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V Volloch

Publications and source records attributed to V Volloch.

24 records · Page 2Linked to original sources

Terminal differentiation of murine erythroleukemia cells: physical stabilization of end-stage cells.

An important limitation in the use of the murine erythroleukenia (MEL) cell system as an in vitro system for the study of terminal erythroid differentiation has been the inability to produce significant numbers of cells which represent the end-point of the pathway in vitro. We show here that a major reason for the failure to observe end-stage cells in vitro is that such cells are physically unstable under the standard culture conditions used for MEL cell differentiation. Modification of these culture conditions by the addition of either bovine serum albumin or Ficoll leads to physical stabilization of end-stage cells. Under such culture conditions, uniform cultures of terminally differentiated MEL cells with morphological characteristics similar to those of normal mouse orthochromatophilic erythroblasts and reticulocytes are observed. Examination of physical and biochemical parameters of these cell populations give values which are similar to values characteristic of mouse reticulocytes. A physically stabilized MEL cell shows a narrow cell volume distribution with an average value of approximately 100 mum(3), similar to the cell volume distribution observed for mouse reticulocytes, while a typical MEL cell culture treated with DMSO but without a stabilizing agent exhibits a broader, more heterogeneous cell volume distribution with an average value of approximately 500 mum(3). Globin mRNA levels and levels of globin synthesis reach values almost equal to those in mouse reticulocytes in cultures of physically stabilized MEL cells while differentiating cultures not treated with a stabilizing agent reach substantially lower values for these parameters. We suggest that the ability to produce populations of MEL cells which undergo complete terminal erythroid differentiation in vitro will allow the analysis of the molecular mechanisms which control the terminal stages of the erythroid differentiation process.

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Stability of globin mRNA in terminally differentiating murine erythroleukemia cells.

The stability of globin mRNA is terminally differentiating MEL cells has been reevaluated. Previously, it had been reported that globin mRNA has a half-life of approximately 17 hr in terminally differentiating MEL cells. We show that the previous measurements of this parameter were confounded by physical instability of differentiating MEL cells. By using culture conditions that physically stabilize end-stage cells we show that the stability of globin mRNA in terminally differentiating MEL cells is equal to the value observed for ribosomal RNA, a half-life greater than 60 hr.

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Hemin does not cause commitment of murine erythroleukemia (MEL) cells to terminal differentiation.

The effect of hemin on the differentiation program of murine erythroleukemia (MEL) cells has been investigated. While hemin treatment does induce increased levels of globin mRNA and hemoglobin, it fails to lead to other biochemical changes associated with MEL cell differentiation induced by DMSO and thioguanine. These include increased levels of the nuclear protein IP25 and of the enzyme cytidine deaminase. Clonal analysis of hemin-treated cells revealed that unlike other inducers, hemin does not cause a reprogramming of MEL cells to a specific limitation of proliferative capacity. These observations suggest that hemin differs from DMSO and thioguanine in that it exerts specific effects on globin expression in MEL cells without triggering commitment to the terminal differentiation program.

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Inhibition by dexamethasone of commitment to erythroid differentiation in murine erythroleukemia cells.

The inhibition of erythroid differentiation of murine erythroleukemia cells by dexamethasone (DEX) has been investigated on a clonal basis. At concentrations which had no detectable effect on cell proliferation, DEX3 rapidly inhibited the dimethyl sulfoxide (DMSO)-induced commitment of individual murine erythroleukemia cells to the differentiation program. DEX did not prevent heme accumulation in cells already committed to the differentiation process. The rate of globin messenger RNA (mRNA) synthesis was reduced in cells treated with DMSO and DEX compared to cells treated with DMSO alone. The reduction in the rate of globin mRNA synthesis was proportional to the reduction caused by DEX in the rate of commitment. DEX inhibition in the rate of commitment and of globin mRNA synthesis of DMSO-treated cells was reversible. Upon removal of DEX, continued DMSO treatment resulted in a rapid increase in both the rate of globin mRNA synthesis and the rate of commitment. The rate of globin mRNA synthesis after DEX release was also proportional to the rate of commitment. These results suggest that DEX exerts an inhibitory effect on heme and globin synthesis by blocking commitment to terminal erythroid differentiation.

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