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Identification of genes potentially involved in disease transformation of CML.

In patients with chronic myeloid leukemia (CML) who do not reach a (near) complete cytogenetic response, the disease progresses over several years from an indolent, chronic phase into a rapidly fatal blast crisis. Events that are responsible for this transformation process are largely unknown. To identify changes in gene expression that occurred during the course of the disease, we performed cDNA subtraction on sequentially stored peripheral blood mononuclear cell pellets, collected throughout the course of disease of a single CML patient. In total, 32 differentially expressed sequences were identified, of which 27 corresponded to known genes. On quantitative PCR, eight of these genes, YWHAZ, GAS2, IL8, IL6, PBEF1, CCL4, SAT and MMRN, showed comparable differential expression in additional CML patient samples. This set of genes can be considered as a starting point for further research on causes of disease transformation in CML and may lead to new targets in the treatment of resistant CML.

Apoptosis↗

Normal and chronic phase CML hematopoietic cells repopulate NOD/SCID bone marrow with different kinetics and cell lineage representation.

INTRODUCTION: Chronic myelogenous leukemia is characterized by a clonal expansion of abnormal hematopoietic cells, which eventually replaces normal hematopoiesis. We wanted to test the hypothesis that the growth kinetics of CML and normal hematopoietic cells are different. MATERIALS AND METHODS: We compared the growth kinetics and the phenotype of engraftment of chronic phase CML and normal human CD34(+) precursor cells in the bone marrow of immune deficient mice. RESULTS: High levels of engraftment of normal precursors occurred early and consisted of myeloid, erythroid, megakaryocytic, and lymphoid elements. This level and pattern of engraftment were maintained at later assessments. The level of CML cell engraftment was initially much lower, but it increased progressively at late time-points with no indication of a plateau in growth. Early engraftment of CML cells consisted almost entirely of myeloid and mast cells but soon after only mast cells were detectable. Conversely mast cells were infrequent in mice engrafted with normal progenitors. CONCLUSION: We conclude that in contrast to normal cell engraftment, engraftment of CML cells in NOD/SCID mice is characterized by a slow but progressive myeloid infiltration, which eventually consists almost entirely of mast cells.

Animals↗

HLA-DRB1*16-restricted recognition of myeloid cells, including CD34+ CML progenitor cells.

The therapeutic effect of a human leucocyte antigen (HLA)-identical allogeneic stem cell transplantation (allo-SCT) for the treatment of haematological malignancies is mediated partly by the allogeneic T cells that are administered together with the stem cell graft. Chronic myeloid leukaemia (CML) is particularly sensitive to this graft-versus-leukaemia (GVL) effect. Several studies have shown that in allogeneic responses both CD4 and CD8 cells are capable of strong antigen-specific growth inhibition of leukaemic progenitor cells, but that CD4 cells mainly exert the GVL effect against CML. Efficient activation of allogeneic CD4 cells, as well as CD8 cells, may explain the sensitivity of CML cells to elimination by allogeneic T cells. Identification of the antigens recognized by CD4 cells is crucial in understanding the mechanism through which CML cells are so successful in activating allogeneic T cells. In the present report, we describe the characterization of an allogeneic CD4 T-cell clone, DDII.4.4. This clone was found to react against an antigen that is specifically expressed in myeloid cells, including CD34+ CML cells. The antigen recognition is restricted by HLA-DRB1*16. To our knowledge, this is only the second report on an allogeneic CD4 T-cell clone that reacts with early CD34+ myeloid progenitor cells.

Amino Acid Sequence↗

Blast colony-forming cell binding from CML bone marrow, or blood, on stromal layers pretreated with G-CSF or SCF.

