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Clonal cytogenetic evolution in a squamous cell carcinoma of the skin from a xeroderma pigmentosum patient.

Cytogenetic changes in epithelial neoplasms are often complex, making it difficult to determine which are the primary abnormalities and which are secondary. In this report, we describe clonal evolution in a cytogenetically simple, but clinically aggressive squamous cell cancer of the skin from a patient with xeroderma pigmentosum. Chromosome preparations were analyzed from a direct harvest, three independent primary harvests, and passaged cell lines. Three closely related tumor subclones were identified in the primary cultures, and all three proliferated in vitro. Monosomy 4 and a chromosome 9 rearrangement were present in all three subclones and monosomy 21 was present in two subclones. An i(9p) and an i(9q) were derived from the same chromosome 9, and there was concurrent loss of the homologous chromosome 9. In addition, each subclone was characterized by a further specific evolutionary change: t(5;7) (q11.2;p22) in subclone 1, der (11)t(10;11) (q21;p14) in subclone 2, and der (14)t(13;14) (q14;q32) in subclone 3. All three subclones were represented by hypodiploid and hypotetraploid metaphases. Loss of chromosomes from hypotetraploid cells and an 11q+ were the only other changes found in this tumor. The early genetic events in the evolution of this squamous cell cancer, monosomy 4, i(9p), i(9q), and monosomy 21, represent loss of chromosome regions that are commonly lost in other squamous cell carcinomas of the head and neck region. Taken together, these observations indicate that genes on these chromosomal regions are probably important and possibly sufficient for the development of squamous cell carcinoma.

Adult↗

Clonal karyotypic evolution in a pediatric neurofibrosarcoma.

A retroperitoneal neurofibrosarcoma infiltrating the spine of a 2-year-old boy was investigated cytogenetically three times over a 5-month period. The first sample, from a diagnostic fine-needle aspiration biopsy, had a supernumerary i(1)(q10) as the sole clonal aberration; two cells showed monosomy 18 in addition to the isochromosome. The second sample, obtained at tumor resection 3 weeks later, had the karyotype 47,XY, +i(1)(q10), -18, +21/45,XY, -18. After 5 months, a large local recurrence was resected. The chromosome analysis showed further clonal evolution: 45,XY, +1,der (1;11)dic(1;11)(q44;q13)i(1)(q10), inv(6)(p21q12), -17. The findings indicate that formation of i(1)(q10) and loss of chromosome 18 may be early genetic events in neurofibrosarcoma development.

Child, Preschool↗

Clonal and morphological variation in a posttransplant lymphoproliferative disorder: evolution from clonal T-cell to clonal B-cell predominance.

The majority of posttransplant lymphoproliferative disorders (PTLD) are Epstein-Barr virus (EBV)-associated and of B-cell origin. A much smaller proportion of PTLD are of T-cell origin. We report the clinical, morphological, immunophenotypic, and genotypic results of a unique PTLD, initially diagnosed as immune mediated thrombocytopenia (ITP), which at presentation was predominantly an anaplastic appearing EBV-associated T-cell PTLD and, after reduction in immunosuppression and the administration of antiviral agents, predominantly an EBV-associated plasma cell rich B-cell PTLD. Subsequent chemotherapy resulted in a complete remission. This case has both practical and biological implications. It highlights how PTLD may be misdiagnosed as other entities, how biclonal cases can have different morphological appearances and include both B- and T-cell clones, how PTLD can evolve over time possibly related to immune reconstitution, and why PTLD should be rebiopsied when the disease does not respond to decreased immunosuppression or recurs.

B-Lymphocytes↗

Chronic lymphocytic leukemia associated with myelodysplastic syndrome and/or chronic myeloid leukemia: evidence for independent clonal chromosomal evolution.

We describe the cytogenetic findings of three cases with simultaneous or sequential development of a B-chronic lymphocytic leukemia (B-CLL) and either a myelodysplastic syndrome (MDS) in 2 cases or a chronic myeloid leukemia (CML) in one case. The coexistence of these two hematologic malignancies leads to questions about their cell of origin. Through analysis of the cytogenetic abnormalities, we studied the derivation of both malignancies. The cytogenetic analyses of these three patients were simultaneously studied from both peripheral blood and bone marrow. Furthermore unstimulated short-time (USSTC) and long-time (72-96 hours) stimulated cultures (LTSC) were systematically performed. In all cases, we have demonstrated the independent bi-clonal evolution. This is the first report ever described for patients with CLPD and MDS and/or MPD shown to arise from distinct chromosomal abnormalities.

