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W Gorczyca

Publications and source records attributed to W Gorczyca.

At least 19 recordsLinked to original sources

Morphometry of nucleoli and expression of nucleolin analyzed by laser scanning cytometry in mitogenically stimulated lymphocytes.

BACKGROUND: Various attributes of nucleoli, including abundance of the nucleolar product (rRNA), correlate with cell-proliferative status and are useful markers for tumor diagnosis and prognosis. However, there is a paucity of methods that can quantitatively probe nucleolus. The aim of the present study was to utilize the morphometric capacity of the laser scanning cytometer (LSC) to analyze nucleoli and measure expression of the nucleolar protein nucleolin (NCL) in individual cells and correlate it with their state of proliferation. MATERIALS AND METHODS: Human lymphocytes were mitogenically stimulated, and at different time points their nucleoli were detected immunocytochemically using NCL Ab. The frequency of nucleoli per nucleus, their area, and the level of expression of NCL, separately in the nuclear and nucleolar compartments, were estimated in relation to the G(0) to G(1) transition and the cell cycle progression. RESULTS: During the first 24 h of stimulation, when the cells underwent G(0) to G(1) transition, their RNA content was increased nearly 8-fold, the level of NCL per nucleus also increased 8-fold, the NCL per nucleolus increased 12-fold, nucleolear area increased 3-fold, and NCL/nucleolar area increased nearly 4-fold. During the subsequent 24-48 h of stimulation, when cells were progressing through S, G(2), and M and reentering the next cycle, the number of nucleoli per nucleus was increased and a massive translocation of NCL from nucleoli to nucleoplasm was observed; its overall level per nucleus, however, still remained high, at 6-fold above of that of G(0) cells. CONCLUSIONS: While high expression of NCL in the nucleolar compartment correlates with the rate of rRNA accumulation in the cell and is a sensitive marker of the G(0) to G(1) transition, the cells progressing through the remainder of the cycle are better distinguished from G(0) cells by high overall level of NCL within the nucleus. Such an analysis, when applied to tumors, may be helpful in obtaining the quantitative parameters related to the kinetic status of the tumor-cell population and tumor prognosis. The capability of LSC to measure the protein translocation between nucleolus and nucleoplasm can be used to study the function and regulatory mechanisms of other proteins that reside in these compartments.

Cell Nucleolus↗

"Liquidless" cell staining by dye diffusion from gels and analysis by laser scanning cytometry: potential application at microgravity conditions in space.

BACKGROUND: Conventional staining of cells or tissue sections on microscope slides involves immersing the slides into solutions of dyes then rinsing to remove the unbound dye. There are instances, however, when use of stain solutions is undesirable-e.g., at microgravity conditions in space, where the possibility of accidental spill (many dyes are known carcinogens) introduces health hazard. Likewise, transporting bulk of liquid stains and rinses may be burdensome in certain situations such as field expeditions or combat. METHODS: The "liquidless" staining procedure is proposed in which the dyes are contained in thin strips of hydrated polyacrylamide or gelatin gels that have been presoaked in the stain solutions. Fluorochromes that have affinity to DNA (propidium iodide, PI; 4,6-diamidino-2-phenylindole, DAPI, Hoechst 33342) or to protein (sulforhodamine 101) were used to saturate the gels. The gel strips were placed over the prefixed cells or tissue sections deposited on microscope slides and relatively low (20 g/cm2) pressure was applied to ensure the contact. The cells were also stained by using commercially available mounting media into which DAPI or PI were admixed. Intensity of fluorescence of the PI stained cells was measured by laser scanning cytometry (LSC). RESULTS: Satisfactory cell and tissue staining, with minimal background, was achieved after 10-20 min contact between the cells and gels. Optimal concentrations of the dyes in the solutions used to presoak the gels was found to be 2-4-fold higher than the concentrations used routinely in cytometry. The measurements of intensity of cellular fluorescence by LSC revealed that the staining of DNA was stoichiometric as reflected by the characteristic cellular DNA content frequency histograms with distinct G1, S, and G2/M cell populations and 2:1 ratio of G2/M to G1 peak fluorescence. Individual gels can be saturated with more than a single dye-e.g., to obtain differential DNA and protein staining. Cell staining with DAPI or PI in the gelatin-based mounting media led to high fluorescence background while staining with DAPI in "aqueous" medium was satisfactory. CONCLUSIONS: Relatively fast staining of cells or tissue sections on microscope slides can be achieved by nonconvective dye diffusion using hydrated gels permeated with the dyes, applied to cells at low pressure. The quality of the staining provided by this methodology is comparable to conventional cell staining in dye solutions.