Blast colony-forming cells (CFU-BL) represent a specific subpopulation of special primitive progenitors characterized by colony formation only in close contact with a preformed stromal layer. CFU-BL derived from bone marrow of chronic myeloid leukaemia (CML) patients have been proved to adhere poorly to bone marrow derived stromal layers suggesting that the appearance of progenitors and precursors in the circulation is due to a defective adhesion of these cells to the bone marrow microenvironment. In the present experiments the effect of short-term incubation of preformed normal bone marrow stroma on the adherence of CML derived CFU-BL was studied. For stroma cultures bone marrow cells were cultured in microplates in the presence of hydrocortisone. Cultures were used when stromal layers became confluent and no sign of haemopoiesis could be observed. CFU-BL were studied by panning plastic non-adherent mononuclear (PNAMNC) bone marrow or blood cells. 8.9 +/- 2.4 colonies/103 PNAMNC (six experiments) were formed from normal bone marrow on stromal layers and 4.8 +/- 2.1 colonies/103 PNAMNC (five experiments) from CML bone marrow. Colony formation from normal bone marrow was not increased if stromal layers were incubated with 100 ng/mL granulocyte colony-stimulating factor (G-CSF) or stem cell factor (SCF). Incubation of stroma with G-CSF or SCF, however, increased the colony formation of PNAMNC from CML bone marrow or blood significantly. These findings suggest that local concentration of haemopoietic growth factors at the time of panning may influence the attachment of CML progenitors to the stroma.

Bone Marrow↗

CML leukapheresis products can be enriched for CD34+ cells and simultaneously depleted of CD15+ cells using a simple Ab cocktail.

BACKGROUND: CML progenitor-cell studies would be greatly facilitated if samples could be repeatedly accessed from a source of well-characterized cells. The present study was designed to develop a simple, inexpensive Ab cocktail that would provide subpopulations of cells enriched for CD34+ cells and simultaneously depleted of CD15+ mature myeloid cells. METHODS: Cells from leukapheresis products from CML patients at diagnosis were incubated with each of two Ab cocktails. The standard cocktail (debulking, DB), containing 11 Abs, is recommended for obtaining a highly enriched population of CD34+ cells. The efficacy of an alternative, simpler cocktail (CML custom, CC), containing only four Abs was tested. The recoveries of CD34+ cells, CD15+ cells, colony-forming unit granulocyte-macrophage, and LTCIC were monitored. The samples were then cryopreserved, thawed, and the recoveries remeasured. RESULTS: The purity of CD34+ cells was significantly superior using the DB cocktail than with the CC cocktail. Conversely, using the CC cocktail, the yield of CD34+ cells was significantly higher compared to the DB cocktail. These results were maintained even when the amount of Ab was reduced 10-fold. Both Ab cocktails consistently removed > 99% of the CD15+ cells. Consistent with the CD34+ cell-enrichment data, higher colony-forming cell (CFC) frequencies were obtained with the DB cocktail, although superior yields of CFC were obtained with the CC cocktail. After cryopreservation and thawing the yield of CD34+ cells remained high, and a further reduction in the number of CD15+ cells was obtained. DISCUSSION: A method is described that allows the rapid and efficient debulking of large CML samples. This strategy will provide a source of well-characterized CML stem/progenitor cells that can be repeatedly accessed.

Antigens, CD34↗

Testing the safety of clinical-grade mature autologous myeloid DC in a phase I clinical immunotherapy trial of CML.

BACKGROUND: We conducted a phase I clinical immunotherapy trial of CML to evaluate the safety of a clinical-grade leukemic DC product standardized for purity and mature phenotype. METHODS: We injected autologous DC into patients in late chronic or accelerated phases of CML. The patients received mature CD83+ and bcr-abl+ DC prepared from CD14+ cells. Two cohorts of three patients received four injections each of 3 x 10(6) DC and 15 x 10(6) DC/injection, respectively. The first patient was studied before imatinib mesylate (IM) was available, four patients were treated concurrently with IM therapy and one did not tolerate the IM and was off the drug at the time of DC therapy. IM effects on WBC counts precluded DC preparation in numbers sufficient for further dose escalation. The first patient received DC s.c. and all subsequent patients received DC into a cervical lymph node under ultrasound guidance. RESULTS: DC injections were well tolerated. We observed no clinical responses. T cells drawn later in the course of therapy were more sensitive to stimulation by CML DC in vitro. DISCUSSION: The increase in T-cell sensitivity to CML-specific stimulation that accompanied active immunization by CML DC justifies further clinical studies, possibly with modifications such as an increased frequency and number of DC injections.

Aged↗

Identification of a complex formed between nuclear proteins and the transcriptional enhancer of interferon-inducible genes that is present in the peripheral blood myeloid cells of CML but not normal individuals.