Aged↗

Parallel karyotypic evolution and tumor progression in uterine leiomyoma.

Cytogenetic evidence of clonal evolution was detected in five uterine leiomyomas. In two tumors, two clones were found, the third tumor had four, the fourth had nine, and the fifth had 12 clones. The first tumor had trisomy 12 as the primary anomaly and a sideline that also contained a del(7)(q21q31). Both clones of the second tumor had three structural changes in common but differed by the presence in the more advanced clone of an inv(7)(q31q34). Two cytogenetically unrelated pairs of clones were seen in the third tumor. One clone had a stemline of 46 and an r(1); a sideline had developed through duplication of this clone. The other pair had a del(7)(q21q31) in common. The last two tumors both had t(12;14)(q14-15;q23-24) as the primary abnormality. They also had a high frequency of telomeric associations that involved certain chromosome arms only. One of the secondary changes in the fourth tumor was a del(7)(q21q31); the principal secondary change in the fifth case was a ring chromosome 1 of variable size in the different clones. The analysis of these five uterine leiomyomas and the collation of the results with previously obtained data lead us to conclude that del(7)(q21q31) is secondary to t(12;14) and + 12 in this tumor type, and that ring formation involving chromosome 1 material, often with duplication of segments, is a common phenomenon during clonal evolution. The fact that the tumors were classified as cellular and had an increased mitotic rate indicates a parallel development between histologically detectable tumor progression and cytogenetically recognizable clonal evolution in uterine leiomyomas.

Chromosome Aberrations↗

Development of myeloma and secondary myelodysplastic syndrome from a common clone.

We report the case of a 49-year-old woman who presented with a monoclonally IgG kappa expressing myeloma since October 1989. Four years later, after 24 cycles of Melphalan-containing chemotherapy, bone marrow (BM) cells of the patient cytologically revealed myelodysplastic changes for the first time. Cytogenetic examination of the BM obtained in January 1994 showed two clonally aberrant main lines. Each of them represented one of the hematological neoplastic diseases. The quantitatively major clone (MDS-clone) showed a deletion of the long arm of chromosome 7, typical for secondary myeloid disorders. The other clone (myeloma (MM) clone) was characterized by a reciprocal translocation between the short arm of chromosome 8, band q24, a region known to contain the c-myc gene, and the long arm of chromosome 2, band p12, where the Ig kappa gene is located. An unusual finding, however, was that an abnormality of the long arm of chromosome 16 could be detected in both obviously unrelated clones. In the further course of the disease, the MDS and MM clones could be detected, both of them showing cytogenetically a clonal evolution characterized by additional clonal abnormalities. Our data stress the significance of cytogenetics in detecting typical clonal abnormalities in different malignant hematological disorders and in detecting "clonal evolution" as an indicator of the progress of the disease. Moreover, our data suggest that MM and MDS may arise from a common stem cell, which may be characterized by a clonal cytogenetic abnormality.

Chromosome Aberrations↗

Unusual clonal chromosomal evolution in a breast carcinoma and its lymph node metastasis in a patient with Down syndrome.

A cytogenetic study was performed on a primary breast carcinoma and its axillary lymph node metastasis from a 53-year-old patient with trisomy 21, a carrier of a constitutional der(21;21). A translocation t(X;21) and the loss of the other X chromosome were shared by all karyotypes from tumor cells. The primary tumor was hyperdiploid with several gains of whole chromosomes. In contrast, most cells from the metastasis shared several rearrangements and losses leading to a hypodiploid karyotype. No normal chromosome 17 was present; instead, an i(17)(q10) and a fragment, detected by chromosome painting and presumably corresponding to a rearranged 17p, were found. Immunostaining for p53 was strongly positive in the metastasis but not in the primary tumor, suggesting a mutation of the TP53 gene in the metastasis. Finally, a small cell population of the metastasis was hyperdiploid like the clone in the primary tumor, suggesting that the node was colonized twice, at an early stage and a later stage of the clonal evolution of the tumor.

Axilla↗

Mutational Landscape and Clonal Dynamics in AML Undergoing PTCy Hematopoietic Cell Transplantation.

