Ex vivo proliferation and differentiation of Philadelphia chromosome-positive (Ph + ) human myeloid cells (Ph+ cells) from chronic myeloid leukemia (CML) proceed via alternation stages of cell proliferation and neutrophil maturation. To regulate them, apoptosis is alternately blocked or induced with the help of neutrophils and expression of bcr / abl , bax , and bcl2 . The regulation of apoptosis in main types of Ph + cells depends on the alternation of (1) Ph + cell proliferation and (2) neutrophil maturation and may follow two pathways. One consists in alternating blockages and inductions of apoptosis with initial maturation and subsequent proliferation under alternation stages as (2)-(1)-(2) and has not been described as yet. Neutrophil accumulation blocks apoptosis. As neutrophils are depleted, apoptosis is induced again. Its block accelerates proliferation with a new accumulation of neutrophils, which is followed by regular neutrophil death and a new induction of apoptosis. The way optimizes the proliferation efficiency (P/D index) with a regular alternation of maturation and proliferation, allowing the cycle of proliferation and differentiation to be completed. In another way, the alternation starts with proliferation as (1)-(2)-(1) at a lower neutrophil content) and leads to resistant decrease of the maximal apoptosis level by a factor of 3–8 as compared with (2)-(1)-(2) alternation. A stable block of apoptosis is observed in cells with prolonged stages of proliferation and maturation, leading to an accumulation of blasts and myelocytes with elevated bcr / abl expression and expression of bcl2 > bax . A stable block of apoptosis is associated with CML progression and in Ph + cell lines. Cells follow the first pathway of the apoptotic regulation in chronic-phase CML. Ex vivo cultivation of Ph + cells from individual CML patients was assumed to provide for a more exact diagnosis of the CML phase and optimizing the treatment.
The genesp53, mdm2, p21, c-myc,bcr/abl, bcr, bcl2, bax, and gapdh participate in the regulation of cell proliferation and differentiation, apoptosis and cell distribution for the cell cycle ex vivo in the Ph(+)cells of chronic myeloid leukemia containing the Ph chromosome andbcr/abloncogene. Expression of these genes correlates with regulation of cell proliferation and differentiation by alternating proliferation and maturation stages for three main Ph+cell types that occur under chronic myeloid leukemia. Thep53, p21, mdm2, and gapdh genes overexpress in active proliferating myeloid cells in the cell cycle S+ G2/M phases and when the phases are coincident with the proliferation stage. Expression of these genes decreases to a considerable level under alternation of the Ph(+)cell proliferation and maturation stages and whenever the expression is greatly diminished under significant neutrophil accumulation and especially under repeated alternation of the stages. In the course of neutrophil maturation, gene expression levels decrease in the range of gapdh > actin > c-myc, bcr/abl,p21 > p53 > bcl2 > bax.The expression levels of these genes in neutrophils are lower than those in myelocytes and lower by an order of magnitude than that in the cells with a prolonged proliferation stage. TheBcr/ablexpression gene under prolonged maturation and neutrophil accumulation is inhibited; however it is enhanced by 2-3 times for the proliferation stage with myelocyte accumulation. Minimalbcr/ablexpression is observed under overexpression ofp53, mdm2, p21, c-myc,as well as under cell maximum at the S and G2/M phases. Bcr/abloverexpression is observed under low expression of thep53, p21, mdm2genes. In the Ph(+ )cells with a high P/D efficiency index (5-20), overexpression of the genes in the range ofbcr> gapdh>bcr/abl, as well as a decreased expression of thep53, bcl2, mdm2, p21<< gapdh genes is observed for Ph(+)cells from the CML blast crisis and CML acceleration phase. Low control of cell proliferation and cell cycle by gene-regulators presumably promotesbcr/abloverexpression and activаtes the production ofbcr/abl+ cells. Apoptosis in the Ph(+ )cells is induced by expression of thebax > bcl2, р53, p21, c-myc andgapdhgenes. The blocking of Ph(+)cell apoptosis, neutrophil accumulation, and decrease in the expression of the p53, mdm2 and p21, c-myc,bcr/abl genes occur at the maturation stage.