Interferon-alpha (INF-alpha) induces cytogenetic remissions in 20% of chronic myelogenous leukemia (CML) patients. To clarify the mechanisms through which this antiproliferative action of IFN is mediated in the CML cell, a modification of the mobility-shift assay was used to follow the formation of complexes between nuclear proteins and IFN-inducible transcriptional enhancers involved in mediating the cellular effects of IFN-alpha. These studies identified a complex that was present in the myeloid cells of 18/24 (75%) of chronic-phase CML patients tested whose cells contained 100% Philadelphia chromosome positive (Ph+) cells, while the proteins of none of the samples tested from normal peripheral blood samples and only 22% (2/9) of the CML patients in an IFN-induced major cytogenetic remission (less than 30% Ph+ cells) contained these complexes. These studies suggest that the mobility-shift assay detects changes in the CML myeloid cell that distinguish it from the normal myeloid cell.

Base Sequence↗

Imatinib improves but may not fully reverse the poor prognosis of patients with CML with derivative chromosome 9 deletions.

Deletions of the derivative chromosome 9 occur in a subset of patients with Philadelphia chromosome-positive chronic myeloid leukemia (CML) and are associated with a poor prognosis on standard drug therapy. However, it is currently unknown if the presence of deletions influences the response to imatinib, an Abl-specific tyrosine kinase inhibitor, that has recently shown excellent hematologic and cytogenetic responses in patients with CML. We, therefore, compared hematologic and cytogenetic responses with imatinib in 397 patients with CML, and survival and progression in 354 of these patients, according to deletion status and disease phase. We found no difference in survival between patients with and without deletions, contrasting with previous reports in cohorts with a lower proportion of patients treated with imatinib. However, the time to disease progression on imatinib treatment was significantly shorter for patients with deletions, both in chronic phase (P =.02) and advanced phases (P =.02). Moreover, both in chronic phase and more advanced phases of CML, hematologic and cytogenetic responses were uniformly lower in patients with deletions, with significant differences seen for hematologic response (P =.04), for major cytogenetic response (P =.008) in chronic phase, and for hematologic response in advanced phases (P =.007) of CML. This finding suggests that differences in survival may become apparent with longer follow-up.

Adult↗

Inhibition of wild-type and mutant Bcr-Abl by AP23464, a potent ATP-based oncogenic protein kinase inhibitor: implications for CML.

The deregulated, oncogenic tyrosine kinase Bcr-Abl causes chronic myeloid leukemia (CML). Imatinib mesylate (Gleevec, STI571), a Bcr-Abl kinase inhibitor, selectively inhibits proliferation and promotes apoptosis of CML cells. Despite the success of imatinib mesylate in the treatment of CML, resistance is observed, particularly in advanced disease. The most common imatinib mesylate resistance mechanism involves Bcr-Abl kinase domain mutations that impart varying degrees of drug insensitivity. AP23464, a potent adenosine 5'-triphosphate (ATP)-based inhibitor of Src and Abl kinases, displays antiproliferative activity against a human CML cell line and Bcr-Abl-transduced Ba/F3 cells (IC(50) = 14 nM; imatinib mesylate IC(50) = 350 nM). AP23464 ablates Bcr-Abl tyrosine phosphorylation, blocks cell cycle progression, and promotes apoptosis of Bcr-Abl-expressing cells. Biochemical assays with purified glutathione S transferase (GST)-Abl kinase domain confirmed that AP23464 directly inhibits Abl activity. Importantly, the low nanomolar cellular and biochemical inhibitory properties of AP23464 extend to frequently observed imatinib mesylate-resistant Bcr-Abl mutants, including nucleotide binding P-loop mutants Q252H, Y253F, E255K, C-terminal loop mutant M351T, and activation loop mutant H396P. AP23464 was ineffective against mutant T315I, an imatinib mesylate contact residue. The potency of AP23464 against imatinib mesylate-refractory Bcr-Abl and its distinct binding mode relative to imatinib mesylate warrant further investigation of AP23464 for the treatment of CML.

Adaptor Proteins, Signal Transducing↗

Effect of the hemoregulatory peptide (pEEDCK)2 (pyroGlu-Glu-Asp-Cys-Lys)2 and MIP-1alpha is reduced in bone marrow cultures from patients with chronic myeloid leukemia (CML).