Coloring Agents↗

Octapeptide but not nonapeptide from HIV-1 p24gag protein upregulates cell surface HLA-C expression.

OBJECTIVES: The HLA-Cw3 molecule has been reported to present peptides derived from HIV-1 p24gag protein to a cytotoxic T lymphocyte clone. We have shown previously that the synthetic octapeptide 145-152 derived from the p24gag sequence upregulated cell surface HLA-C expression on HLA-Cw*0303+ cells. Here, we examined the question of whether the nonapeptide 144-152 also exerts a similar effect. METHODS: The HLA-Cw*0303+ B-LCL PAJ and control HLA-Cw3-negative cells B-LCL HAJ and T-LCL 500/C9 were used. HLA expression on peptide-pulsed and non-pulsed cells was evaluated using specific antibodies and flow cytofluorimetry. Binding of dansylated peptides onto different cell lines was measured spectrofluorimetrically. RESULTS: The HIV-1 p24gag octapeptide upregulated cell surface HLA-C on PAJ (Cw*0303+) cells, whereas the nonapeptide did not. HLA-A2 expression was not affected by these peptides. Specificity of the effect of octapeptide was confirmed by the lack of HLA-C upregulation on HLA-Cw3- cells and by lower binding of dansylated peptide to the HLA-Cw3- cells HAJ and 500/C9. CONCLUSIONS: The above results indicate that HLA-Cw*0303 preferentially binds the octapeptide rather than the nonapeptide derived from HIV-1 p24gag protein.

Antibodies, Monoclonal↗

Differential diagnosis of malignant lymphomas and related disorders by specific pattern of expression of immunophenotypic markers revealed by multiparameter flow cytometry (Review).

The introduction of monoclonal antibodies (mAbs) for cell immunophenotyping and use of flow cytometry with the progressively improving software for multivariate analyses have revolutionized the diagnosis and influenced the classification of hematologic neoplasms. In this review we focus on the practical application of flow cytometry in the diagnosis and classification of malignant lymphomas and related lymphoproliferative disorders with special emphasis on differential diagnosis. A general approach to the utilization of flow cytometry (FC) in hematopathology with an algorithm to diagnose the most common neoplasms is presented. We discuss precursor B-cell neoplasms, mature B-cell neoplasms (SLL/CLL, mantle cell lymphoma, marginal zone lymphoma, hairy cell leukemia, diffuse large B-cell lymphoma, plasma cell dyscrasias and lymphomas with plasmacytic differentiation), precursor T-lymphoblastic leukemia and mature (peripheral) T-cell neoplasms, including T-SLL/PLL, anaplastic cell lymphomas and large granular cell leukemia/lymphoma. The text is accompanied by characteristic FC scatterplots of the discussed entities.

Antibodies, Monoclonal↗

Proliferation and apoptosis in solid tumors. Analysis by laser scanning cytometry.

