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Homing and trafficking of hemopoietic progenitor cells.

Investigations of the homing of transplanted hemopoietic cells into preconditioned recipients have in most studies been referable to parameters that determine engraftment. The principles, however, that govern their early traffic into the host's blood and tissues have remained much less explored. Early studies and experiments from our own laboratory suggest that intravenously administered hemopoietic cells, including progenitors, are not selectively taken up by bone marrow, as they are distributed widely in several tissues (liver, lung, kidney, spleen, bone marrow). As the hemopoietic cells are later on found almost exclusively in the bone marrow (and spleen in the mouse), the data argue for either preferential retention in these tissues or just only preferential survival and proliferation. Our recent studies showing modulation of cells lodged to the bone marrow, before proliferation ensues (i.e. 3 h after infusion), would favor preferential retainment and/or survival of these cells within the bone marrow. Furthermore we established that the VLA4/VCAM-1 adhesion pathway plays a significant role in this process, thus defining VCAM-1 as the dominant bone marrow endothelial addressin in hemopoietic cell homing. Since homing likely represents a cascade of adhesive interactions between hemopoietic cells and bone marrow stroma and/or its extracellular matrix, other adhesion pathways are likely to be involved and remain to be defined. Finally, our data on mobilization of hemopoietic progenitors from normal individuals, induced by blocking the VLA4/VCAM-1 adhesion pathway, suggest that the molecular pathways involved in homing are also of importance in governing hemopoietic progenitor cell trafficking in and out of the bone marrow.

Animals↗

BCR/ABL-negative clonogenic hematopoietic cells do not accumulate in the plastic-adherent fraction of peripheral blood mononuclear cells from patients with chronic myeloid leukemia in stable chronic phase.

PBMNC from patients with CML and healthy control persons were separated into plastic-adherent and nonadherent cell fractions. A colony assay in semi-solid medium was used to estimate the number and lineage commitment of CFC in each of the fractions. The CML blood-derived colonies were isolated and analyzed by FISH for BCR/ABL sequences. Thus, we were able to test the hypothesis whether a selective enrichment is possible of normal progenitor cells in the blood of CML patients in stable chronic phase after HU and/or IFN. Although the number of leukocytes differed considerably between patients at diagnosis and in stable chronic phase, the proportion of adherent and nonadherent cells was about the same in all preparations tested. There were also only minor differences of adherence between MNC of CML and normal origin. Furthermore, BCR/ABL-positive and negative colonies were equally distributed among unseparated, adherent, and nonadherent PBMNC fractions. In conclusion, an accumulation of BCR/ABL-negative CFC was not found in any of the PBMNC fractions. CFC from PBMNC of the same lineage commitment were simultaneously present in plastic-adherent and nonadherent cell fractions, indicating that their surface charges might be different and, on the other hand, that different lineage commitment precursors can be present in either of the fractions irrespective of CML or blood origin.

Antineoplastic Agents, Alkylating↗

Therapeutic targets for antimetastatic therapy.

Metastases are responsible for most cancer deaths. Despite dramatic advances in cancer therapy, the presence of metastases implies a significantly shortened survival and reduced quality of remaining life. Aside from prevention of cancer altogether, or significant improvements in early detection for most cancers, effective novel therapeutic strategies targeting metastasis should provide the greatest clinical benefit. Metastasis research has shown that many of the initial steps in metastasis are completed with a high degree of efficiency and may have occurred by the time of clinical diagnosis. Therefore, targeting the later stages of metastasis may offer a more promising therapeutic approach for the development of antimetastatic therapies. Appropriate clinical strategies include targeting dormant solitary cells, active preangiogenic metastases, or vascularised metastases. Dormancy of solitary single cells, seen clinically and experimentally, may be an explanation for cancer recurrence. Eradication or inactivation of these dormant cells could provide large benefit for patients. However, little is known about what makes cancer cells dormant and, therefore, a greater knowledge of the mechanisms of dormancy is needed. This review discusses potential biological targets, as defined by the steps in the metastatic process, for antimetastatic therapies and provides examples of clinical strategies for preventing or treating successful metastasis.

Angiogenesis Inhibitors↗

Clinical importance of speed of response to therapy in childhood lymphoblastic leukaemia.

Speed of response to therapy predicts outcome in childhood lymphoblastic leukaemia. This observation has been made studying both blood and bone marrow in children on widely differing treatment regimens from the 1970s to the present day. It appears to be independent of other classical prognostic factors such as age and diagnostic white cell count. Currently some major collaborative groups are using the rate of initial disease clearance to risk-stratify subsequent therapy and this practice may increase. The best way to measure the rate of disease clearance remains to be defined. Watching disappearance of peripheral blood blasts is the least invasive method but possibly the least sensitive. Molecular quantitation of minimal residual disease (MRD) after achievement of conventional remission is much more sensitive but less specific. It cannot be applied to all patients and is costly and time consuming. The degree of marrow infiltration remaining after 7 or 14 days may fall between the two but is often difficult to estimate reliably and reproducibly due to technical limitations. The three techniques may reflect response to therapy in a way slightly different from each other and may not be direct correlates. The best compromise may be to use all three but to reserve MRD study only for those who clear their blood and bone marrow after 7 days.

Antineoplastic Combined Chemotherapy Protocols↗

Clinical significance of minimal residual disease in leukemia.