The granulocyte-derived hemoregulatory peptide pyroGlu-Glu-Asp-Cys-Lys = pEEDCK is known to keep hematopoietic cells quiescent. When oxidized to its dimeric form (pEEDCK)2, it activates growth of hematopoietic progenitors in association with stroma-derived cytokines. (pEEDCK)2 has a Cys-Cys motif which is also a typical feature of the macrophage inflammatory protein (MIP-1alpha). The present study was designed to analyze differences between the response of normal and leukemic progenitor cells to (pEEDCK)2 or MIP-1alpha. When long-term bone marrow cultures (LTBMCs) were incubated with (pEEDCK)2 or MIP-1alpha and/or cytokines, the stimulatory effect on colony-forming units-granulocyte/erythroid/macrophage/megakaryocyte of LTBMC from chronic myeloid leukemia (CML) patients was less than 50% compared to LTBMC from healthy humans. No difference in oncogene expression could be observed in LTBMC from CML patients regarding reduction of Philadelphia chromosome-associated transcription of the BCR-ABL gene. With respect to the expression of growth and differentiation-associated genes (Galpha16, 5-lipoxygenase, phospholipaseA2, c-kit, and CD34), which were analyzed from LTBMC by semiquantitative reverse transcriptase-polymerase chain reaction, the same transcription rate was observed in CML patients and healthy donors. However, two isoforms of a key enzyme of oxidative metabolism, carnitine palmitoyltransferase (CPT1A and CPT1B), showed 50-fold higher expression rates in LTBMC cells of healthy donors compared to CML patients. It is known that a decrease in oxidative metabolism is associated with an increase in redox equivalents in malignancy. This might result in a reduction of disulphide bonds in (pEEDCK)2 or MIP-1alpha, thus inducing a downregulation of these factors in bone marrow from CML patients.

Animals↗

CML: mechanisms of disease initiation and progression.

Chronic myelogenous leukemia (CML) is a hematological stem cell disorder characterized by excessive proliferation of the myeloid lineage. It has a progressive course typified by the transition from the chronic phase to the accelerated phase and on to blast crisis. The hallmark of CML is the translocation between chromosomes 9 and 22 that results in the chimeric BCR-ABL gene encoding p210BCR-ABL. The oncogenic potential of this protein has been validated, and it is believed that it contributes in a critical way to the initiation of CML. However, the secondary genetic forces responsible for the transition from the chronic state to the fully blastic stage are not clear. Evidence for chromosomal instability includes the clonal evolution which characterizes advanced CML. In regard to specific genetic aberrations, sporadic reports have shown alterations in H-RAS, c-MYC, retinoblastoma, and P53 genes, as well as production of p190BCR-ABL during the progression of CML. In addition, we have recently found evidence for excessive interleukin-1 beta production, acting in an autocrine and/or paracrine manner, in the more advanced stages of the disease. Taken together, current data suggest that multiple molecular pathways lead to disease progression, and that distinct subsets of genetic alterations exist in blast crisis patients.

Blast Crisis↗

Potential mechanisms of action of interferon-alpha in CML.

Treatment with interferon-alpha (IFN-alpha) adequately controls the leukemic cell mass in the majority of newly diagnosed patients with chronic myeloid leukemia (CML). However, the degree of response ranges from no 'hematologic' response to complete suppression of the leukemic clone. The mechanism(s) by which IFN-alpha elicits these responses is unknown, but in vitro studies have indicated that IFN-alpha might function by (1) selective toxicity against the leukemic clone, (2) enhancement of 'immune' regulation, and (3) modulation of bone marrow microenvironmental regulation of hematopoiesis. Using in vitro clonogenic assays we were unable to demonstrate that IFN-alpha selectively inhibited the proliferation of CML progenitor cells. We also found no difference in the expression of LFA-3 on normal or CML CD34+ cells. However, by panning and co-culturing hematopoietic cells on monolayers of bone marrow stromal cells, grown with and without IFN-alpha, we found that IFN-alpha enhanced the adhesion of CML progenitors to stromal cells, whereas adhesion by normal progenitor cells was essentially unaffected. This enhanced adhesion by CML progenitor cells was associated with a reduction in neuraminic acid levels in the extracellular matrix overlying stromal cells. Therefore, it is possible that one of the mechanisms by which IFN-alpha exerts its regulatory effect on the leukemic clone is through enhancement of hematopoietic cell-microenvironmental cell interactions.