OBJECTIVE: To examine the relationship between apoptosis and proliferation in a series of human solid malignant tumors, making use of objective, reproducible techniques newly developed for laser scanning cytometry (LSC). STUDY DESIGN: Apoptosis was detected by in situ end labeling of DNA strand breaks with FITC-conjugated nucleotide. Proliferation was detected by Ki-67 antibody. Two parameters were detected independently and simultaneously with DNA measurement on aliquots of cell suspensions obtained by mechanical dissociation of fresh tumors and placed on microscope slides. RESULTS: The number of cells undergoing apoptosis varied from 0.5% to 28.1% (average, 5.4 +/- 6.0). Aneuploid tumors showed a higher percentage of apoptotic cells (7.9 +/- 7.2) as compared to diploid tumors (3.4 +/- 4.0). Tumors with the greatest number of apoptotic cells on LSC also had the largest number of apoptotic cells on light microscopic examination. The number of cells labeled by Ki-67 ranged from 1.7% to 56.7% (average, 20.0 +/- 15.5). Aneuploid tumors were characterized by a higher Ki-67 index (average, 28.3 +/- 14.3%) than the diploid tumors (13.2 +/- 13.3%). CONCLUSION: Overall, there was a very weak or no correlation between apoptosis and proliferation. However, a subset of aneuploid tumors had a high percentage of cells positive for Ki-67 and low percentage of apoptotic cells. Diploid tumors did not show any correlation between apoptosis and proliferation, although many of those tumors had both low apoptotic and proliferative indices. Whether those differences are of prognostic significance remains to be determined in follow-up studies that include more cases and clinical data. Here we have shown that LSC is a powerful new tool of potential clinical value for fast, objective analysis of apoptosis, proliferation and DNA ploidy in solid malignant tumors.

Adolescent↗

[Partial dependence of luliberin and its analogs on the immune system].

Luliberin--luteinizing hormone-releasing hormone (LHRH) is the first link in hypothalamus-pituitary-gonads axis which participates in reproduction. This hormone and lutropin are released from immunological cells, however antagonists of LHRH inhibit this action. Some cytokines (IL-1 beta, GM-CSF) inhibit release of LHRH and others (IL-6, IFN-gamma) stimulate this release.

Animals↗

Laser-scanning cytometry: A new instrumentation with many applications.

The laser-scanning cytometer (LSC) is a microscope-based cytofluorometer which has attributes of both flow and image cytometry. Laser-excited fluorescence emitted from fluorochromed individual cells on a microscope slide is measured at multiple wavelengths rapidly with high sensitivity and accuracy. Though the instrument has been available commercially for only 3 years, it is already used in a variety of different applications in many laboratories. This review focuses on the following unique analytical capabilities of LSC which complement those of flow cytometry and fluorescence image analysis: (a) the cells are positioned on slides during measurement so they may be examined repeatedly over time, a feature useful for studies of enzyme kinetics and other time-resolved processes; (b) sequential analysis of the same cells can be carried out using different immuno- or cytochemical stains or genetic probes, merging information on cell immunophenotype, cell functions, expression of particular proteins, DNA ploidy and cell cycle position, and/or cytogenetic profile for each measured cell; (c) any of the cells measured can be relocated to correlate with visual examination by fluorescence or brightfield microscopy or with any other parameter; (d) topographic distribution of fluorescence measurements within the cell, in cytoplasm vs nucleus, permits analysis of the translocation of regulatory molecules such as NFkappaB, p53, etc., and is essential for FISH analysis; (e) hyperchromicity of nuclear DNA as measured by maximal pixel fluorescence intensity allows one to identify cell types differing in degree of chromatin condensation such as mitotic or apoptotic cells; (f) analysis of tissue section architecture and of the constituents in transected cells within tissue sections by ratiometric assays normalized to DNA content extends applications of LSC in clinical pathology; (g) because cell loss during sample preparation and staining is minimal, samples with a paucity of cells can be analyzed; and (h) analyzed cells can be stored indefinitely, e.g., for archival preservation or additional analysis. Potential future applications of LSC are discussed.

Animals↗

High affinity binding of fluorescein isothiocyanate to eosinophils detected by laser scanning cytometry: a potential source of error in analysis of blood samples utilizing fluorescein-conjugated reagents in flow cytometry.

