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M Adolphe

Publications and source records attributed to M Adolphe.

At least 55 records · Page 3Linked to original sources

[Hexosaminidase and alkaline phosphatase in cartilage and chondrocyte cultures obtained from normal and arthritic rabbit joints].

Hexosaminidase and alkaline phosphatase activities were studied in a rabbit model of osteoarthritis. Enzyme activities were determined in cartilage slices and cultures of chondrocytes from normal and arthritic joints. Alkaline phosphatase activity was increased in cartilage slices from rabbits with osteoarthritis, as compared with normal cartilage, whereas no difference was seen for hexosaminidase activity. Alkaline phosphatase activity was not found in chondrocyte cultures. Hexosaminidase activity was significantly higher in chondrocytes from joints with arthritis, as compared with chondrocytes from normal joints, regardless of the mode of expression of results (enzyme activity normalized for cell protein content of for number of cells). Chondrocyte hexosaminidase activity can be proposed as an enzyme marker for osteoarthritis in chondrocyte culture models.

Alkaline Phosphatase↗

Effects of acidic and basic fibroblast growth factors on the proliferation of rabbit corneal cells.

Effects of acidic and basic forms of Fibroblast Growth Factor (aFGF, bFGF) on cell proliferation and DNA synthesis were studied in stromal fibroblasts and epithelial cells of rabbit cornea. Both aFGF and bFGF enhance proliferation of sparse cells and trigger DNA synthesis in confluent cultures. Stromal fibroblasts are more sensitive to aFGF than to bFGF in DNA synthesis. No significant difference was seen in the proliferation. Epithelial cells maintained in medium allowing survival are equally sensitive to aFGF and bFGF regardless of the assay used.

Animals↗

[The concept of cellular immortality, a myth or a reality. Example of "immortalized" articular chondrocytes].

The concept of cellular immortality, which arose from the historical studies of A. Carrel, is getting a new start with the progress of virology. However, the definition of cell immortalization is still ambiguous. Although scientists agree that cells regarded as immortal have acquired an infinite growth capacity, the relationship of this change with the first stages of transformation is difficult to clearly define. Immortalized cell lines have already been obtained from numerous cell types by using viral infection or transfection with viral and cellular genes. Immortalization of cells is interesting for three main reasons: it permits study of the steps in progression to transformation, allows establishment of cell lines for producing biological products, and permits various cell types to maintain a part of their differentiated functions. For example, hypothalamic neurosecretory cells, macrophages, astrocytes and intestinal epithelial cells have been immortalized and these lines can be used for understanding the balance between division and differentiation, and also for pharmacotoxicological studies. In our laboratory, we immortalized rabbit articular chondrocytes by transfection with SV40 large T and little t encoding genes. At the 9th subculture, when the control culture was senescent, clones of polygonal cells appeared in the transfected cell cultures. Three clones have been selected and have been maintained in culture for two years. Growth curves of normal and SV40-transfected chondrocytes were compared and displayed similar doubling times (approximately 20 hours). The exponential phase of growth was longer for immortalized cells resulting in a 2-fold higher saturation density. These cells appear to be not fully transformed and maintain some properties of differentiated chondrocytes.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Effects of oxygen-free radicals on proliferation kinetics of cultured rabbit articular chondrocytes.

It can be postulated that among the factors implicated in cartilaginous lesions, oxygen-derived free radicals seem to have a prominent part. To investigate this hypothesis, rabbit articular chondrocyte cultures have been exposed to oxygen-derived reactive species generated by the hypoxanthine-xanthine oxydase system. We observed a dose-dependent decrease of cellular growth. In order to explain this result, cell cycle progression and binucleate cell fractions have been studied. A greater number of binucleate cells and an increase in cell volume were observed. Flow cytometry analysis revealed a perturbation in cell cycle progression leading to a significant increase in the proportion of cells in G2 phase and an important augmentation in cell protein content confirmed by biochemical assays. This model shows which type of alteration can be induced by oxygen-derived free radicals in vitro. In addition, we deem this model to be useful for studying degenerative processes and for screening drugs that can scavenge oxygen-free radicals.