To improve risk stratification, we performed targeted NGS at diagnosis in 191 patients with AML undergoing myeloablative allogeneic HCT with PTCy-based prophylaxis. We also investigated clonal evolution using paired diagnostic and relapse samples from 39 individuals. A total of 610 mutations were detected in 184 patients (96%), most commonly in FLT3 (26%), DNMT3A (25%), RUNX1 (24%), and NPM1 (19%). Sixteen unique fusion genes were identified in 35 patients, with KMT2A (43%) and core binding factor rearrangements (23%) being the most frequent. TP53 and WT1 mutations were strongly associated with adverse outcomes, whereas NPM1 retained favorable significance. RUNX1 co-mutations with SF3B1 or NRAS were associated with inferior survival. In an exploratory allelic analysis, multi-hit TP53 alterations, but not single-hit mutations, were associated with distinctly poorer OS, EFS, and relapse risk. Relapse involved mutational shifts in ∼70% of cases, with significant enrichment of WT1 and more modest increases in TP53, KRAS, ASXL1, NF1, and MECOM, while DNMT3A, TET2, and ASXL1 persisted stably. Neither acute nor chronic graft-versus-host disease was associated with molecular remodeling at relapse. Incorporating TP53 and WT1 into risk models, recognizing context-dependent effects of DNMT3A and RUNX1, and applying longitudinal genomic monitoring may help guide personalized strategies to prevent relapse. Extended abstract BACKGROUND Relapse remains the leading cause of treatment failure after allogeneic hematopoietic cell transplantation (HCT) for acute myeloid leukemia (AML), yet the genetic mechanisms underlying post-transplant relapse remain poorly understood, particularly in the era of post-transplant cyclophosphamide (PTCy). Characterizing the mutational landscape at diagnosis and the clonal evolution leading to relapse may improve post-transplant risk stratification and identify opportunities for personalized surveillance and intervention. OBJECTIVES To characterize the diagnostic mutational landscape, evaluate its prognostic significance, and investigate clonal evolution from diagnosis to relapse in AML patients undergoing myeloablative HCT with PTCy-based graft-versus-host disease prophylaxis. STUDY DESIGN We performed targeted next-generation sequencing (NGS) at diagnosis in 191 consecutive AML patients undergoing myeloablative allogeneic HCT with PTCy-based prophylaxis. Paired diagnostic and relapse samples were available for 39 patients to evaluate clonal evolution. RESULTS A total of 610 mutations were detected in 184 patients (96%), most commonly in FLT3 (26%), DNMT3A (25%), RUNX1 (24%), and NPM1 (19%). Sixteen unique fusion genes were identified in 35 patients, with KMT2A (43%) and core binding factor rearrangements (23%) being the most frequent. TP53 and WT1 mutations were strongly associated with adverse outcomes, whereas NPM1 retained favorable significance. RUNX1 co-mutations with SF3B1 or NRAS were associated with inferior survival. In an exploratory allelic analysis, multi-hit TP53 alterations, but not single-hit mutations, were associated with distinctly poorer OS, EFS, and relapse risk. Relapse involved mutational shifts in ∼70% of cases, with significant enrichment of WT1 and more modest increases in TP53, KRAS, ASXL1, NF1, and MECOM, while DNMT3A, TET2, and ASXL1 persisted stably. Neither acute nor chronic graft-versus-host disease was associated with molecular remodeling at relapse. CONCLUSIONS This study provides a comprehensive characterization of the mutational landscape and clonal evolution of AML undergoing contemporary PTCy-based allogeneic HCT. TP53 and WT1 identify patients at particularly high risk of post-transplant relapse, whereas NPM1 retains favorable prognostic significance. The frequent acquisition of new genetic lesions at relapse underscores the dynamic nature of post-transplant clonal evolution and supports longitudinal molecular monitoring together with genomically informed post-transplant surveillance and relapse-prevention strategies.

Clonal Dynamics↗

Rapid production of diversity during the progression of a mixed lineage leukaemia.

A leukaemia presenting with two morphologically different blast populations failed to respond to either antimyeloid or antilymphoid treatment and showed a rapid clinical progression. Immunophenotyping provided good evidence for two blast populations, one lymphoid and the other lymphoid with granulocyte monocytic markers. Two different gene rearrangements within JH were also observed with band densities corresponding to the sizes of the two blast cell populations. A t(19; 22) translocation was observed in almost all cells at presentation one of which evolved into a subclone, becoming dominant in the terminal phase of the disease. We show here both the clonal evolution and clonal competition that occurred in this leukaemia and suggest that the potential of the tumour stem line for rapidly producing diversity was the reason for the resistance to treatment.

