scholarly journals Stem Cell Biomarkers in Chronic Myeloid Leukemia

2008 ◽  
Vol 24 (4-5) ◽  
pp. 201-216 ◽  
Author(s):  
Xiaoyan Jiang ◽  
Yun Zhao ◽  
Donna Forrest ◽  
Clayton Smith ◽  
Allen Eaves ◽  
...  

Chronic myeloid leukemia (CML) is a clonal multi-step myeloproliferative disease that is initially produced and ultimately sustained by a rare subpopulation of BCR-ABL+ cells with multi-lineage stem cell properties. These BCR-ABL+ CML stem cells are phenotypically similar to normal hematopoietic stem cells which are also maintained throughout the course of the disease at varying levels in different patients. Defining the unique properties of the leukemic stem cells that produce the chronic phase of CML has therefore had to rely heavily on access to samples from rare patients in which the stem cell compartment is dominated by leukemic elements. Here we review past and ongoing approaches using such samples to identify biologically and clinically relevant biomarkers of BCR-ABL+ stem cells that explain their unusual biology and that may help to design, or at least predict, improved treatment responses in CML patients. These studies are of particular interest in light of recent evidence that chronic phase CML stem cells are not only innately resistant to imatinib mesylate and other drugs that target the BCR-ABL oncoprotein, but are also genetically unstable.

Blood ◽  
2007 ◽  
Vol 110 (11) ◽  
pp. 1794-1794
Author(s):  
Jacalyn Rosenblatt ◽  
Zekui Wu ◽  
Corrine Lenahan ◽  
Adam Bissonnette ◽  
Baldev Vasir ◽  
...  

Abstract The epithelial mucin antigen (MUC1) is aberrantly expressed in many epithelial tumors and hematologic malignancies and promotes oncogenesis and tumor progression. MUC1 is recognized by the T cell repertoire and has served as a target for cellular immunotherapy. In the present study, we examined MUC1 as a marker for myeloid leukemia cells and their progenitors and its capacity to serve as a target for leukemia stem cells. Myeloid leukemia cells were isolated from bone marrow aspirates or peripheral blood in patients with high levels of circulating disease. MUC1 was not expressed on unselected leukemia samples (mean expression 3%, n=12). Similarly, low levels of MUC1 expression were seen in leukemic blasts with monocytoid differentiation (mean expression 2.7%, n=5). A subset of leukemia specimens underwent CD34 selection by magnetic bead separation. In contrast to unselected cells, 38% of CD34+ leukemia cells expressed MUC1 (n=5). The leukemia stem cell compartment was isolated by separating CD34+/CD38−/ lineage- fractions by flow cytometric sorting. Leukemia stem cells demonstrated strong expression of MUC-1 by immunohistochemical staining and FACS analysis. Similarly, we examined MUC1 expression on progenitor cells derived from chronic phase chronic myeloid leukemia and following blast transformation. MUC1 was seen in only 4% of CD34+ cells obtained from chronic phase CML samples (n=4) while uniform expression was observed in samples derived from patients with accelerated/blastic phase disease. These data suggest that MUC1 serves as a marker for early leukemia progenitors and is associated with blastic transformation. We assessed the capacity of a cancer vaccine consisting of dendritic cell (DC)/myeloid leukemia fusions to stimulate immune responses that target MUC1 and other antigens expressed by the stem cell compartment. DCs were generated from adherent mononuclear cells that were cultured with GM-CSF and IL-4 and matured with TNFa. DCs were fused with patient derived myeloid leukemia cells using polyethylene glycol as previously described. Fusion cells were quantified by determining the percentage of cells that expressed unique DC and leukemia antigens. DC/AML fusions induced the expansion of MUC1 specific T cells. Stimulation of autologous T cells with DC/AML fusions resulted in a mean 3 fold increase in CD8+ cells binding the MUC-1 tetramer (N=4). DC/AML fusions stimulated anti-tumor immune responses that targeted leukemia stem cells. Fusion stimulated T cells demonstrated increased expression of IFNγ following exposure to lysate generated from unselected leukemia cells (29 fold) and leukemia stem cells (28 fold). In contrast, exposure to renal carcinoma lysate generated only a 5 fold increase in IFNγ. In summary, these findings suggest that leukemic progenitors in AML and accelerated/blast phase CML express MUC-1. DC/tumor fusion vaccines target the MUC-1 protein and the stem cell compartment, and may be a potent immunotherapeutic strategy to eliminate the malignant stem cell clone in AML.