Three types of Ph +cells from individual CML patients have been detected by studying kinetics peculiarities of their proliferation and differentiation in the culture [7]. Here we have studied the proliferation and differentiation of type 2 Ph +cells that reveal low proliferating P/D efficiency and higher rate for accumulation of neutrophiles maturated without dividing. P/D index is ratio between rates for P and D cells accumulations. Proliferation and differentiation of type 2 Ph +cells reveal P/D index 0,2-1, number of cycling cells into cycle phases S+G2/M was below 20÷45%. The proliferation and differentiation of Ph + type 2 cells is accompanied by apoptosis inhibition and significant accumulation of neutrophils, particularly high segment neutrophils, we have also observed the reduced proliferation of Ph + cells and low content of myelocytes. Apoptosis blocking and maturated neutrophiles accumulation occur anisochrous myelocytes accumulation but synchronously proliferation inhibition. This results in neutrophils primary consistency inversion myelocytes (M) > metamyelocytes (MM) > band neutrophiles (BN)> segment neutrophieles (SN) into SN > BN > MM > M, which lead to accumulation of al types neutrophils. These peculiar properties of Ph + type 2 cells determine the cells proliferation and differentiation in parallel with inhibition of neutrophils maturation. We suggest this take place by feed back mechanism. The curves of Ph + type 2 leukocytes population accumulating do not reflect the proliferation rate of Ph + type 2 leukocytes. The increased level of these cells we link with the increasing number of maturated neutrophils and their non-efficient proliferation. Ph + type 2 cells account for one-third fraction of investigated Ph+ cells. We have derived all of cells from patient with CML in a quite phase.
Ph+, bcr/abl+ cells arise due to t(9,22) chromosome translocation and Ph+ chromosome formation in hematopoietic stem cells. The cells show appreciable apoptosis suppression but retain their ability to differentiate and maturate. Ph chromosome, bcr/abl oncogene and Ph+, bcr/abl+ cells themselves are the hallmark of chronic myeloid leukemia. Under leukemia progression differentiating Ph+, bcr/abl+ cells transform into leukemic malignant cells with differentiation block. It is assumed to be a result of subsequent mutations or activation of proliferation of long silent Ph+ cells arisen previously in the stem cells because of the translocation. Real mechanism underlying the cell transformation remains unknown. This work was performed to develop a proper cell model allowing us to study functioning of differentiating Ph+, bcr/abl+ cells and their real transformation into malignant cells with block of differentiation. For this purpose we have investigated kinetics of Ph+, bcr/abl+ cells proliferation, differentiation, cell death and transcription of antiapoptotic genes in cultured 14-day of Ph+ mononuclear cells isolated from peripheral blood of a patient in chronic phase of chronic myeloid leukemia before treatment. The results obtained revealed that Ph+ cell differentiation proceeded in accord with characteristic scheme of chronic myeloid leukemia in vivo. Myeloid cells of hematopoietic cell lineage amounted to 3/4 of live Ph+ mononuclear cells undergoing accumulation and subsequent consumption in the course of differentiation. 95% myeloid cells were differentiating Ph+ granulocytes. The most deal of differentiating Ph+ cells was myelocytes. The rate ratio of myelocyte accumulation to its subsequent consumption showed that the rate of transformation into metamyelocytes was significantly decreased at this differentiation stage. Ph+ cells cultivation curves characterized cell death at different differentiation stages. There were observed the cell death of proliferating Ph+ cells and Ph+ myelocytes, and intensive death of mature cells as well. P/D index, that is ratio of immature Ph+ granulocytes differentiated by cell dividing (blasts, promyelocytes and myelocytes) to the cells differentiated without dividing (metamyelocytes and mature neutrofiles), revealed active of proliferation at the beginning of cultivation and unexpected new proliferative activity at the end of cultivation in the presence of growth factor. The peaks of antiapoptotic bcr/abl gene transcription activity coincided with the observed active proliferation at the beginning and at the end of cultivation. Cell proliferation, differentiation and apoptosis were noticeably accelerated by growth factor treatment. Thus, the study of the Ph+ cells cultivation kinetics is rather informative approach to investigation of continuous regulation of cellular and molecular processes in vitro in the case of chronic myeloid leukemia and allows more complete consideration of Ph+, bcr/abl+ cells hematopoiesis.