BACKGROUND: In samples of peripheral blood cells processed using the commercial kits for detection of apoptosis based on DNA strand break labeling, a subpopulation of cells characterized by high green fluorescence, similar in intensity to that of apoptotic cells but more uniform, was consistently observed by flow cytometry. The labeled cells had no other features of apoptosis. The labeling was observed regardless of the fixative used and was evident in control samples lacking terminal deoxynucleotidyltransferase. Common to all the kits that generated this labeling pattern was the presence of fluorescein (f) conjugated reagents, f-dUTP, f-avidin, or f-antibody. METHODS: Laser scanning cytometry was used to identify the labeled cells and study the mechanism of labeling. Because it was suspected that the traces of unconjugated f-isothiocyanate (FITC) that may contaminate the reagents were responsible for the labeling, FITC binding affinity to white blood cells was studied. Gel electrophoresis was used to detect the presence of unconjugated FITC in the reagents. RESULTS: After staining with Giemsa, the strongly fluorescent objects were identified as eosinophils with normal morphology and no evidence of apoptosis. The fluorescence was localized exclusively within the cytoplasmic granules. Labeling of eosinophils was observed at 2 nM concentration of FITC, which was over three orders of magnitude lower than that needed to label neutrophils, monocytes, or lymphocytes. Gel electrophoresis of the f-conjugated reagents revealed only minor contamination with FITC. CONCLUSIONS: (1) Trace amounts of unconjugated FITC contaminating the reagents are adequate to strongly label eosinophils thereby introducing experimental bias in analysis of apoptosis and in other studies on blood cells utilizing f-labeled antibodies, e.g., in detecting cytokines. (2) FITC at concentration 2-500 nM can be used as a marker of eosinophiles; (3) Because of high affinity to FITC, eosinophiles (or the protein from these cells) may serve as a means of removing traces of unconjugated FITC from the reagents during their manufacture or prior to use.

Apoptosis↗

Analysis of apoptosis by laser scanning cytometry.

Flow cytometry techniques that are widely used in studies of cell death, and particularly in the identification of apoptotic cells, generally rely on the measurement of a single characteristic biochemical or molecular attribute. These methods fail to recognize cell death lacking that attribute, as in some examples of atypical apoptosis. Since apoptosis was originally defined by morphologic criteria, we suggest that for any new cell system the cytometry-defined apoptosis be confirmed by morphologic examination. This quality assurance measure is now provided by laser scanning cytometry (LSC). LSC measurements of cell fluorescence are precise and highly sensitive, comparable to flow cytometry (FCM), and can be carried out on cells on slides, permitting cell by cell correlation of fluorescence cytometry with visual microscopic morphology. In this report we describe adaptations of various flow cytometry techniques for detection of apoptosis by laser scanning cytometry. We also describe features unique to LSC that are useful in recognizing apoptosis. Hyperchromicity of DNA, reflecting chromatin condensation, is evidenced by high maximal pixel values for fluorescence of the DNA-bound fluorochrome. Mitochondrial probes that have been adapted to LSC to measure the drop in mitochondrial transmembrane potential that occurs early in apoptosis include rhodamine 123, 3,3'-dihexiloxadicarbocyanine [DiOC6(3)], and the aggregate dye 5,5',6,6'tetrachloro-1,1',3,3'-tetraethylbenzimidazolcarbocyanine iodide (JC-1). The changes in plasma membrane phospholipids and transport function, also early in apoptosis, are probed by a combination of the fluoresceinated annexin V and DNA fluorochromes such as propidium or 7-aminoactinomycin D. We also review methods of detection of apoptosis based on analysis of DNA fragmentation and their application to clinical oncology. Visual examination of the presumed apoptotic cells detected by cytometry makes it possible to discriminate those that are genuine from monocytes/macrophages that have ingested nuclear fragments via apoptotic bodies. Applications of flow cytometry and laser scanning cytometry in analysis of cell death are discussed and their respective advantages and disadvantages compared.

Annexin A5↗

Cytometric analyses to distinguish death processes.

The morphological changes typical of apoptosis, as well as the loss of integrity of the plasma membrane and the breakdown of nuclear DNA provide numerous features that permit recognition of apoptotic cell death by various methods. Flow cytometry (FCM) and laser scanning cytometry (LSC) allow for accurate and rapid measurement of apoptosis in both cultures and clinical samples (e.g. solid tumors, bone marrow aspirates, peripheral blood etc.). Furthermore, both FCM and LSC enable one to correlate the apoptosis with the position of the dying cell in the cell cycle. Discussion includes the cytometric identification and quantitation of apoptotic or necrotic cells, based on the analysis of a particular biochemical or molecular feature that is characteristic for either necrosis or apoptosis.

Animals↗

Colonic adenomas with extramedullary myeloid tumor (granulocytic sarcoma).