Blood ◽  
2009 ◽  
Vol 114 (22) ◽  
pp. 399-399 ◽  
Author(s):  
Monique Terwijn ◽  
Angèle Kelder ◽  
Arjo P Rutten ◽  
Alexander N Snel ◽  
Willemijn Scholten ◽  
...  

Abstract Abstract 399 In acute myeloid leukemia (AML), relapses originate from the outgrowth of therapy surviving leukemic blasts know as minimal residual disease (MRD). Accumulating evidence shows that leukemia initiating cells or leukemic stem cells (LSCs) are responsible for persistence and outgrowth of AML. Monitoring LSCs during and after therapy might thus offer accurate prognostic information. However, as LSCs and hematopoietic stem cells (HSCs) both reside within the immunophenotypically defined CD34+CD38- compartment, accurate discrimination between LSCs and HSCs is required. We previously showed that within the CD34+CD38- stem cell compartment, LSCs can be discriminated from HSC by aberrant expression of markers (leukemia associated phenotype, LAP), including lineage markers like CD7, CD19 and CD56 and the novel LSC marker CLL-1 (van Rhenen, Leukemia 2007, Blood 2007). In addition, we reported that flowcytometer light scatter properties add to even better detection of LSCs, allowing LSCs detection in AML cases lacking LAP (ASH abstract 1353, 2008). Using this gating strategy, we determined LSC frequency in 64 remission bone marrow samples of CD34+ AML patients. A stem cell compartment was defined as a minimum of 5 clustered CD34+CD38- events with a minimal analyzed number of 500,000 white blood cells. After first cycle of chemotherapy, high LSC frequency (>1 × 10-3) clearly predicted adverse relapse free survival (RFS, figure 1a). LSC frequency above cut-off led to a median RFS of 5 months (n=9), while patients with LSC frequency below cut-off (n=22) showed a significantly longer median RFS of >56 months (p=0.00003). In spite of the relatively low number of patients, again a high LSC frequency (>2 × 10-4) after the second cycle and after consolidation therapy predicted worse RFS: after second cycle, median RFS was 6 months (n=9) vs. >43 months for patients with LSC frequency below cut-off (p=0.004). After consolidation, these figures were 6 months (n=7) vs. >32 months (n=6, p=0.03). Although total blast MRD (leukemic blasts as % of WBC) is known to predict survival (N.Feller et al. Leukemia 2004), monitoring LSCs as compared to total blast MRD has two major advantages: the specificity is higher (van Rhenen et al. Leukemia 2007) and well-known LSC makers like CLL-1, CD96 and CD123 can in principle be used for LSC monitoring, but not for total blast MRD detection since these markers are also expressed on normal progenitor cells. On the other hand, LSCs constitute only a small fraction of all leukemic blasts and therefore monitoring total blast MRD may have the advantage of a higher sensitivity. We thus tested the hypothesis that even more accurate prognostic information could be obtained by combining LSC frequency with total blast MRD. Total blast MRD after first cycle was predictive for survival with borderline significance (p=0.08): a cut-off of 0.3% resulted in two patient groups with median RFS of 9 months vs. >56 months. Figure 1b shows the result of the combined data of LSC and MRD frequency after first cycle therapy. We used the terms LSC+ and MRD+ for cell frequencies above cut-off and LSC- and MRD- for those below cut-off. We could clearly identify that apart from LSC+/MRD+ patients, LSC+/MRD- patients too have very poor prognosis, while MRD+/LSC- patients show an adverse prognosis as compared to LSC-/MRD- patients. These results from the first study on the in vivo fate of LSCs during and after therapy, strongly support the hypothesis that in CD34+ AML the leukemia initiating capacity originates from the CD34+CD38- population and is important for tumor survival and outgrowth. These results show that LSC frequency might be superior in predicting prognosis of AML patients in CR as compared to MRD total blast frequency, while the combination of both may offer the most optimal parameter to guide future intervention therapies. This work was supported by Netherlands Cancer Foundation KWF. Disclosures: No relevant conflicts of interest to declare.


