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CD34 enumeration.

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A L Pecora, R S Negrin. 1998. CD34 enumeration.. https://doi.org/10.1089/scd.1.1998.7.3

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Intercellular adhesion can be visualized using fluorescently labeled fibrosarcoma HT1080 cells cocultured with hematopoietic cell lines or CD34(+) enriched human mobilized peripheral blood cells.

BACKGROUND: Intercellular contacts between adjacent cells migrating over each other are important in many cellular processes. However, it has been difficult to visualize and identify dynamic intercellular adhesions between migrating cells in situ. METHODS: Two fluorescent membrane dyes, PKH2 and PKH26 for staining HT1080 and hematopoietic cells and cell lines, and an automated fluorescence microscopy system were used to monitor intercellular adhesion. RESULTS: Cellular extensions connecting two or more adjacent cells were visualized, showing the intercellular adhesion between migrating cells for minutes and up to hours. After cells adhered to each other, followed by cell migration in different directions, cellular extensions were dragged from the pivotal contact points in different focal planes. CD34(+)-enriched mobilized peripheral blood cells and six hematopoietic cell lines showed intercellular connections in cocultures with HT1080. However, the frequency of intercellular connections was variable in different cocultures. A cell density of about 3.1 x 10(4) cells/cm(2) for both cell lines in cocultures provided an adequate number of cells in each field of view, showing up to four intercellular connections per 100 total cells plated. DISCUSSION: The tools derived from this study will open new areas of investigation for understanding the mechanism of the intercellular adhesion process.

Antigens, CD34↗

Loss of CD34(+) hematopoietic progenitor cells due to washing can be reduced by the use of fixative-free erythrocyte lysing reagents.

Current protocols for sample preparation before flow cytometric enumeration of CD34(+) hematopoietic progenitor cells (HPC) include both lyse-non-wash and lyse and wash methods. Erythrocyte lysis without washing is the method of choice when absolute cell counts are to be assessed, whilst a washing step is recommended for immunological subtyping of CD34(+) cells in order to reduce background fluorescence. Here, we analyzed the effect of the interaction between type of erythrocyte lysis reagent and washing on the outcomes of (i) CD34(+) cell enumeration and (ii) expression of CD38 by CD34(+) cells in a single-platform, whole-blood staining assay [Gratama, J.W., Keeney, M., Sutherland, D.R., 1999. Enumeration of CD34(+) hematopoietic stem cell and progenitor cells. Curr. Protocols Cytometry 6(4), 1-22.]. We studied seven commercially available lysing reagents (five containing fixative and two fixative-free) using 12 samples from cord blood (n=4), mobilized peripheral blood (n=4) and apheresis products (n=4). Using the lyse and wash technique, significant reductions of absolute and relative numbers of CD34(+) cells, as well as in the numbers of lymphocytes and leukocytes, were observed on samples that had been lysed using fixative-containing buffers as compared to the lyse-no-wash technique. Cell losses due to washing could be significantly reduced when samples were lysed using fixative-free buffers. 'Postfixation' using PBS+1% paraformaldehyde of samples that had been lysed using fixative-free buffers and then washed did not result in additional loss of CD34(+) cells or other cell types. Finally, washing unfixed samples led to a slight decrease of CD38 monoclonal antibody bound to CD34(+) cells as compared to samples that had been fixed during erythrocyte lysis. These results indicate that fixation renders (CD34(+)) cells sticky and leads to their loss from the cell suspension upon centrifugation and resuspension. We conclude that all seven lysing reagents can be used with confidence in a lyse-no-wash technique, but that only fixative-free lysing reagents should be used when a washing step is considered necessary.

Antigens, CD34↗

Altered natural killer cell differentiation in CD34+ progenitors from chronic myeloid leukemia patients.

IL-15 and SCF fail to induce NK differentiation and proliferation of CD34+ hematopoietic progenitors from chronic myeloid leukemia patients in contrast to normal stem cells although, both normal and leukemic CD34+ cells display comparable expression of c-kit or IL-15 receptor subunits. Interestingly, confocal microscopy analysis revealed that leukemic and most normal CD34+ cells produce and secrete IL-15, as shown by its trafficking through the Golgi apparatus and early endosomes. However, only leukemic progenitors express the membrane bound IL-15. Colocalization and internalization of IL-15Rbeta/gammac and IL-15Ralpha/gammac complexes indicated that IL-15 was specifically uptaken by leukemic progenitors. We also demonstrated that in both normal and leukemic progenitors, the signaling kinase Jak3 is constitutively pre-associated with the gammac chain. Anti-IL-15 neutralizing mAb treatment resulted in down-regulation of gammac chain and disruption of gammac/Jak3 interaction in normal but had no effect in leukemic progenitors. Our results suggest the existence in both normal and leukemic CD34+ cells of a constitutive production of a bioactive IL-15 that does not lead to NK differentiation and further indicate that membrane bound IL-15 and constitutive activation of gammac are hallmarks of leukemic progenitors. Oncogene (2000).

Antigens, CD34↗