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Biomedical subjects

R Catallo

Publications and source records attributed to R Catallo.

4 recordsLinked to original sources

Enhanced expression of p16ink4a is associated with a poor prognosis in childhood acute lymphoblastic leukemia.

The tumor suppressor gene p16ink4a is homozygously deleted in numerous T as well as in some B lineage acute lymphoblastic leukemia (ALL). We therefore analyzed the clinical and biological implications of this feature by studying p16ink4a expression in 58 cases of childhood ALL. mRNA and protein were significantly correlated and both appeared more highly expressed in B than in T lineage ALLs: 13 out of the 15 T cell ALLs did not show any p16ink4a expression. The main result of this study is the strong prognostic value of p16ink4a expression. When stratifying the patients in three groups according to p16ink4a expression, we observed in univariate analysis: (1) the shortest disease-free survival for patients presenting a high p16ink4a level; (2) contrasting with the good prognosis in the group of patients expressing p16ink4a at low level; (3) while cases without any expression of the inhibitor were associated with a medium course of the disease (P=0.0165). This prognostic value was confirmed by the multivariate analysis showing therapeutic regimen and p16ink4a protein expression as the only variables retained in the model. A specific metabolic profile related to cellular survival and proliferation was observed in each of the three p16ink4a expression groups. Among the cell cycle-related proteins we analyzed, only p21waf1 bcl-2 and CDK4 were significantly and positively correlated to p16ink4a. Furthermore, CDK6 was also strongly expressed in the group of cases with high p16ink4a level. An enhancement of p16ink4a, p21waf1 and bcl-2 was previously described in prolonged cellular survival, while aging cells showed a decrease in CDK4 expression. The concomitant high expression of the oncogenic protein CDK4 (and of CDK6), we observed, may amplify the leukemic advantage of prolonged lifespan blast cells by favoring cell progression through G1 phase. These data suggest that at least two mechanisms may be associated in the oncogenesis of very aggressive ALLs, ie deregulation of cell multiplication and prolonged blast lifespan.

Adolescent↗

Glucocorticoids induce G1 as well as S-phase lengthening in normal human stimulated lymphocytes: differential effects on cell cycle regulatory proteins.

In order to analyze dexamethasone effects on peripheral blood lymphocyte proliferation, we defined various experimental conditions: dexamethasone introduced (i) at the time of phytohemagglutinin stimulation, (ii) 48 h after the beginning of phytohemagglutinin stimulation, and (iii) on unstimulated lymphocytes. In stimulated lymphocytes, we observed an early G1 accumulation (P < 0.005), a delayed increase in the duration of S-phase (P < 0.03), and a consequent increase in cell-cycle duration. The expression of several cyclins, cyclin-dependent kinases (CDKs), and CDK inhibitors (CKIs) was modified. Cyclin D3, CDK4, and CDK6 involved in G1-phase control were significantly decreased under dexamethasone treatment whatever the level of stimulation of lymphocytes (stimulated or unstimulated PBL). Cyclin E and CDK2, acting in G1/ S-phase transition and S-phase regulation, decreased in stimulated lymphocytes before any modification of S-phase (P < 0.002). The expression of CKIs, mainly of p27Kip1, appeared to vary with the degree of cell stimulation: a decrease was observed on treated unstimulated lymphocytes, while p27Kip1 increased in dexamethasone-treated cells during stimulation. Our results indicate sequential modifications of the cell-cycle regulation by dexamethasone starting with an action on G1 followed by S-phase control modifications. The protein analysis pinpoints the major complexes concerned: CDK4 and CDK6/cyclin D are mainly involved in G1-phase modifications, while CDK2 and its partner, cyclin E, might be specifically involved in the lengthening of S-phase. The variations observed for p27Kip1 might amplify the functional effects of dexamethasone on kinasic complexes.

Apoptosis↗

Methods for cell proliferation analysis by fluorescent image cytometry.

Methods were developed for multimodal microscopic image analysis in order to identify and analyze one cell type under various microscopic conditions. Our purpose was to quantify both total DNA content using propidium iodide (PI) stain and S-phase fraction using the bromodeoxyuridine (BrdUrd) incorporation technique in cell population subsets. The model chosen was plasma cells in bone marrow triply labelled with fluorescein isothiocyanate (FITC) for intracytoplasmic immunoglobulins, with amino-methylcoumarin-acetate (AMCA) for BrdUrd, and with PI for DNA. Image analysis included three phases. First, plasma cells were recognized on FITC images, and the centroid positions were stored. Second, plasma cell nuclei were geodesically reconstructed from these stored positions using PI images in which DNA content was measured, and the nuclear mask outlines were stored. Third, BrdUrd incorporation level of plasma cells was measured on AMCA images inside PI nuclei masks and stored. Image DNA vs. BrdUrd scatterplots were obtained for cells selected according to the expression of intracytoplasmic immunoglobulin. Thus, both ploidy and proliferation could be independently evaluated on a subset of the cellular population.

Animals↗

Choice of fixation and denaturation for the triple labelling of intra-cytoplasmic antigen, bromodeoxyuridine and DNA. Application to bone marrow plasma cells.

A triple staining method of intra-cytoplasmic antigen, bromodeoxyuridine (BrdU), and DNA for fluorescence image analysis is described. Several kinds of fixation and DNA denaturation methods were tested to obtain a technique suitable for heterogeneous tissues. The model chosen was the analysis of plasma cells in bone marrow. The fluorochromes used were fluorescein isothiocyanate (FITC) for intra-cytoplasmic antigens (light chain immunoglobulins), aminomethylcoumarin acetic acid (AMCA) for BrdU, and propidium iodide (PI) for DNA. The quality of the staining was analysed according to: (1) cell morphology with a good preservation of the chromatin structure, (2) intensity of light chains and of BrdU labelling, and (3) the quality of DNA staining judged from a DNA histogram. For most of the analysed tissues, fixation with methanol followed by 0.5% paraformaldehyde and denaturation by an NaOH concentration adapted to the tissue gave good results. However, in our model fixation by methanol, followed by methanol/acetic acid and denaturation of DNA by 0.03 N NaOH was the solely satisfactory technique. A good correlation (P < 0.001) was found with the plasma cell BrdU labelling index obtained with our reference immuno-enzymatic technique. Quantification of DNA content showed a satisfactory G1 peak coefficient of variation (CV) in diploid cells and a 4C to 2C ratio equal to 2. With this technique, the nuclear and cytoplasmic structures of both myeloid cells and plasma cells were well preserved, while their sensitivity to DNA denaturation was quite different.

Antigens↗