Blood ◽  
1993 ◽  
Vol 81 (3) ◽  
pp. 801-807 ◽  
Author(s):  
T Leemhuis ◽  
D Leibowitz ◽  
G Cox ◽  
R Silver ◽  
EF Srour ◽  
...  

Chronic myeloid leukemia (CML) is a malignant disorder of the hematopoietic stem cell. It has been shown that normal stem cells coexist with malignant stem cells in the bone marrow of patients with chronic-phase CML. To characterize the primitive hematopoietic progenitor cells within CML marrow, CD34+DR- and CD34+DR+ cells were isolated using centrifugal elutriation, monoclonal antibody labeling, and flow cytometric cell sorting. Polymerase chain reaction analysis of RNA samples from these CD34+ subpopulations was used to detect the presence of the BCR/ABL translocation characteristic of CML. The CD34+DR+ subpopulation contained BCR/ABL(+) cells in 11 of 12 marrow samples studied, whereas the CD34+DR- subpopulation contained BCR/ABL(+) cells in 6 of 9 CML marrow specimens. These cell populations were assayed for hematopoietic progenitor cells, and individual hematopoietic colonies were analyzed by PCR for their BCR/ABL status. Results from six patients showed that nearly half of the myeloid colonies cloned from CD34+DR- cells were BCR/ABL(+), although the CD34+DR- subpopulation contained significantly fewer BCR/ABL(+) progenitor cells than either low-density bone marrow (LDBM) or the CD34+DR+ fraction. These CD34+ cells were also used to establish stromal cell-free long-term bone marrow cultures to assess the BCR/ABL status of hematopoietic stem cells within these CML marrow populations. After 28 days in culture, three of five cultures initiated with CD34+DR- cells produced BCR/ABL(-) cells. By contrast, only one of eight cultures initiated with CD34+DR+ cells were BCR/ABL(-) after 28 days. These results indicate that the CD34+DR- subpopulation of CML marrow still contains leukemic progenitor cells, although to a lesser extent than either LDBM or CD34+DR+ cells.


Blood ◽  
1993 ◽  
Vol 81 (3) ◽  
pp. 801-807 ◽  
Author(s):  
T Leemhuis ◽  
D Leibowitz ◽  
G Cox ◽  
R Silver ◽  
EF Srour ◽  
...  

Abstract Chronic myeloid leukemia (CML) is a malignant disorder of the hematopoietic stem cell. It has been shown that normal stem cells coexist with malignant stem cells in the bone marrow of patients with chronic-phase CML. To characterize the primitive hematopoietic progenitor cells within CML marrow, CD34+DR- and CD34+DR+ cells were isolated using centrifugal elutriation, monoclonal antibody labeling, and flow cytometric cell sorting. Polymerase chain reaction analysis of RNA samples from these CD34+ subpopulations was used to detect the presence of the BCR/ABL translocation characteristic of CML. The CD34+DR+ subpopulation contained BCR/ABL(+) cells in 11 of 12 marrow samples studied, whereas the CD34+DR- subpopulation contained BCR/ABL(+) cells in 6 of 9 CML marrow specimens. These cell populations were assayed for hematopoietic progenitor cells, and individual hematopoietic colonies were analyzed by PCR for their BCR/ABL status. Results from six patients showed that nearly half of the myeloid colonies cloned from CD34+DR- cells were BCR/ABL(+), although the CD34+DR- subpopulation contained significantly fewer BCR/ABL(+) progenitor cells than either low-density bone marrow (LDBM) or the CD34+DR+ fraction. These CD34+ cells were also used to establish stromal cell-free long-term bone marrow cultures to assess the BCR/ABL status of hematopoietic stem cells within these CML marrow populations. After 28 days in culture, three of five cultures initiated with CD34+DR- cells produced BCR/ABL(-) cells. By contrast, only one of eight cultures initiated with CD34+DR+ cells were BCR/ABL(-) after 28 days. These results indicate that the CD34+DR- subpopulation of CML marrow still contains leukemic progenitor cells, although to a lesser extent than either LDBM or CD34+DR+ cells.