Bone Marrow↗

High rate of chromosomal abnormalities in HTLV-I-infected T-cell colonies derived from prodromal phase of adult T-cell leukemia: a study of IL-2-stimulated colony formation in methylcellulose.

To detect chromosomal abnormalities in prodromal phase of adult T-cell leukemia (ATL), we established a clonal culture method for human T-lymphotropic virus type I (HTLV-I) infected T-cells in methylcellulose containing recombinant human interleukin 2 (rhIL-2). We tried to analyze chromosomes of 187 colonies (4, 23, 69, 74, and 17, from HTLV-I-uninfected normal T-cells, HTLV-I-Infected normal T-cells, HTLV-I carriers, smoldering ATL, and chronic ATL, respectively), using chromosomal banding methods. In the prodromal group, 53% of colonies (84/160) (36/69, 37/74, 11/17 in HTLV-I carriers, smoldering ATLs, and chronic ATL, respectively) had chromosomal abnormal clones. In HTLV-I carriers, multiple clones with simple chromosomal abnormalities were observed. In more progressed chronic ATL, more complex chromosomal abnormalities were detected, and specific colonies were selected. Thus, colonies in the prodromal phase of ATL are characterized by cytogenetical clonal evolution and clonal changes.

Adult↗

Acquisition of CD13 and CD33 expression at relapse on acute myeloid leukemia cells with an unusual phenotype: MPO+CD13-CD33-.

A case of acute myeloid leukemia (AML) with an unusual phenotype which was negative for a panel of myeloid antigens determined by flow cytometry, but was strongly positive for myeloperoxidase has recently been reported. We herein describe a case of AML with this unusual phenotype at diagnosis; relapse occurred with the acquisition of CD13 and CD33 expressions. Morphological features of the blasts at relapse seemed to be more compatible with myeloblasts than those at diagnosis. These phenotypic and morphological changes are suggestive of asynchronous differentiation, clonal evolution or clonal change of leukemic cells.

Antigens, CD↗

Chronic myelogenous leukemia in blast crisis. Analysis of 242 patients.

Two hundred forty-two patients with Philadelphia chromosome-positive chronic myelogenous leukemia in blast crisis were reviewed to identify significant biologic and prognostic associations. Twenty percent of patients had lymphoid blast crisis. Clonal evolution was present in 60 percent of patients at blast crisis and involved most frequently the development of a double Philadelphia chromosome, trisomy 8, or isochromosome 17. The overall median survival from blast crisis was 18 weeks. Patient characteristics demonstrated to have significant association with short survival were: anemia; thrombocytopenia; myeloid or undifferentiated blast cell morphology; clonal evolution involving the presence of a double Philadelphia chromosome, trisomy 8, or isochromosome 17; and low marrow blast percentage. Of 195 patients who received therapy for blast crisis, complete remission was achieved in 44 (23 percent) patients, and 24 (13 percent) patients had a partial remission or hematologic improvement. Lower complete remission rates were associated with old age, thrombocytopenia, myeloid or undifferentiated blast cell morphology, clonal evolution--especially isochromosome 17 and trisomy 8--and long interval from diagnosis to onset of blast crisis. A multivariate analysis identified two characteristics to have independent prognostic importance for both survival and remission: platelet counts and blast cell morphology. In addition, clonal evolution had additive prognostic value for survival (double Philadelphia chromosome) and for response (isochromosome 17). The beneficial association of therapy with survival was demonstrated by the significantly longer median survival of patients treated since 1981 compared with those treated earlier, even after accounting for the pretreatment prognostic factors, and by the significant improvement in survival of patients achieving remission using the "landmark" analysis technique.

Blast Crisis↗

The effect of imatinib mesylate on patients with Philadelphia chromosome-positive chronic myeloid leukemia with secondary chromosomal aberrations.