Antigens, CD↗

Growth inhibition of Ph+ progenitor cells from CML patients using the tyrosine kinase inhibitor CGP57148B.

BACKGROUND: Different methods have been investigated for their purging capacity of contaminating CML cells in autologous stem cell products. CGP57148B, a tyrphostin, has been shown to be efficient in the reduction of cell proliferation of CML cell lines and primary CML cells, as well as in the inhibition of bcr/abl-related tumor formation in animal models. MATERIALS AND METHODS: The effect of CGP57148B on purified CD34+ progenitor cells from BM, PB, or leukapheresis products of 8 CML patients was studied under serum-free cytokine-supplemented ex vivo culture conditions. RESULTS: FISH as well as RT-PCR analysis showed a significant reduction of Ph+ cells after 7 days ex vivo-culture in the presence of the tyrphostin. Growth of Ph- cells was almost unaffected by treatment with CGP57148B. CONCLUSION: Our results support the observation that CGP57148B can selectively inhibit proliferation of Ph+/bcr/abl+ primary CML cells under serum-free cytokine-supplemented culture conditions.

Adult↗

Pyrrolo-1,5-benzoxazepines induce apoptosis in chronic myelogenous leukemia (CML) cells by bypassing the apoptotic suppressor bcr-abl.

Expression of the transforming oncogene bcr-abl in chronic myelogenous leukemia (CML) cells is reported to confer resistance against apoptosis induced by many chemotherapeutic agents such as etoposide, ara-C, and staurosporine. In the present study some members of a series of novel pyrrolo-1,5-benzoxazepines potently induce apoptosis, as shown by cell shrinkage, chromatin condensation, DNA fragmentation, and poly(ADP-ribose) polymerase (PARP) cleavage, in three CML cell lines, K562, KYO.1, and LAMA 84. Induction of apoptosis by a representative member of this series, PBOX-6, was not accompanied by either the down-regulation of Bcr-Abl or by the attenuation of its protein tyrosine kinase activity up to 24 h after treatment, when approximately 50% of the cells had undergone apoptosis. These results suggest that down-regulation of Bcr-Abl is not part of the upstream apoptotic death program activated by PBOX-6. By characterizing the mechanism in which this novel agent executes apoptosis, this study has revealed that PBOX-6 caused activation of caspase 3-like proteases in only two of the three CML cell lines. In addition, inhibition of caspase 3-like protease activity using the inhibitor z-DEVD-fmk blocked caspase 3-like protease activity but did not prevent the induction of apoptosis, suggesting that caspase 3-like proteases are not essential in the mechanism by which PBOX-6 induces apoptosis in CML cells. In conclusion, this study demonstrates that PBOX-6 can bypass Bcr-Abl-mediated suppression of apoptosis, suggesting an important potential use of these compounds in the treatment of CML.

Antineoplastic Agents↗

[Activation effects of BCR/ABL antigen on CML T cells mediated by protein transduction domain].

AIM: To study the activation effect of BCR/ABL antigen on T cells from CML patients mediated by protein transduction domain (PTD). METHODS: The fused plasmid containing PTD gene and b3a2 bcr/abl gene of CML was constructed by genetic engineering technique and was expressed in E.coli. The PBMCs from CML patients were stimulated in-vitro with purified PTD-BCR/ABL antigen and then expression of the activation antigen CD25 on CD8(+) and CD4(+) T cells after stimulation was detected by flow cytometry (FCM). RESULTS: After stimulation with 100 mg/L of PTD-BCR/ABL antigen (final concentration) for 4 days in-vitro, CD8(+) T cells were activated in 5 of 10 CML patients and CD4(+) T cells were activated in 2 of 10 patients. Both CD8(+) and CD4(+) T cells were activated simultaneously in one of them. However, neither CD4(+) nor CD8(+) T cells was activated in BCR/ABL antigen stimulation group as control. CONCLUSION: Using a PTD-mediated antigen transduction system, exogenous BCR/ABL antigen can be transferred into APCs and be processed and presented onto surface of APCs to activate Ag-specific CD8(+) and CD4(+) T cells in-vitro. The strategy outlined in this paper may provide a new approach for priming Ag-specific CD8(+) and CD4(+) T cells in-vitro and immunotherapy of CML.