Blood ◽  
2007 ◽  
Vol 110 (9) ◽  
pp. 3456-3462 ◽  
Author(s):  
Partow Kebriaei ◽  
Michelle A. Detry ◽  
Sergio Giralt ◽  
Antonio Carrasco-Yalan ◽  
Athanasios Anagnostopoulos ◽  
...  

Abstract Allogeneic hematopoietic stem-cell transplantation (HSCT) remains an effective strategy for inducing durable remission in chronic myeloid leukemia (CML). Reduced-intensity conditioning (RIC) regimens extend HSCT to older patients and those with comorbidities who would otherwise not be suitable candidates for HSCT. The long-term efficacy of this approach is not established. We evaluated outcomes of 64 CML patients with advanced-phase disease (80% beyond first chronic phase), not eligible for myeloablative preparative regimens due to older age or comorbid conditions, who were treated with fludarabine-based RIC regimens. Donor type was matched related (n =30), 1 antigen-mismatched related (n =4), or matched unrelated (n =30). With median follow-up of 7 years, overall survival (OS) and progression-free survival (PFS) were 33% and 20%, respectively, at 5 years. Incidence of treatment-related mortality (TRM) was 33%, 39%, and 48% at 100 days, and 2 and 5 years after HSCT, respectively. In multivariate analysis, only disease stage at time of HSCT was significantly predictive for both OS and PFS. RIC HSCT provides adequate disease control in chronic-phase CML patients, but alternative treatment strategies need to be explored in patients with advanced disease. TRM rates are acceptable in this high-risk population but increase over time.


Blood ◽  
2006 ◽  
Vol 108 (11) ◽  
pp. 2948-2948
Author(s):  
Jerzy Holowiecki ◽  
Sebastian Giebel ◽  
Jerzy Wojnar ◽  
Miroslaw Markiewicz ◽  
Aleksandra Holowiecka-Goral ◽  
...  

Abstract Unrelated donor - hematopoietic stem cell transplantation (URD-HSCT) is the treatment of proved long-term efficacy for chronic myeloid leukemia (CML) patients not having an HLA-identical sibling. However, high procedure-related toxicity observed after oral busulfan- or TBI-based conditioning limits its applicability and deteriorates outcome [Radich, Blood2003, 102, 31–5]. This is of increasing importance in the presence of challanging options offered by tyrosine kinase inhibitors. Between 2003–2006 we introduced a new preparetive regimen consisting of Treosulfan (a soluble alkylyting agent) 14 g/m2/d on days -6, -5, -4, Fludarabine 30 mg/m2/d on days -6, -5, -4, -3, -2, and, anti-thymocyte globulin (ATG) at a total dose of 6 mg/kg. Thirty patients (age 32, range 16–48 years) with CML in the 1st chronic phase (n=29) or in 2nd chronic phase (n=1) were included in the study. Median interval from diagnosis to alloHSCT equaled 1.0 (0.5–12.0) years. 63% of patients had previously been treated with Imatinib. The donors were selected based on high resolution typing for both HLA class I and II. 43% of donors were mismatched for a single HLA-C (n=9), HLA-DQB1 (n=3) or HLA-B locus (n=1). Bone marrow was used a source of stem cells in 19 patients, peripheral blood - in 11 cases. GVHD prophylaxis consisted of Cyclosporin A and short-course Methotrexate. All patients engrafted with the median time to neutrophil recovery >0.5 G/L and PLT >50 G/L of 19 (10–30) days and 18 (12–29) days, respectively. Complete donor chimerism was achieved until day +100 in all but one patient. Grade 3–4 neutropenic infections occurred in 13% of patients. Grade 3–4 mucositis as well as hepatic toxicity including VOD were not observed. The incidence of grade II acute GVHD was 23%, whereas grade III-IV acute GVHD was not observed. The incidence of extensive chronic GVHD was 10%. At 3 years the probability of the overall survival and hematological relapse-free survival equaled 82% (+/−7%). The cumulative incidence of non-relapse moratlity was 18% (+/−7%) (fungal infection n=3, bacterial infection n=1, EBV-LPD n=1). Four patients required donor lymphocyte infusion or additional interferon or imatinib treatment because of incomplete donor chimerism or molecular/cytogenetic relapse after initial response. We conclude that treosulfan + fludarabine + ATG conditioning is associated with low organ toxicity, low incidence of severe GVHD and NRM. The regimen is feasible option for CML patients referred for URD-HSCT in tyrosine kinase inhibitors era.