Animals↗

Growth-promoting effects of acidic and basic fibroblast growth factor on rabbit articular chondrocytes aging in culture.

Rabbit articular chondrocytes have a limited growth potential in vitro. After four passages in culture, chondrocytes have accomplished more than 50% of their life span. At this stage of culture, they are considered to be senescent-like, since a dramatic decrease in proliferative capacity and enhanced cell size and protein content are observed. These aged cells are, however, still able to respond to fibroblast growth factor (FGF). The addition of either acidic or basic FGF (10 ng/ml) to culture medium permitted an enhanced proliferation. The attenuation of FGF mitogenic activity during aging was not observed for both fractions. Moreover, when treated with acidic or basic FGF, aged chondrocytes had a smaller size and a lower protein content. The acidic FGF was less potent than the basic FGF in delaying the evolution of aged chondrocytes to senescence.

Animals↗

Production of insulin-like growth factors and their binding proteins by rabbit articular chondrocytes: relationships with cell multiplication.

Articular chondrocytes from 2- to 3-month-old rabbits were cultured in serum-free medium supplemented with fibroblast growth factor. The effects were studied of GH, insulin-like growth factors (IGFs), and insulin on the production of IGF-I, IGF-II, and their binding proteins (BPs) and on cell multiplication. In the control culture medium, IGF-I levels were about one fifth those of IGF-II. Western blot analysis of the BPs revealed a predominant 30K form and 24K and 20K forms which appeared inconsistently and in small quantities. Ten to 100 ng/ml human GH had no mitogenic effect, and even had a slightly inhibitory effect. IGF-I at 10 ng/ml stimulated cell multiplication above the control level by 41% and at 50 ng/ml by 74%, whereas the mean increase obtained with IGF-II (10 and 50 ng/ml) was only 19%. At the same doses, insulin had no effect, but at 5 micrograms/ml it stimulated cell multiplication by a mean of 67%. There was a positive correlation between cell number and release into the medium of both IGF-I (r = 0.86) and IGF-II (r = 0.77). Neither IGF-I nor IGF-II production was affected by GH. Insulin (5 micrograms/ml) increased IGF-I production by a factor of 2.6, but increased IGF-II production by a factor of only 1.4. Under the various conditions of culture with different doses of GH and insulin, cell multiplication, relative to the control value was positively correlated to the IGF-I/IGF-II production ratio (r = 0.77). It would, therefore, seem that IGF-I secreted by the chondrocytes may stimulate their own proliferation. When IGFs or insulin were added to the culture medium, changes in the electrophoretic profiles of the BPs included an increase in the 30K form and an increase in or the appearance of the 24K and 20K forms. Ten and 50 ng/ml IGF-I or IGF-II had effects equal to or greater than those induced by 5 micrograms/ml insulin. These results indicate that the syntheses of BPs and IGFs are coordinated and that IGFs may be implicated in the control of the synthesis of their BPs.

Animals↗

Sodium butyrate-induced structural and functional modifications in proteins of cultured rabbit articular chondrocytes.

The effects of sodium butyrate (NaB), a potent growth inhibitory agent, on actin distribution, alkaline phosphatase (AP) activity and protein content were studied in rabbit articular chondrocytes in monolayer culture. When growth of randomly proliferating cells was arrested with NaB, actin stress fibers appeared; at the same time, vimentin-containing intermediate filaments and tubulin-containing microtubules were dispersed. Concomitantly, membrane AP activity and protein content were increased. Such effects support the hypothesis that NaB affects the expression of many proteins by modification of gene expression, probably at the transcriptional level.

Alkaline Phosphatase↗

Compared flow cytometric analysis of mitochondria using 10-n-nonyl acridine orange and rhodamine 123.