PURPOSE AND EXPERIMENTAL DESIGN: The acquisition of secondary chromosomal aberrations in chronic myeloid leukemia (CML) patients with Philadelphia chromosome-positive (Ph+) karyotype signifies clonal evolution associated with disease progression to accelerated/blastic phase. Therefore, these aberrations are of clinical and biological importance. We identified 58 cases with secondary abnormalities in addition to t(9;22)(q34;q11.2) or its variants in a review of 137 CML patients treated with imatinib mesylate (STI571). Clinically 13 patients were in chronic phase, 24 in accelerated phase, and 21 in blastic phase. RESULTS: More than 50% of cases showed the major routes of CML clonal evolution [+8, i(17q), +Ph, and/or +19]. The remainder exhibited minor routes of secondary abnormalities with -17/17p-, 11p-/rearr(11p), and -7/rearr(7) as the most frequent abnormalities. Of particular interest, one case developed an inv(16)(p13q22) as a secondary anomaly during blastic transformation. The bone marrow was consistent with myelomonocytic morphology with eosinophilia. Cytogenetic responses to imatinib mesylate occurred in 15 of 58 (26%) patients; 12 achieved complete cytogenetic remission, 2 had a major response, and 1 had a minor response, with most responses noted within 3-6 months. Seven patients remain in remission >17-30 months, 2 patients relapsed between 12 and 19 months on therapy, and 1 patient was treated by bone marrow transplantation. CONCLUSIONS: Although some Ph+ CML patients with clonal evolution can have a complete cytogenetic response to imatinib mesylate, responses tend to be brief, and such patients may benefit from subsequent stem cell transplantation. Therefore, CML patients with clonal evolution may require therapy additional to imatinib mesylate for maximal eradication of the Ph+ leukemic cells.

Adult↗

Clues from natural history and results of treatment supporting the monoclonal origin of germ cell tumours.

Recent observations have suggested that a major factor in the development of germ cell tumours may be excessive mitogenic stimulus developed because of failure of feedback suppression of the normal pituitary drive due to atrophic damage to germinal epithelium. With this observation and the increasing recognition that there is a common in situ stage which precedes both seminoma and malignant teratoma/non-seminoma there has been a polarisation of views regarding the relationship between seminoma and malignant teratoma/non-seminoma, with some authors viewing these two entities as separate unrelated transformational events while others hypothesise that seminoma is an interim stage of clonal evolution associated with increased malignant potential towards malignant teratoma/non-seminoma. This chapter reviews the clinical evidence supporting the concept of clonal evolution which arises from the observation that the modal DNA content of seminoma (3.6N) is intermediate between that of in situ carcinoma (4.2N) and malignant teratoma/non-seminoma (2.8N). These observations, taken with the observation that the median age of patients with mixed tumours containing both seminoma and non-seminoma elements (30 years) is intermediate between the slower growing seminoma (35 years) and faster growing malignant teratoma/non-seminoma (25 years), as well as studies of spontaneous regression, tumours in AIDS patients chemo/radio sensitivity and post mortem histology, provide the most convincing evidence supporting clonal evolution. However, these observations cannot explain the fact that some patients have more than one focus of tumour (which can be of different histological type) in a single testis with normal tubules in between, even if they have in situ carcinoma. An extreme manifestation is seen in patients who are treated and cured from metastases arising from one testicle who then die from metastases from a completely different histological type arising from a second transformation event of a germ cell in the contralateral testis. The conclusion from these observations is that it is indeed possible for polyclonal development of tumours to occur, as is seen for bladder and bowel tumours, but they do not detract from the concept that seminoma is an intermediate event in the evolution from in situ carcinoma to malignant teratoma/non-seminoma.

Adult↗

Characterization of clonal immunoglobulin heavy chain and I cell receptor gamma gene rearrangements during progression of childhood acute lymphoblastic leukemia.

Instability of antigen receptor gene rearrangements during progression of acute lymphoblastic leukemia (ALL) has important implications for polymerase chain reaction (PCR)-based techniques using these genes for the detection of minimal residual disease (MRD). Antigen receptor gene instability may lead to false negative results in bone marrow samples taken during remission. Utilizing the PCR and consensus primers for rearranged immunoglobulin heavy chain (IgH) and T cell receptor gamma (TCR gamma) gene sequences, we analyzed the bone marrow samples at diagnosis and first relapse for 37 children with ALL. The incidence of clonal evolution at the IgH locus was 9/33 (27%) and at the TCR gamma locus 1/15 (7%). In four of the nine patients with clonal evolution at the IgH locus, the sequence at relapse retained the diversity and joining region (D-N-J) sequences from diagnosis. Patients with clonal evolution were characterized by a higher incidence of more than one IgH PCR band at diagnosis and by late relapse (> 18 months from diagnosis). These results suggest that, where possible, patients with more than one IgH PCR rearrangement at diagnosis should be monitored using another antigen receptor gene, such as TCR gamma, since evolution for this gene was found to be a rare event. By combining this approach with a strategy directed at the more stable D-N-J region of the IgH gene, MRD false negativity would have occurred in less than 10% of patients in the present study.