Blood ◽  
2006 ◽  
Vol 108 (11) ◽  
pp. 5408-5408
Author(s):  
Xiaoyan Zhang ◽  
Jianyong Li ◽  
Kejiang Cao ◽  
Hanxin Wu ◽  
Hua Lu ◽  
...  

Abstract Background: Allogeneic hematopoietic stem cell transplantation (HSCT) is the only way to cure many hematologic malignancies. HLA-haploidentical related HSCT was performed in case of lack of HLA-matched donors. From the results of in-vitro and animal studies, Mesenchymal stem cells (MSCs) transplanted simultaneously with hematopoietic stem cells (HSCs) may support hematopoietic regeneration and have the immunomodulatory effect. MSCs together with HSCs transplantation from the same HLA-haploidentical donor were used in patients with hematologic malignancies. Patients and Methods: Three patients were chronic myeloid leukemia (blast crisis), chronic myeloid leukemia (chronic phase) and refractory T-cell lymphoblastic lymphoma (leukemia phase) respectively. Complete demographic and clinical details of these 3 patients are shown in Table 1. Bone marrow mononuclear cells obtained from their HLA-haploidentical related donors were cultured and expanded in vitro about 2 months before transplantation. Immunophenotype of the harvested cells were detected in order to identify them. After conditioned by cytosine arabinoside/cyclophosphamide/total body irradiation regimen, patients were co-transplanted with HSCs and ex-vivo expanded MSCs. Cyclosporine, methotrexate, antithymocyte globulin, mycophenolate mofetil and anti-CD25 monoclonal antibody were used together for prophylaxis of GVHD. Clinical features after transplantation in these patients were observed. Results: About 2×106 MSCs per kilogram of recipients’ weight were successfully expanded from bone marrow samples. These cells were CD73, CD90, CD105 positive and CD34, CD45, CD38, CD10, CD20, CD33, HLA-DR negative by flow cytometric analysis. No adverse response was observed during and after infusion of MSCs. Hematopoietic reconstruction was successful in all the patients. And they had full donor-type chimerism 1 month after transplantation. N1 received donor lymphocyte infusion (DLI) to prevent the relapse. N2 relapsed and received the therapy of STI571 combined with DLI. She had a complete remission at last. No graft-versus-host disease (GVHD) was observed in N1 and N2 until they received DLI. N1 died of infection 11 months after transplantation. N2 and N3 now have been followed up for 41 and 31 months respectively. Clinical features of patients after transplantation are shown in Table 2. Conclusions: Bone marrow derived MSCs can be tolerant well in HLA-haploidentical HSCT. Its exact effect in human HLA-haploidentical allogeneic HSCT needs to be studied further. Tab.1 Patient Demographic and Clinical Data Patient Diagnosis Age Sex Course of disease before transplantation Donor Mismatched HLA loci Abbr: LPL - lymphoblastic lymphoma; CML - chronic myeloid leukemia; BC - blast crisis; CP - chronic phase; yr - year; mo - month N1 T-LPL 22 F 7 yr mother 3 N2 CML-BC 32 F 6mo sibling brother 3 N3 CML-CP 22 M 5mo father 3 Tab.2 Clinical features of patients after transplantation Patient Hematopoietic reconstruction Donor-type chimerism Time of relapse time of DLI acute GVHD chronic GVHD survival Abbr: DLI - donor lymphocyte infusion; d - day; mo - month N1 15 d 100% no 5 mo IV (after DLI) extensive die in 11 mo N2 16 d 100% 6mo 6 mo IV (after DLI) no >41 mo N3 15 d 100% no no I limited >31 mo