The use of the supravital mitochondrial-specific dye Rhodamine 123 (Rh 123) in combination with flow cytometry permits the monitoring of the changes in the mitochondrial transmembrane potential, reflecting the overall mitochondrial activity of the living cell. While this probe appears to be a potent tool for these studies, it also exhibits an important limit in the interpretation of the results: it cannot distinguish between an increase in mitochondrial activity without biogenesis and a modification of mitochondrial content. 10-n-Nonyl Acridine Orange chloride (NAO) constitutes another mitochondrial specific fluorochrome. In contrast with Rh 123, NAO accumulation in the cell does not seem to be driven by the proton-motrice force but does seem to be related to specific interactions with mitochondrial membrane proteins and/or lipids. In this work, the cytotoxicity of NAO, the kinetics of cellular uptake and the release of the dye have been determined using flow cytometry. The use of several ionophores or mitochondrial inhibitors has confirmed the independence of NAO uptake regarding mitochondrial transmembrane potential. NAO was also used to examine the changes in the mitochondrial compartment during the transfer of articular chondrocytes from cartilage to the culture conditions, where Rh 123 evidenced changes in mitochondrial activity and/or biogenesis, in order to know whether the use of probes with different specificity allows one to distinguish between mitochondrial activity and biogenesis.

Acridine Orange↗

In vitro aging of articular chondrocytes identified by analysis of DNA and tubulin content and relationship to cell size and protein content.

In vitro senescence of chondrocytes, characterized by a decline in the proliferation rate during late passages, resulted from a rapid growth rate in early subcultures to a complete loss of division after seven to nine passages. One senescent-associated phenotypic change was the apparent increase in the density of cytoplasmic cytoskeletal proteins. We examined the relationship between tubulin content and growth (measured by DNA and total protein contents and cell volume), using flow cytometry, in the assessment of cytoskeleton analysis during in vitro aging. In contrast with previous microscopic observations of tubulin organization, flow cytometry revealed a tubulin content that was modulated as a function of protein content and/or cell volume.

Animals↗

Differential effect of D-penicillamine on the cell kinetic parameters of various normal and transformed cellular types.

The cell-growth-inhibitory and phase-specific effects of D-penicillamine on cell-cycle progression were investigated using cell-proliferation patterns, quantitative cell-cycle analysis by flow cytometry, and determination of the mitotic index and binucleate cell fraction of normal (rabbit articular chondrocytes, L 809, rabbit fibroblasts) and transformed (HeLa, L 929) cells. D-penicillamine treatment resulted in an inhibition of growth within a dose range of 5 x 10(-4) M to 7.5 x 10(-3) M. Examination of DNA by flow cytometric analysis revealed that rabbit articular chondrocytes were preferentially arrested in the G0/1 phase of the cell cycle, whereas the other cell lines were blocked in the G2 + M phase; the increase in the proportion of cells with G2 + M DNA content was partially due to an enhancement of binucleate cells, resulting in a cytokinesis perturbation for HeLa and L 929 cells. These results showed that D-penicillamine affects cell proliferation through different events according to cell type.

Animals↗

Rabbit articular chondrocytes: an in vitro model for studying the effect of sodium aurothiopropanol sulfonate on proliferation kinetics, type II collagen phenotype and mitochondrial activity.

Despite the benefits of chrysotherapy the responsible mechanism of action of gold compounds remains unclear. At a concentration of 5 x 10(-4) M, sodium aurothiopropanol sulfonate (SAS) modified the in vitro proliferation kinetics of articular chondrocytes by reducing growth, viability and plating efficiency. Flow cytometry analysis, using propidium iodide DNA staining, revealed slight but significant cell arrest in G2+M which, in fact, represents an increase in the proportion of binucleate cells. SAS did not induce any variations in chondrocyte phenotype stability as far as the biosynthesis of type II collagen was concerned, and no appreciable changes in overall mitochondrial activity reflected by rhodamine 123 incorporation.

Animals↗

Rhodamine 123 uptake and mitochondrial DNA content in rabbit articular chondrocytes evolve differently upon transfer from cartilage to culture conditions.

Mitochondrial DNA (mtDNA) represents 0.15% of the total cell DNA (at least an order of magnitude less than in liver or heart) of rabbit articular chondrocytes. Besides the already well-documented low respiratory activity, chondrocyte differentiation thus involves a specific control of mitochondrial biogenesis. When transferred to in vitro conditions, chondrocytes increase their stock of mtDNA at the same time they resume growth, even more efficiently (8 times) than they do for cell volume (4.4 times). On the contrary, overall mitochondrial activity, estimated as the uptake of rhodamine 123, does not follow the same trend (2.5 times increase). Chondrocytes apparently keep these functional characteristics for some generations in culture.

