PubMed HealthSearch

Biomedical subjects

F Traganos

Publications and source records attributed to F Traganos.

At least 19 recordsLinked to original sources

Cell-cycle distribution of urothelial tumour cells as measured by flow cytometry.

The fraction of cells in S + G2 + mitosis from 54 urothelial tumours was calculated by flow cytometry after acridine orange (AO) staining of cells obtained by bladder irrigation or biopsy. Fluorescence signals emitted by the AO-stained DNA and RNA of each cell were separated optically and measured for 5,000 cells per specimen. The patients were classified by the histology of their tumours and clinical data into 5 diagnostic categories: NED (no evidence of disease, but history of bladder tumour), 3; papilloma, 8; non-invasive papillary carcinoma, 8; carcinoma in situ, 17 and invasive carcinoma, 18. The fraction of cells with DNA values in S + G2 + M of the cell cycle varied between 7 and 57% of the total, with a wide range within each diagnostic category, but no statistically significant differences between the groups. The proportion of cells in S + G2 + M from an individual tumour was not correlated with histologic grade or clinical behaviour. The possibility that some tumour cells with DNA values above G1 level are quiescent cells arrested at S or G2 is discussed.

Cell Count

Identification of polymorphonuclear leukocytes in cytologic samples for flow cytometry.

Inflammatory cells are commonly present in cytologic specimens obtained for flow cytometry, and may interfere with the analysis of epithelial cells. We have found that detergent (Triton X-100) pretreatment in the two-step acridine orange staining procedure disrupts granulocyte cell membranes to yield bare nuclei; bladder epithelial and squamous cells on the other hand are quite resistant to the detergent treatment. Being deprived of their cytoplasmic RNA, the granulocytes lose red fluorescence. Moreover, the shearing forces in the cytometer extend the multisegmented granulocyte nuclei and align them in the direction of flow. Thus, they present as elongated objects in the measuring system, giving a large DNA fluorescence pulsewidth (nuclear size). These two phenomena make it possible to identify granulocytes in the recorded data, where they are discernible from the mononucleated leukocytes and from epithelial cells. By data selection the granulocytes can be excluded, rendering epithelial cell populations more amenable to analysis. This method may make it unnecessary to remove physically leukocytes from the specimen before flow cytometry; it may also provide a way to analyze the morphology of granulocyte nuclei and to assess methods to manipulate their membrane stability. Full protection from membrane disruption is accomplished by alcohol fixation, and partial protection by 20-30% serum.

Cytological Techniques

Different sensitivity of chromatin to acid denaturation in quiescent and cycling cells as revealed by flow cytometry.

The properties of DNA in situ as reflected by its staining with acridine orange are different in quiescent nonstimulated lymphocytes as compared with interphase lymphocytes that have entered the cell cycle after stimulation by mitogens. The difference is seen after cell treatment with buffers at pH 1.5 (1.3-1.9 range) followed by staining with acridine orange at pH 2.6 (2.3-2.9). Under these conditions the red metachromatic fluorescence of the acridine orange-DNA complex is higher in quiescent cells than in the cycling lymphocytes while the orthochromatic green fluorescence is higher in the cycling, interphase cells. The results suggest that DNA in condensed chromatin of quiescent lymphocytes (as in metaphase chromosomes) is more sensitive to acid-denaturation than DNA in dispersed chromatin of the cycling interphase cells. The phenomenon is used for flow cytometric differentiation between G0 and G1 cells and between G2 and M cells. In contrast to normal lymphocytes the method applied to neoplastic cells indicates the presence of cell subpopulations with condensed chromatin but with DNA content characteristic not only of G1 but also of S and G2 cells. The possibility that these cells represent quiescent (resting) subpopulations, arrested in G1, S and/or G2, is discussed.

Cell Cycle

Regional lymph node reactivity in explanted bladder cancer of mice as measured by flow cytometry.

The reactivity of lymphocytes in lymph nodes draining the site of a transplantable experimental bladder tumor (MBT2 in C3H/HeJ mice) has been measured in a multiparameter flow cytometry system. Acridine orange was used as a nucleic acid probe. This dye intercalates in helical DNA, emitting green (530 nm) fluorescence upon exposure to blue light; it stacks to single-stranded RNA, emitting red (640 nm) fluorescence. The relative magnitude of the increase of lymphocyte DNA and RNA has been evaluated simultaneously in tumor-draining nodes, in nondraining nodes of the same animal, and in untreated control animals. Stimulation of the regional node lymphocytes could be observed after 20 days but not after 10 days. It was uniformly high at 35 days. The transcriptive response (increased proportion of lymphocytes with high RNA) was more pronounced than the proliferative (increased proportion of lymphocytes with more than diploid DNA). The histological changes in the stimulated nodes resembled closely those described by others in human tumor-draining nodes. The described method has the advantage of being simple, rapid, and able to measure a representative part of the whole-cell population.