Adolescent↗

Detection of evolving immunoglobulin heavy-chain gene rearrangements in acute lymphoblastic leukemia: a PCR-based assay employing overlapping DJH primers.

The use of the polymerase chain reaction (PCR) to amplify clonal immunoglobulin heavy-chain (IgH) gene rearrangements appears to be a particularly promising technique for detecting minimal residual disease (MRD). However, a major obstacle to successful implementation of this technique involves the problem of clonal evolution, in which instability of the VHDJH region leads to the generation of further rearrangements of the IgH gene over time. Such clonal evolution results in a high likelihood of false negative results when detecting MRD using clone-specific primers based on the rearrangement present at diagnosis. Since in acute lymphoblastic leukemia (ALL), clonal evolution commonly involves alterations of the VHD joining but not the DJH joining, we have devised a novel PCR strategy to circumvent the problem of false negativity in these evolved leukemias. The strategy, which involves construction of overlapping clone-specific DJH primers for use with a consensus VH segment primer, can be used to amplify both evolved and nonevolved ALL populations with high sensitivity and specificity. The method does not require radioactivity and should prove valuable for improving the effectiveness of PCR-based detection of residual leukemia.

Base Sequence↗

Nonrandom chromosomal aberrations and clonal chromosomal evolution in acute leukemia associated with Down's syndrome.

Nine Down's syndrome (DS) children, four with acute leukemia, one with acute leukemia as well as rhabdomyosarcoma, and four with other hematologic disorders, were analyzed for constitutional and acquired chromosomal aberrations. Acquired clonal chromosomal aberrations were identified only in the acute leukemia cases, and four of the five acute leukemia demonstrated numerical and/or structural aberrations involving chromosomes #8, #19, and #21. Of the 11 aneuploid stem cell lines identified in the five acute leukemia cases, trisomy 21, trisomy 8, trisomy 19, and tetrasomy or pentasomy 21 was found in 11, seven, four, and two lines, respectively. The frequent appearance of multiple stem cell lines with common and/or overlapping chromosomal aberrations in acute leukemia cases demonstrates the existence of genomic instability and heterogeneity of the neoplastic cell population, which results from clonal chromosomal evolution. Furthermore, trisomy 19 was identified only with the concurrent presence of trisomy 8, suggesting that the nondisjunction of chromosome #19 probably occurred after that of #8. Trisomy 21 was observed in every aneuploid stem cell line and, in one case, trisomy 21 was maintained in the bone marrow leukemic cells but not in the orbital rhabdomyosarcoma cells, indicating that this constitutional chromosomal aberration is probably crucial for and predisposed to the development of acute leukemia in DS patients. The association of acquired clonal chromosomal aberrations, especially those involving chromosomes #8, #19, and #21, with DS acute leukemia strongly suggests the clinical implication of cytogenetic analysis in the diagnosis of acute leukemia development in DS patients.

Acute Disease↗

Sequential karyotypic evolutions and bone marrow aplasia preceding acute myelomonocytic transformation from myelodysplastic syndrome.

Serial haematopathological and cytogenetic studies disclosed three distinct clinical phase in a case of refractory anaemia (RA), a subtype of myelodysplastic syndrome (MDS; FAB group, 1982): first, chronic MDS phase (1 year 10 months) with karyotypic abnormality (45, XY, --7) (Clone I); second, hypo-aplastic phase concurrent with first clonal evolution (45, XY, --7, 12p--) (Clone II); third, acute myelomonocytic leukaemia phase (6 months) with second clonal evolution (45, XY, --7,t (1q --; Bq+), Bq --, 12p --) (Clone III). In the second phase the bone marrow became almost aplastic as Clone II expanded progressively, indicating simultaneous occurrence in Clone II stem cells of growth advantage for self-renewal function over Clone I and normal stem cells, and arrest of differentiation. These observations support the hypothesis that leukaemic change in MDS, at least in RA, occurs by stepwise clonal evolution(s), not by progressive arrest of differentiation in original MDS clone.

Anemia, Aplastic↗