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The RAF family of protein kinases consists of three members, A-RAF, B-RAF and C-RAF. Unlike the other isotypes, B-RAF has been found to have an important function for normal development of the central nervous system (CNS), because newly generated embryonic neurons lacking B-RAF cannot respond to survival factors and undergo cell death in vitro. A second cell lineage affected by the absence of B-RAF are endothelial cells and their death leads to internal bleedings and lethality of B-RAF-/- mice between embryonic day 10.5 (E10.5) and E12.5 precluding an opportunity to further analyze neural B-RAF function at a later stage. In contrast to B-RAF-/- mice, B-RAFKIN/KIN mice, which are B-RAF deficient but express a chimeric protein consisting of the unique N terminus of B-RAF and all the domains of A-RAF in the B-RAF gene locus, survive after midgestation because their endothelial cells are protected from apoptosis. More importantly, overall prevention of abnormal neural apoptosis in the forebrain allows us to study proliferation- or differentiation-oriented function of B-RAF other than its survival effects in CNS development. The detailed investigation of B-RAFKIN/KIN animals was concentrated on cortical development. There were apparent cortical defects in B-RAFKIN/KIN forebrain: Loss of B-RAF led to severe reduction of Brn-2 expressing pyramidal projection neurons accompanied by a disruption of dendrite formation in the upper layers. In further analysis, BrdU labelling experiments showed that from E14.5 to E16.5 cell proliferation in the ventricular zone of the mutant mice was reduced and that the late-born cortical neurons failed to migrate properly. While the proliferation defect of cortical progenitors was associated with reduced ERK activation, the mechanism causing impaired neuronal migration remains to be determined. Our hypothesis is that the subcellular localization of phospho-ERK may be altered in migrating cortical neurons in B-RAFKIN/KIN mice. To confirm in vivo function of B-RAF and further study unknown roles in embryonic neurogenesis as well as other morphogenesis, conditional B-RAF knockouts would be the ideal models, which can efficiently avoid embryonic lethality, prevent unwanted pleiotropic side effects and exclude accumulative compensatory developmental changes from the earliest developmental stage on, through the deletion of genetic material/gene function in selected cells at a specific time. The use of site-specific recombinases such as Cre and the successful development of the reversible tetracycline-based switch have provided powerful venues for creating conditional loss-of-function mouse models. Generation of tetracycline-regulated B-RAF and floxed B-RAF mouse embryonic stem (ES) cell lines was performed. Up to now, high-grade chimeric mice were obtained after blastocyst injection of the modified ES cell clones. The germline transmission from these chimeric mice is currently under investigation. When either of conditional mouse lines is ready, detailed examination in their CNS development would be done to reveal how B-RAF plays a real role for normal development of the nervous system.
In spite of the progress made in deciphering regulatory networks of cancer cells on the molecular level, the interaction of tumour cells with their stroma has not been adequately analyzed. Earlier, we have addressed the hypothesis that the murine embryonic microenvironment can induce the differentiation of human tumour cells. To examine such interactions, human leukaemic AML cells were injected into pre-implantation murine blastocysts at embryonic day 3.5 of gestation. Analysis of developing mice revealed the presence of human AML cells in chimaeric embryos and adults and the appearance of haematopoietic differentiation markers on progeny of injected human AML cells. This finding strengthens the notion that the embryonic microenvironment is capable of regulating the proliferation and differentiation of leukaemic AML cells. Based on these results, I embarked to analyse the consequences of stromal environment-induced changes in human AML cells upon in vitro coculture with selected haematopoietic stromal cell lines in terms of changes in differentiation and proliferation properties of AML cells. For this purpose, established human AML cell lines were cocultured on a variety of mitotically inactivated stromal cell lines derived from different murine embryonic/foetal haematopoietic sites such as yolk sac, aorta-gonad-mesonephros (AGM) region and foetal liver. To score for coculture-induced changes, I compared the morphology, histo-chemical properties, immunophenotype, proliferation rate, and gene expression profile in cocultured and non-cocultured AML cells. Results show that, upon coculture of Kasumi-1 cells- a cell line established from a FAB class M2 patient - with AGM-derived DAS 104-4, but not with other stromal cell lines, Kasumi-1 AML cells exibit decreased proliferation and colony formation capabilities and acquire differentiated morphologies. Along this line, coculturing of Kasumi-1 cells resulted in the up-regulation of the myelo-monocytic lineage cell surface markers CD11b and CD14. Coculture also resulted in increase in lysosomal marker CD68, a hallmark of myeloid differentiation. Interestingly, apart from cell lines, coculture on DAS 104-4 stroma was also efficient in inducing myeloid differentiation of patient derived primary M2-AML cells. Moreover, cocultivation of KG-1 cell line on DAS 104-4 showed activation of -globin transcription and up-regulation of Glycophorin A on its surface, which indicate DAS 104-4 coculture-induced erythroid differentiation of KG-1 cells. Analysis of the proliferation rate of Kasumi-1 cells using the CFSE retention assay revealed that upon cocultivation on DAS 104-4, but not on NIH 3T3 cells, there is a decrease both in the proliferation rate and in the frequency of colony forming cells in clonogenic methyl cellulose cultures. Cell cycle analysis revealed the coculture-induced accumulation of G1-G0 stage cells. Gene-expression analysis by quantitative RT-PCR revealed a substantial decrease in the amount of AML1 and AML1-ETO fusion transcripts in parallel with an increase in p16, p21, C/EBP and PU.1 transcription levels. Interestingly, AML1-ETO transcription down-regulation of AML cells needs direct contact with DAS 104-4 cells. Knocking down AML1-ETO expression by siRNA strategy led to reduction in proliferation and depletion of colony forming cells in Kasumi1 cell population. siRNA-mediated AML1-ETO knock-down Kasumi-1 cells showed increased susceptibility to stroma-induced myeloid differentiation. However, on its own, AML1-ETO down-regulation was not sufficient to induce myeloid differentiation. This indicates that AML1-ETO down-regulation may have an active role on the coculture-induced effect but in addition to AML1-ETO down-regulation, further stimuli are required for the coculture-induced myeloid differentiation in the AML cells. In summary, in the present study I established and characterised a coculture-based in vitro system, which is capable of reducing the proliferation while inducing differentiation of human AML cells. The concept emerging from the studies indicates that the stroma environment can affect leukaemic cell proliferation and differentiation in contact-dependent and CD44 activation-independent manner. Furthermore, this study emphasizes the role of AML1-ETO in AML and indicates that AML1-ETO down-regulation is involved in the stroma-induced differentiation of Kasumi-1 cells. The result described here encourages further investigation into the mechanistic details of molecular and cellular interactions between the leukaemic cells and their stroma, which in turn may lead to the identification of new paradigms for a knowledge-based control and reprogramming of leukaemic cells.