Animals

Lymph node reactivity to experimental bladder tumor in preimmunized animals as measured by two parameter flow cytometry.

Lymph node lymphocyte reaction to an explanted, transplantable mouse bladder tumor (MBT-2) was investigated by flow cytometry in animals previously immunized with irradiated tumor cells. Nodal lymphocytes in representative samples from four different lymph node sites were differentially stained for DNA and RNA with the fluorescent dye acridine orange; cell proliferation and the increase in RNA content were measured. Immunization abrogated tumor growth; one immunization reduced tumor take to 25 per cent of the animals, and two immunizations to 14 per cent. Lymphocyte reactivity to the tumor was reflected both by an increase of DNA synthesizing cells and by diploid cells with high RNA. The latter response was more pronounced and thus the more sensitive parameter for measuring immunologic lymph node reactivity. The juxtatumoral node displayed the most pronounced reactivity, but all node sites showed some degree of reaction.

Animals

RNA content in human lymphocyte subpopulations.

Human peripheral blood lymphocytes are stained with the metachromatic dye acridine orange and the fluorescence of individual cells is measured by flow cytometry. The relative content of stainable RNA per cell is estimated by comparison with RNase-treated cells. Non-T and T lymphocytes have different mean quantities of RNA per cell, and these classes exhibit different distributions of RNA content. Non-T cells have a unimodal distribution with a sharp peak and exponential distribution towards higher RNA values. T cells have a bimodal distribution with two separate peaks. When T cells having receptors for IgG (Tgamma cells) and IgM (Tmu cells) are separated, each of these cell populations displays a unimodal distribution. Of these three lymphocyte subpopulations, Tgamma cells have the lowest content of RNA per cell. Non-T cells have slightly higher RNA content than Tgamma, and Tmu cells have twice as much RNA as Tgamma cells. The RNA content, which surely relates to the different functions of these lymphocyte subpopulations, may also be a useful marker for rapidly distinguishing the lymphocyte subpopulations.

Acridines

A comparison of cell cycle-related changes in postmitotic and quiescent AF8 cells as measured by cytofluorometry after acridine orange staining.

AF8 cells were collected by mitotic detachment or made quiescent by serum restriction. Replated mitotic cells or serum-stimulated quiescent cells were then compared by flow cytofluorometry, when the use of acridine orange staining. Red fluorescence intensity (F greater than 600) was the same in quiescent cells and in cells immediately after mitosis. However, F greater than 600 increased very rapidly in postmitotic cells, while there was a delay in serum-stimulated quiescent cells. F greater than 600 reached a peak at 4 hr in postmitotic cells and between 16 and 19 hr in serum-stimulated quiescent cells. A similar delay in the time of entry into S phase occurred after serum stimulation of resting cell populations. The results are compatible with the hypothesis that cells after mitosis may enter a state that is different from the state of cells made quiescent by serum restriction.

Acridines

Nucleic acid content and cell cycle distribution of five human bladder cell lines analysed by flow cytofluorometry.

Five human bladder cell lines, four derived from tumor tissue and the fifth originating from presumed benign transitional epithelium, were examined by flow cytofluorometry to estimate the DNA and RNA content per cell during exponential and stationary phases of growth. A new staining technique was employed using acridine orange to differentially stain DNA and RNA in unfixed cells made permeable to the dye and other reagents by treatment with detergent at low ph. Stemline chromosome numbers for each cell line correlated well with relative DNA content of the G1 population as measured by this technique. In addition, the simultaneous measurements of DNA and RNA per cell yielded cell cycle distributions for each cell line. The ratio of stainable RNA/DNA was lower for all cell lines derived from bladder tumors as compared to the presumed normal cell line, indicating high nuclear/cytoplasmic ratios for the former.

Cell Division

Different sensitivity of DNA in situ in interphase and metaphase chromatin to heat denaturation.