Extramedullary myeloid tumor (EMT) is an accumulation of malignant immature cells of the granulocytic series that is usually green in appearance due to the presence of myeloperoxidase. These invasive and destructive tumors occur most commonly in the skull and surrounding tissues, lymph nodes, skin and soft tissues. Regardless of the site, EMTs are difficult to recognize and may be easily overlooked or diagnosed as malignant lymphoma. EMTs may precede the diagnosis of a chronic myeloproliferative disorder or acute myeloid leukemia, may present coincident with the hematologic diagnosis, or may herald a relapse after therapy. An accurate diagnosis of EMT is of great clinical importance in the ongoing management of hematologic malignancies. We report here two unusual cases of EMT of the colon, which infiltrated adenomatous polyps. We conclude that increased cellularity within the lamina propria of polyps and mucosal surfaces in general should be carefully examined.

Adenomatous Polyps↗

Activation of nuclear factor kappa B (NF-kappaB) assayed by laser scanning cytometry (LSC).

Nuclear factor kappa B (NF-kappaB)/rel is the family of ubiquitous transcriptional activators involved in regulation of diverse immune and inflammatory responses. It also plays a role in control of cell growth and apoptosis. In its inactive form NF-kappaB remains in the cytoplasm sequestered through interaction with IkappaB protein. Rapid translocation of NF-kappaB from cytoplasm to nucleus that occurs in response to extracellular signals is considered to be a hallmark feature of its activation. The translocation of NF-kappaB in HL-60, U-937 and Jurkat leukemic cells as well as in human fibroblasts induced by tumor necrosis factor alpha (TNF-alpha) or phorbol myristate acetate (PMA) was presently measured by laser scanning cytometry (LSC). NF-kappaB was detected immunocytochemically with FITC-tagged antibody and its presence in the nucleus vis-a-vis cytoplasm was monitored by measuring the green fluorescence integrated over the nucleus, which was counterstained with propidium iodide (PI), and over the cytoplasm, respectively. Activation of NF-kappaB led to a rapid increase in NF-kappaB-associated fluorescence measured over the nucleus (FN) concomitant with a decrease in fluorescence over the cytoplasm (F(C)), which was reflected by an increase in F(N)/F(C) ratio. This rapid assay of NF-kappaB activation can be combined with morphological identification of the activated cells or with their immunophenotype. Bivariate analysis of NF-kappaB expression versus cellular DNA content makes it possible to correlate its activation with the cell cycle position. The described method has a potential to be used as a functional assay to monitor intracellular translocation of other transcriptional activators such as p53 tumor suppressor protein or signal transduction molecules.

Cell Cycle↗

Studies on binding of HIV-1 p24gag peptide to HLA-Cw3+ cells.

Human major histocompatibility complex class I antigens, HLA-C, are expressed on the cell surface at approximately a tenfold lower level than HLA-A and -B. We hypothesized that the expression of HLA-C is limited by the quantity of high affinity peptides which bind to these molecules, thus allowing only a small fraction of HLA-C molecules to be transported and/or to remain stable on the cell surface. If this assumption is correct, then the addition of exogenous peptide should increase cell surface HLA-C expression. To verify the hypothesis, we pulsed lymphoblastoid cell line PAJ (HLA-Cw3+) with synthetic HIV-1 p24gag 145-152 peptide, known to be presented to T-lymphocytes by HLA-Cw3 molecule. PAJ (HLA-Cw3+) cells bound approximately two times more of the peptide than HAJ (HLA-Cw3-), and four times more than 500/C9 (HLA-Cw3-) cells. Accordingly, overnight pulsing of PAJ cells with the p24gag 145-152 peptide caused an increase in class I HLA expression detected on the cell surface by flow cytofluorimetric analysis with anti-HLA-B,C monoclonal antibodies but not by anti-HLA-A antibody. In contrast, HLA-Cw3- cells treated in the same manner did not show any increase of HLA class I expression. Our data suggest that low concentration of high affinity peptides within the cell may be one of the factors limiting cell surface expression of HLA-C molecules.

Antibodies, Monoclonal↗

Analysis of apoptosis in solid tumors by laser-scanning cytometry.