Blood ◽  
2009 ◽  
Vol 114 (22) ◽  
pp. 3269-3269
Author(s):  
Iwona Solarska ◽  
Barbara Nasilowska-Adamska ◽  
Maria Bieniaszewska ◽  
Jan Maciej Zaucha ◽  
Piotr Rzepecki ◽  
...  

Abstract Abstract 3269 Poster Board III-1 Allogeneic hematopoietic stem cell transplantation (alloHSCT) is a potentially curative treatment for patients (pts) with chronic myeloid leukemia (CML). AlloHSCT is associated with long-term disease-free survival in 40% to 80% pts transplanted in early chronic phase of disease. The probability of relapse for pts transplanted in first chronic phase is 10% to 20% at 5 years, and is even higher (30% – 60%) for pts who received transplant in advanced phases of CML. The significance of minimal residual disease (MRD) in this clinical setting is uncertain. We enrolled 63 consecutive pts with CML who had received an alloHSCT between 1995 and 2007 and had BCR-ABL transcript quantity measured by RQ-PCR method on at least 2 occasions during follow-up in the period starting 6 months after alloHSCT. The reverse transcription was preformed using SuperScriptIII and random hexamers. Quantification of BCR-ABL was performed by RQ-PCR assay according to ‘Europe Against Cancer' protocol. BCR-ABL expression was normalized with endogenous control ABL gene and expressed as a ratio BCR-ABL/ABL. According to the amount of BCR-ABL transcript detected in blood or bone marrow after alloHSCT pts were allocated into 3 categories, including pts with no-detectable or stable very low-level of BCR-ABL transcripts (ratio BCR-ABL/ABL below 0.005%), pts with fluctuating-low level of BCR-ABL transcripts (0.005 – 0.01%) and pts with high-level of BCR-ABL transcripts (0.01 – 0.1%). We didn't find any relationships between different BCR-ABL levels after alloHSCT and clinical parameters at the time of CML diagnosis or transplantation, including Sokal, Hasford and Gratwohl scores. Median time from alloHSCT to molecular relapse (MR) was 38 months (range, 8.5 – 88.5 months). The 3-year progression rate into cytogenetic or hematological relapse of CML since MR was 70%. This progression occurred at a median time of 1.4 months (range, 0 – 3.2 months). We found strong correlation between the levels of BCR-ABL transcripts after alloHSCT and a risk of relapse. The incidence of MR was 0%, 26%, 71% for the low-level, fluctuating-low level and high-level of BCR-ABL transcript (p<.0001), respectively. Similarly the risk of cytogenetic and hematological relapse was 0%, 21%, 43% for these pts (p=.001), respectively. Five-year leukemia-free survival was 100%, 83.9% and 66.7% for the pts with low-level, fluctuating-low level and high-level BCR-ABL transcript (p=.003), respectively. There was no apparent relationship between the level of BCR-ABL transcript and overall survival. We conclude that pts with fluctuating-low and/or high levels of BCR-ABL transcripts are at higher risk of disease progression. Sequential RQ-PCR monitoring coupled with pre-emptive therapy can provide a valid strategy to reduce rates of relapse and development of a more individualized approach to management of pts with CML in major molecular response after alloHSCT. Disclosures: Warzocha: BMS: Consultancy, Honoraria; Celgene: Consultancy; Roche: Honoraria; Pfizer: Honoraria; Amgen: Honoraria.


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