CD4-Positive T-Lymphocytes↗

p27KIP1 and GATA-1 are potential downstream molecules in activin A-induced differentiation and apoptosis pathways in CML cells.

p27KIP1 is known as a regulator of cellular differentiation and apoptosis in human cancer cells. We have previously reported that human chronic myeloid leukemia (CML) KU812 and K562 cells show inhibited cellular proliferation in response to treatment with activin A, a member of TGF-beta superfamily. Apoptosis and erythroid differentiation can be induced in KU812 and K562 cells, respectively. We report herein that activin A induced the expression of p27KIP1 in CML cells along with the induction of cellular differentiation and apoptosis. There are putative binding sequences of erythroid-related transcription factor GATA-1 in the promoter region of the human p27KIP1 gene. Expression of GATA-1 protein in activin A-treated KU812 and K562 cells showed dissimilar regulation in these two cell lines. Induction of p27KIP1 was commonly observed, but it did not correspond to the expression levels of GATA-1 in either line of activin A-treated CML cells. In addition, ERK protein was rapidly and transiently activated with activin A in both types of CML cells, suggesting that phosphorylation of ERK is required for activin A signaling in CML cells. These results indicate that both p27KIP1 induction and regulation of GATA-1 play essential roles in activin A-induced erythroid differentiation and apoptosis.

Activins↗

Chronic myelogenous leukaemia (CML): an update.

The management of chronic myelogenous leukaemia (CML) has undergone a major change over the past 5 years. All newly diagnosed patients of CML are candidates for imatinib mesylate therapy. Almost 95% of patients with early chronic phase CML achieve complete haematological remission (CHR) and nearly 80% achieve complete cytogenetic response (CGR; 0% Philadelphia [Ph] chromosome-positive metaphases). These responses are stable in most patients with a risk of relapse of 4%-6% per year. For patients with advanced CML (accelerated phase and blast crisis), achievement of CHR and major (complete and partial) CGR occurs in 25%-37% and 10%-30% of patients, respectively. Most investigators agree that patients who fail to achieve CHR by 12 weeks, have partial cytogenetic response (< 35% Ph-positive metaphases) at 12 months, have CGR by 18 months, who relapse after initial response to imatinib, and those with a high Sokal score or in an advanced phase of CML should be considered for allogeneic stem cell transplantation (SCT). Despite Ph negativity with imatinib treatment, most patients continue to remain BCR-ABL positive on molecular studies, and require treatment indefinitely. Identification of patients at high risk for relapse and understanding the mechanisms to unravel resistance to imatinib are current areas of active research.

Antineoplastic Agents↗

Bone marrow transplantation for treatment of chronic myelogenous leukaemia (CML)--preliminary experience in Singapore.

Chronic Myelogenous Leukaemia (CML) is a clonogeneic disease with the Philadelphia (Ph') chromosome as a cytogenetic marker. Conventional therapy rarely leads to cure in CML. Treatment of CML by bone marrow transplantation (BMT) is thus a reasonable alternative. This study reports on nine patients in chronic phase CML who were given allogeneic bone marrow transplantation with bone marrow cells from HLA identical siblings. There were 5 males and 4 females. Median age was 25 years (range 15-33 years). Median time from diagnosis to BMT was 8 months (range 25 to 48 months). Conditioning regimens: (i) 4 patients received cyclophosphamide 60 mgm/kg x 2 days and Total Body Irradiation (TBI) 200 rads x 6 doses x 3 days. (ii) 5 patients received busulphan 4 mgm/kg per day x 4 days followed by cyclophosphamide 60 mgm/kg x 2 days. Cyclosporin A (CSA) and methotrexate (MTX) was administered for Graft-Versus-Host-Disease (GVHD) prophylaxis in 8 patients; one patient received CSA and prednisolone. Median time for engraftment and for peripheral blood granulocytes to reach more than 500/ul was 18 days (range 12-30 days). Median time for platelet count to reach more than 20,000/ul was 25.5 days (range 15-30 days). 33% of patients developed acute GVHD of Grade II and above. The acturial survival of the 9 patients is 46%. Eight of 9 patients transplanted had two or more risk factors which adversely affect prognosis in CML. Four patients are alive and in remission at 562, 386, 46 and 46 days post-BMT respectively.

Adolescent↗