Animals↗

Partial characterization of intracellular and secreted glycosidases from rabbit articular chondrocytes in culture.

N-Acetyl-beta-hexosaminidase, beta-galactosidase and beta-glucuronidase activities were shown to be present in cultured rabbit articular chondrocytes. Secretion of enzyme activity seems to preferentially result in the accumulation of N-acetyl-beta-hexosaminidase. Three days after seeding, the amount of N-acetyl-beta-hexosaminidase activity found in the medium accounts for about 140% of the total N-acetyl-beta-hexosaminidase activity after complete disruption of the cell pellet. Optimal conditions of incubation time, cell numbers, substrate concentration, and pH for glycosidase activities were determined in 0.1% Triton X-100. Intracellular and secreted glycosidases have shown similar elution profiles by chromatofocusing. N-acetyl-beta-hexosaminidase exhibits two major forms which may play a role in the catabolism of glycosaminoglycans.

Acid Phosphatase↗

Effects of dexamethasone on the growth of cultured rabbit articular chondrocytes:relation with the nuclear glucocorticoid-receptor complex.

This study reports that dexamethasone at a high dose (10(-4) mol/l) induced slowing of the in vitro proliferation of rabbit articular chondrocytes in both monolayer and clonal culture. This effect is consistent with an inhibition of DNA and RNA synthesis and was characterised by an accumulation of cells in the G0G1 phase of the cell cycle, as shown by flow cytometric analysis. Therefore we determined the extent of nuclear localisation of dexamethasone-receptor complexes. The results showed a discrepancy between 50% growth inhibitory dose (10(-4) mol/l) and the apparent affinity, KD (1.4 (SD 0.2) X 10(-9) mol/l). Thus the growth inhibition of rabbit articular chondrocytes by dexamethasone did not seem to be related exclusively to an interaction with the glucocorticoid-receptor complexes.

Animals↗

[Effect of a low-intensity magnetic field on the proliferation of several models of cultured cells].

The effects of a ELF magnetic field (50 Hz) of low intensity (5 x 10(-4) T) were studied on the growth of 3 cell cultures: fibroblasts L 929, keratinocytes and HeLa. After a 24 to 72 hours exposure to the field no modification of growth rate and viability of the cells was observed in comparison to controls. This conclusion can be expressed for the conditions adopted in our experiments.

Animals↗

Mitochondrial uptake of rhodamine 123 by rabbit articular chondrocytes.

Rhodamine 123 was used to stain and analyze by flow cytometry the mitochondria of rabbit articular chondrocytes. Stationary primary cultures and exponentially growing subcultures were compared to enzymatically released chondrocytes from cartilage. The increase in mitochondrial fluorescence, when chondrocytes are transferred from cartilage to culture environment, is suggestive of some change in chondrocyte adaptation and/or differentiation in these conditions.

Animals↗

G2 arrest, binucleation, and single-parameter DNA flow cytometric analysis.

One important facet of flow cytometry involves the effects of pharmacological agents on cell cycle progression. Comparative G2 fraction perturbations were examined: effects of sodium butyrate on articular chondrocytes, effects of an antineoplastic agent (SOAZ) and an antirheumatic drug (D-penicillamine) on HeLa cells. Even though DNA flow cytometric analysis detects preferentially an induction of G2 arrest, the mode of action of these agents on the cell cycle is different. Sodium butyrate and D-penicillamine lead to an increase of binucleate cells due to cytokinesis perturbation. Because of similar fluorescence intensity, distinguishing G2 from binucleate GO/1 cells is not easily possible using DNA content measurement and reflects a failure of flow cytometry in the detection of binucleate cells. Rapid cell cycle analysis of single cells should contribute greatly to the study of pharmacological interactions, but DNA flow cytometric measurements obtained from cultured cells exposed to certain agents must be cautiously interpreted because those may interact on cytokinesis and induce artefacts in histogram interpretation.

Animals↗