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C Dussert

Publications and source records attributed to C Dussert.

25 records · Page 2Linked to original sources

Molecular organization and clustering of cell-wall-bound enzymes as a source of kinetic apparent co-operativity.

When fixed charges and enzyme molecules are not homogeneously distributed in a matrix, the degree of organization of charges, of enzyme molecules and of charges with respect to enzyme molecules modulate the enzyme reaction rate. The overall reaction velocity of the bound enzyme system may be expressed in terms of monovariate moments of the charge density distribution and of the bivariate moments of the charge and enzyme density distributions. With respect to the situation where fixed charges and enzyme molecules are randomly distributed in the matrix, the molecular organization, as expressed by the monovariate and bivariate moments results in an increase or a decrease, of the overall reaction rate, as well as in the appearance of a kinetic cooperativity. The degree of spatial organization of objects may be expressed quantitatively through the concept of minimal spanning tree. This concept may thus be applied to the quantification of the degree of order that may exist in the bidimensional distribution of enzyme molecules in a charged matrix. Primary walls of isolated plant cells in sterile culture behave as a polyanion and contain different enzymes. The spatial distribution in sycamore cell walls of an acid phosphatase has been studied through the concept of minimal spanning tree and shown to be non-randomly distributed in the polyanionic matrix, but clustered in that matrix. This spatial organization results in a modulation of the reaction rate of the cell-wall-bound phosphatase reaction. Both the theoretical and experimental results presented in this study leave little doubt as to the validity of the idea that in situ the organization of fixed charges and enzyme molecules modulate the overall dynamics of enzyme reactions.

Acid Phosphatase↗

Toward a new approach in tumor cell heterogeneity studies using the concept of order.

A new methodology was developed to study dynamic processes topographically in biological systems by means of a graph-theoretical method. It is based upon order parameters obtained from a minimal spanning tree analysis coupled with computer simulations. The method was used to analyse the heterogeneous behavior of two neoplastic cell lines after treatment with laminin. The laminin-induced cell detachment was quantitated and shown to be inversely related to cell population density and thus to cellular interactions. Our statistical analysis is a very powerful tool to obtain information from seemingly disorderly heterogeneous biological models.

Animals↗

Quantization of directional properties in biological structures using the Minimal Spanning Tree.

A method that uses the Minimal Spanning Tree graph has previously been developed (Dussert et al., 1987, J. theor. Biol. 125, 317) in order to analyse the degree of order in biological structures. This graph is shown here to be very powerful in bringing out directional properties of biological structures which cannot be revealed by a simple visual examination. The method is illustrated by means of various computer simulations.

Computer Simulation↗

Minimal spanning tree analysis of biological structures.

A new approach to study order and disorder in biological membranes and more generally in biological structures is developed. It is based on a graph constructed on the set points representing the position of particles. From this graph, which is called the minimal spanning tree, it is possible to deduce two parameters, namely the average length m and the standard deviation sigma which are characteristic of the repartition to be studied. The use of a diagram involving both m and sigma makes it possible to determine the degree of order by taking a simple reading in the (m, sigma) plane.

Cell Membrane↗

Reliability and discriminant validity of HER2 gene quantification and chromosome 17 aneusomy analysis by real-time PCR in primary breast cancer.

There is an increasing demand for the evaluation of HER2 status in breast cancer. In this study, sections from fixed tissues and triton extracts of tissue homogenates were obtained from 163 malignant breast tumors and analyzed in parallel using immunohistochemistry combined with fluorescence in situ hybridization, as gold standard tests, and an ELISA test (c-erbB2/c-neu Rapid Format ELISA, Oncogene Research Products, USA). Tumor DNA was employed to evaluate two quantitative PCR methods: the HER2/neu DNA Quantification Kit (Roche Diagnostics GmbH, Germany), which uses the gastrin chromosome 17 reference gene, and our recently developed Oncolab qPCR assay, where both a chromosome 17 gene (somatostatin receptor type II (SSTR2)) and a non-chromosome 17 reference gene (glyceraldehyde-3-phosphate deshydrogenase (GAPDH)) were used to detect an increase in HER2 gene copy number and to evaluate the aneusomy of chromosome 17, respectively. By IHC/FISH and ELISA, HER2 was overexpressed in 27 (16.6%) and 24 (14.7%) samples, respectively. With the Roche and Oncolab qPCR assays, 29 (17.8%) samples showed a ratio of HER2/gastrin > or = 2.0 and 26 (16.0%) showed a ratio of HER2/SSTR2 > or = 2.0, respectively. In samples presenting HER2/SSTR2 <2.0 and HER2/GAPDH > or = 2.0, which was indicative of a chromosome 17 polysomy, we observed a modest increase in HER2 protein expression. Complete agreement between the four methods for HER2 status determination was obtained for 154 (94.5%) samples. Overall, these results demonstrate that quantitative PCR is a reliable method for analyzing HER2 status and chromosome 17 polysomy.

Biomarkers, Tumor↗

Mode of EGF action on cell cycle kinetics in human breast cancer cell line MCF-7: some evidence that EGF acts as a "progression factor".

EGF is known to play a very important role in the growth regulation of tumor cells. We have determined the effect of EGF in the absence and in the presence of serum on the cell cycle of MCF-7 cells synchronized in the G1 phase by serum deprivation. In the presence of 1% serum, EGF was found to increase DNA synthesis to 120% of control (P < 0.02), but did not modify the transition time from G1 into S phases, nor the cell doubling time during the first generation following the cell synchronization. The autoradiography analysis of 3H-thymidine labeled cells indicated that, following 24 h of EGF treatment, a constant additional number of cells (11 +/- 1.5%, P < 0.002) were recruited into the S phase in the presence as well as in the absence of serum. These data indicate that EGF exerts its mitogenic effect on MCF-7 cells by increasing the percent of S phase cells without modulating the cell doubling time. However, in the absence of serum a significant increase of thymidine incorporation in whole cells required 12 h of EGF treatment, whereas a 6 h-incubation with EGF was sufficient to stimulate DNA synthesis when synchronized cells were pretreated with serum for 6 h, suggesting that EGF sensitivity is dependent on the cell advance into the G1 phase at the moment of EGF addition. Topographical analysis of 3H-thymidine-labeled cells aimed at determining the spatial distribution of cells in culture revealed that EGF-stimulated cells were disposed near proliferative cells, indicating the local influence on cell proliferation. Taken together, our results suggest that in the MCF-7 cell line, EGF acts in the G1 phase by increasing the proportion of S cells without affecting the duration of the cell cycle. In our model, EGF seems to act as a "progression factor", in that it stimulates only cells already traversing a certain stage in the G1 phase under the action of serum factors, cell secreted diffusible products and cell-cell contact.

Autoradiography↗