Apoptosis (programmed cell death) plays an important role in tissue physiology and pathology. First, tumor development and progression is often associated with defective regulation of apoptotic pathways, and measurement of apoptosis might be equally important for the analysis of cell proliferation. Second, tumor cells die by apoptosis during chemotherapy or radiotherapy, so monitoring the level of apoptosis might prove useful in modulating treatment or in predicting the biologic behavior of the tumor. Flow cytometry (FC), in conjunction with DNA strand-break labeling assays, is commonly used to assess apoptosis, but unless combined with cell sorting, FC results cannot correlate with morphology. Also, analysis by FC is associated with cell loss during preparation of the specimen. In this study, we identified apoptotic cells by in situ DNA strand-break labeling in solid tumors and then analyzed those cells by laser-scanning cytometry (LSC). LSC provides data comparable to those obtained by FC, but because the cells are prepared and measured on a slide, there is no cell loss. Also, with LSC, each measured cell can be relocated and examined visually by conventional or fluorescence microscopy to confirm its identity. With use of this approach, we analyzed apoptosis in 30 primary solid tumors of different types. The number of cells with DNA strand breaks varied from tumor to tumor and ranged from 0.5 to 28.1% (average, 7.0%). FC on the same tumors gave similar results. More than 95% of the relocated cells with DNA strand breaks either had the typical appearance of late apoptosis or showed strong green fluorescence within or at the periphery of the nucleus. Our results suggest that different morphologic variants of apoptosis might be common in different tumor types and that cytometric quantification might provide biologically useful information not otherwise easy to obtain.

Adult↗

Laser scanning cytometry quantification of estrogen receptors in breast cancer.

OBJECTIVE: To describe the laser scanning cytometry (LSC) processing and analysis developed for the quantitative analysis of estrogen receptor (ER) content in routine paraffin sections of breast carcinomas. STUDY DESIGN: Histologic sections of archival, paraffin-embedded tissues from 30 breast carcinomas were labeled for ER with fluoresceinated monoclonal antibody. ER expression was quantified by LSC and expressed as percent positive tumor cells and as histogram distributions of receptor expression per cell. Duplicate sections of the same tumors were stained for ER by a conventional immunoperoxidase reaction and percent positive tumor cells counted visually. RESULTS: Percent ER-positive tumor cells by LSC of immunofluorescence-stained sections correlated well with conventional (visual) counts of immunoperoxidase-stained duplicate sections when the latter were categorized as low, intermediate or high percent of positive cells. In addition, the marked variation in relative number of ER binding sites per cell could be quantified by LSC and displayed in histogram distribution. CONCLUSION: LSC measurements are fast and objective and can be carried out on sections of paraffin-embedded tissue after routine processing in the pathology laboratory. In addition, LSC data provide the relative number of ER binding sites per unit of DNA; that may reveal clinically significant skewed distributions or subpopulations of tumor cells.

Breast Neoplasms↗

Laser scanning cytometry distinguishes lymphocytes, monocytes, and granulocytes by differences in their chromatin structure.

By providing rapid measurements of cellular fluorescence in addition to morphometric analysis, the novel microscope-based multiparameter laser scanning cytometer (LSC) combines advantages of flow and image cytometry. Analysis of the integrated fluorescence intensity (IF) versus peak fluorescence intensity (maximal fluorescence per pixel; FP) versus fluorescence area (FA) of the cells stained with the DNA intercalating fluorochrome propidium iodide (PI) made it possible to discriminate lymphocytes, monocytes, and granulocytes in samples of peripheral blood of normal individuals. Lymphocytes, characterized by maximally condensed chromatin, had the highest FP and lowest values of FA. Granulocytes had the lowest FP and the highest FA. They also had increased IF compared to lymphocytes and monocytes. The difference in IF between granulocytes and monocytes/lymphocytes was abolished after exposure of cells to 0.1 M HCl at 0-4 degrees C, which is known to dissociate histones from DNA in chromatin. Monocytes were characterized by intermediate values of peak and area fluorescence intensity compared to lymphocytes and granulocytes. Thus, although all three classes of white blood cells have the same DNA content, they can be distinguished based on differences in structure of their chromatin after staining with PI. Discrimination of these cells by LSC is similar to that provided by flow cytometry based on differences in forward and side light scatter properties.

Cell Separation↗