A study was conducted of the interaction of an octadecameric oligodeoxynucleotide (dON) containing the BCL2 mRNA translation start with K562 cells. Both in solution and upon lipofection, the binding of dON used at a low concentration (≤30 nM) at 37°C involved two steps: saturating surface binding with the cell membrane and internalization. Three phases were revealed in the dynamics of internalization: the extent and rate of internalization increased during the first hour of incubation; decreased during the second hour; and then increased again, which was assumed to reflect the priming of new dON-binding sites. The binding constant and the number of binding sites were estimated at 10°C (the conditions preventing internalization) by consecutive dissociation of dON-cell complexes formed in 1 h at 37°C. Incubation of dON with cells led to the priming of new high-affinity binding sites and an increase of the binding constant to a level characteristic of high-affinity ligand-receptor interactions (10 9 M −1 ). High-affinity receptor-mediated binding preceded internalization of dON. Lipofection increased the binding constant and the number of binding sites severalfold but had virtually no effect on the temporal pattern and the extent of dON internalization.
Interaction of oligodeoxynucleotides (ODN), 18-mer, which included sequence of BCL2 mRNA translation start, with K562 cells has been studied. The kinetic curves of interaction showed that oligonucleotide total binding with the cells at 37 degrees C and low oligonucleotide concentration (< or = 30 nM), as well as under lipofection, were composed of two processes: 18-mer surface binding with cell membranes and its non-proportional internalization into the cells. The last, in turn, consisted of three consequent steps. The enhanced extent and rate of oligonucleotide internalization was diminished after first hour incubation and later they were increased again. This reflected rising additional binding sites that provided internalization. At chosen time-points the internalization of ODN into cells, been proceeded at 37 degrees C, were at most abruptly abrogated by cooling down. ODN to K562 cell membrane binding constants and specific number of binding sites have been determined. Time-intervals, providing equilibrium for each successive stage of multistep ODN bound/free determination, were maintained. It was established that receptor binding with increased binding constant (more than 2 x 10(9) M(-1)) promoted ODN internalization. Oligonucleotide binding and internalization with prolonged incubation were also up-regulated due to priming new binding sites of higher affinity. Lipofection enhanced ODN binding to cell membrane but conserved the main features of ligand-receptor interaction. During lipofection constants and ODN binding site numbers increased without changing the overall time-pattern of the process, observed for ODN without liposomes. Extent and rate of internalization of ODN in liposomal formulation did not differ substantially from ODN in solution.
Delivery of various oligodeoxynucleotides into cells is mediated by binding to certain surface proteins followed by receptor-mediated endocytosis. Moreover, oligonucleotides are able to provoke perturbation of cell surface proteins and growth factor receptors among them. Here we described binding sense BCL2 oligodeoxynucleotide targeted to translation start of BCL2 mRNA (ODN) with K562 cells. At low concentration ODN bound efficiently with K562 and penetrated into the cells via binding cell surface with rather high affinity and priming new binding sites. The loose binding constant at 4 degrees C was 1.8 x 10(9) M(-1) both for binding ODN in solution and ODN-associated liposome. The number of loose binding sites under both treatments was rather high: 4.6 to 6.6 pmoles per 10(6) cells. The extent of ODN penetration into the cells showed higher potential site numbers than initially seen and reached 8.6 pmoles per 10(6) cells for four hours incubation at 37 degrees C.