Heat denaturation of DNA in situ, in unbroken cells, was studied in relation to the cell cycle. DNA in metaphase cells denatured at lower temperatures (8 degrees-10 degrees C lower) than DNA in interphase cells. Among interphase cells, small differences between G1, S, and G2 cells were observed at temperatures above 90 degrees C. The difference between metaphase and interphase cells increased after short pretreatment with formaldehyde, decreased when cells were heated in the presence of 1 mM MgCl2, and was abolished by cell pretreatment with 0.5 N HCl. The results suggest that acid-soluble constituents of chromatin confer local stability to DNA and that the degree of stabilization is lower in metaphase chromosomes than in interphase nuclei. These in situ results remain in contrast to the published data showing no difference in DNA denaturation in chromatin isolated from interphase and metaphase cells. It is likely that factors exist which influence the stability of DNA in situ are associated with the super-structural organization of chromatin in intact nuclei and which are lost during chromatin isolation and solubilization. Since DNA denaturation is assayed after cell cooling, there is also a possibility that the extent of denatured DNA may be influenced by some factors that control strand separation and DNA reassociation. The different stainability of interphase vs. metaphase cells, based on the difference in stability of DNA, offers a method for determining mitotic indices by flow cytofluorometry, and a possible new parameter for sorting cells in metaphase.

Cell Division

Simultaneous staining of ribonucleic and deoxyribonucleic acids in unfixed cells using acridine orange in a flow cytofluorometric system.

Simultaneous staining of deoxyribonucleic (DNA) and ribonucleic acid (RNA) in nonfixed, but permeable, cells is described. Cells are made permeable by treatment with non-ionic detergent at low pH. RNA is denatured prior to, or during staining, by exposure of cells to chelating agents to ensure that DNA (native) and RNA (dentured) may be stained differentially with the metachromatic dye, acridine orange. The fluorescence of individual cells is measured in a flow cytofluorometer. A comparison between various staining procedures employing acridine orange or other intercalating dyes in unfixed cells is discussed in terms of staining specificity, cell permeability and preservation. Evidence is provided that acridine orange staining of unfixed cells may be used as a simple, fast means of obtaining information on cell ploidy levels and cell cycle status from DNA measurements (green fluorescence), and cell transcriptional activity from RNA staining (red fluorescence), in human and murine cells lines, peripheral blood and bone marrow specimens from patients with leukemia and mitogenically (phytohemagglutinin) or antigenically (mixed lymphocyte culture) stimulated human peripheral blood cultures. Exposure of cells to detergent at low pH as an alternative to cell fixation or hypotonic treatment is proposed as a fast, convenient method of making cells permeable to dyes.

Acridines

Rapid multiparameter analysis of cell stimulation in mixed lymphocyte culture reactions.

A flow-cytofluorometric method, based on the differential stability of deoxyribonucleic acid versus ribonucleic acid with the metachromatic dye, acridine orange, simultaneously measures the following parameters of stimulation in mixed lymphocyte cultures: (a) number of nonstimulated cells; (b) total number of stimulated lymphocytes; (c) number of stimulated lymphocytes in G1, S and G2 + M phases of the cell cycle; (d) number of macrophages; (e) number of dead cells. The progress of lymphocyte stimulation may also be measured by a parameter representing ribonucleic acid accumulation per cell. The method is rapid, avoids cell rinsing, fixation and centrifugation and is applicable to microcultures. Multiparameter analysis of cell stimulation which provides simultaneous measurements of lymphocyte proliferation and accumulation of ribonucleic acid per cell may prove to be a more sensitive assay of histocompatibility than tests based only on cell proliferation (tritiated thymidine incorporation).

Acridines

Recognition of cells in mitosis by flow cytofluormetry.

Cells in mitosis may be distinguished from interphase cells based on difference in chromatin structure as revealed by two different methods of staining with acridine orange. In the first method, cells are heated and then stained at neutral pH; the difference in stainability between mitotic and interphase cells reflects the difference in the extent of deoxyribonucleic acid denatured by heat in these cells. At a given temperature the deoxyribonucleic acid of the mitotic cell appears to be more extensively denatured than that of the interphase cell. In the second method, cells are treated with buffer at pH 1.5 (1.3 to 1.9) and then stained at pH 2.6 (2.3 to 2.9). The mechanisms involved in the differential stainability of interphase versus mitotic cells at that low pH are currently under investigation. In both methods, in addition to enumerating cells in mitosis, it is possible to quantitate cells in G1, S and G2 phases of the cell cycle.

Acridines