that the intact domains inhibit receptor dimerization in the absence of NGF.

Amino Acid Substitution↗

Micronucleus assay in biomonitoring of patients undergoing excretory urography with diatrizoate and ioxaglate.

In order to perform biological monitoring of exposure to radiation and contrast media, we evaluated the micronucleus count (MN) and the mitotic index (MI) in peripheral blood lymphocytes from patients undergoing excretory urography with diatrizoate (20 patients) and ioxaglate (20 patients). Three samples were taken for each patient: A (before exploration), B (immediately after exploration) and C (7 days later). There were no significant differences in the radiation doses received, nor in the dose of contrast agent, between both groups. The micronucleus count increased significantly in sample B in both groups, the increase being more statistically significant in the diatrizoate group (p less than 0.01) than in the ioxaglate group (p less than 0.05). One week later, the MN were still slightly high (p less than 0.05) in the diatrizoate group only. These results suggest a clastogenic effect which depends, to a great extent, on the nature of the contrast medium.

Adolescent↗

Interactions between astroglia and ectopic granule cells in the cerebellar cortex of normal adult rats: a morphological and cytochemical study.

The cytology and organization of astroglial cells associated with ectopic granule cells (EGCs) have been studied in the cerebellar cortex of normal adult rats, using Golgi preparations, immunohistochemistry against the glial fibrillary acidic protein (GFAP) and ultrastructural analysis. Elongated perikarya of EGCs scattered in the molecular layer were usually attached to radial Bergmann fibers, which exhibited a normal morphology. A second configuration of EGCs consisted of intrafissural colonies of ectopic neurons. The molecular layer that surrounded these ectopic colonies showed disorientation of both Bergmann fibers and parallel fibers. Within the ectopic tissue, typical velate astrocytes were commonly observed. They formed homologous associations with EGC perikarya and cerebellar glomeruli. However, a restricted astroglial plasticity was detected in the form of heterologous interactions between astrocytes and Purkinje cell dendrites, including their associated synapses with parallel fibers. In spite of this astroglial plasticity, our results suggest that in the physiological systems of granule cell ectopia studied here, the different specific interactions of Bergmann glia and astrocytes with neurons tend to be conserved.

Animals↗

Modulation of cell growth and differentiation induced by prostaglandin D2 in the glioma cell line C6.

Prostaglandins are produced mainly from arachidonic in various normal and neoplastic tissues and are well-known to be involved in the regulation of tumor cell proliferation, differentiation and metastasis. Prostaglandin D2 is cytotoxic to several human tumor cell lines, has antitumoral activity in vitro and is reported to be antimetastatic. However, the effects of prostaglandin D2 on tumoral cell differentiation have not been clarified. This paper studies the effects of prostaglandin D2 on C6 rat glioma cell differentiation and proliferation. Prostaglandin D2 administration in the culture medium is observed to alter cell morphology and cytoskeleton filament patterns. These alterations suggest a cell maturation, and correlate with a drop in proliferating capacity. The antitumoral activity of prostaglandin D2 involves a biomodulation of cell parameters which would affect neoplastic processes.

Animals↗

Potentiation of radiation toxicity in C-6 glioma cells by prostaglandin D2.

The effects of prostaglandin D2 (PG D2) and X-ray radiation on the growth and cell survival of C-6 rat glioma cells were evaluated. Exponentially growing monolayer cultures of C-6 glioma cells were incubated with various concentrations of PG D2 for 24 hours prior to X-ray irradiation. PG D2 exposure was associated with an inhibition of cell growth and a reduction in cell survival (IC50 = 5.2 micrograms/ml). The combination of PG D2 and X-ray radiation significantly increased cell killing in comparison with either PG D2 or X-alone. The enhancing factor measured at a survival level of 10% was determined. PG D2 potentiation of radiation toxicity could be related to a blockage of a G1 phase of the cell cycle.

Animals↗

A new breast cancer cell line of epithelial origin is tumorigenic in athymic mice.

We have established a newly derived breast cell line, called G8. This line was obtained by means of the neoplastic transformation of murine breast cells through exposure to the carcinogen NMU and its subsequent inoculation in athymic nude mice. This cell line is highly tumorigenic in nude mice. The tumors that developed in the mice were mammary adenocarcinomas. The morphological and ultrastructural pattern suggested that these cells are of epithelial origin. Immunocytochemical studies revealed that the cells express desmoplakin, vimentin, epithelial membrane antigen, fibronectin and actin. The possibility of maintaining this cell line in vivo by means of xenografts provides very valuable material for breast cancer research, as not only does tumor growth in vivo provide the ideal material for the testing of new therapies, but it also enables the study of various important interactions between the tumor and the host tissues including tumor-stroma interactions such as angiogenesis.

Animals↗