Considerable progress has been made in the treatment of acute and chronic leukemias. Remission rates are generally high and cure rates of up to 80% can be achieved in children with acute lymphoblastic leukemia (ALL). However, in many patients the disease will ultimately recur. In most if not all of these patients, relapse is thought to result from subclinical levels of residual leukemia, termed minimal residual disease (MRD). Therefore, the study of MRD holds a significant potential to understand the biology of relapse and remission and to design new therapies to improve the cure rate of patients. A major goal of these studies is to be able and identify patients at a defined risk of relapse which can lead to risk-adapted therapy approaches. Laboratory assays such as polymerase chain reaction (PCR) and multicolor flow cytometry are sensitive enough to detect one leukemic cell in up to 104-105 normal cells and have become ideal tools to monitor MRD. Especially PCR has been used extensively. Although a wealth of data has been generated, some questions remain as to the impact of monitoring MRD on clinical outcome and are the object of this review.

Acute Disease↗

Evaluation of trisomy 12 by fluorescence in situ hybridization in peripheral blood, bone marrow and lymph nodes of patients with B-cell chronic lymphocytic leukemia.

BACKGROUND AND OBJECTIVE: Trisomy 12 is the most common numerical chromosomal aberration in patients with B-cell chronic lymphocytic leukemia (B-CLL). Fluorescence in situ hybridization (FISH) has improved the detection of this cytogenetic abnormality and has made detection possible in all phases of the cell cycle. The presence of the trisomy 12 positive (+12) cell population has generally been investigated in leukemic cells obtained from the peripheral blood of CLL patients. To ascertain whether trisomy 12 is expressed homogeneously in cells of different hemopoietic tissues, we applied FISH to lymph node, peripheral blood and bone marrow samples obtained simultaneously from 23 untreated B-CLL patients. DESIGN AND METHODS: Twenty-three newly diagnosed patients with B-CLL, 15 in stage B and 8 in stage C, were included in the present study. Peripheral blood smears, bone marrow aspirate smears and lymph node touch imprints were collected from each patient at diagnosis. Cytologic preparations were examined by light microscopy in order to assess the lymphocyte morphology. Immunophenotyping was performed by cytofluorimetric analysis of the peripheral blood, bone marrow and lymph node mononuclear cell suspensions. The diagnosis was supported in all cases by histologic findings in bone marrow biopsy and lymph node biopsy specimens. Fluorescence in situ hybridization was performed on smears of blood and aspirated bone-marrow and lymph node touch imprints obtained by fresh tissue apposition. RESULTS: In 6 of the 23 cases (26%) trisomy 12 was clearly present in all tissues examined. A comparative analysis of the three different hemopoietic tissues was performed. A higher percentage of leukemic CD5+CD23+ cells was detected in lymph nodes than in peripheral blood and bone marrow. A significantly higher proportion of trisomic cells was observed in lymph nodes samples than in peripheral blood or bone marrow smears of trisomy 12 positive CLL patients. INTERPRETATION AND CONCLUSIONS: Several previous reports show that only a proportion of malignant B-CLL cells carry trisomy 12 when analyzed by interphase FISH. The higher proportion of +12 cells in lymph nodes than in peripheral blood or bone marrow of CLL patients with trisomy 12 could reflect different cell distributions in different tissues, or lymph node specific tropism, or proliferative advantage in selected tissue. At present, the role of trisomy 12 in the pathogenesis of lymphoproliferative disorders is unclear.

Aged↗

Estrogen receptor methylation is associated with improved survival in adult acute myeloid leukemia.

Estrogen receptor methylation (ERM) is a frequent molecular alteration in adult acute myeloid leukemia (AML). In this study, we sought to determine the clinical characteristics and prognostic significance of ERM in AML. ERM was determined for 268 patients who had leukemic blasts available for molecular analysis. ERM was measured by Southern blot analysis, and results were obtained for 261 patients (ages 17-69). ERM ranged from 0-99.1%, with a median of 25%. One hundred sixty patients (61%) had ERM values over 15% and were considered ERM+. In a subset of patients analyzed, ERM+ samples had markedly lower ER gene expression compared with ERM- samples. In multiple regression analyses of patient and disease characteristics at diagnosis, two factors had significant independent association with ERM: ERM decreased with increasing age (P = 0.0001) and was significantly lower in patients with French-American-British classification M4 or M5 (P = 0.0019). In regression analyses of outcome measures, ERM had no significant impact on complete remission rate after initial induction therapy. However, ERM+ patients had significantly better overall survival [OS; 18% at 6 years; 95% confidence interval (CI), 12-24% versus 9%; CI, 3-14% for ERM- patients; P = 0.022]. In multiple regression analyses, OS increased with increasing ERM (P = 0.0044). Similar results were seen for relapse-free survival (23% at 6 years; CI, 15-32% for ERM+ versus 10%; CI, 2-19% for ERM-), although the effect of ERM was not statistically significant (P = 0.15 in multiple regression analysis). Our results indicate that ERM at diagnosis may be a favorable prognostic factor for OS in adult AML.

Acute Disease↗

Myeloma progenitors in the blood of patients with aggressive or minimal disease: engraftment and self-renewal of primary human myeloma in the bone marrow of NOD SCID mice.

The myelomagenic capacity of clonotypic myeloma cells in G-CSF mobilized blood was tested by xenotransplant. Intracardiac (IC) injection of NOD SCID mice with peripheral cells from 5 patients who had aggressive myeloma led to lytic bone lesions, human Ig in the serum, human plasma cells, and a high frequency of clonotypic cells in the murine bone marrow (BM). Human B and plasma cells were detected in BM, spleen, and blood. Injection of ex vivo multiple myeloma cells directly into the murine sternal BM (intraosseus injection [IO]) leads to lytic bone lesions, BM plasma cells, and a high frequency of clonotypic cells in the femoral BM. This shows that myeloma has spread from the primary injection site to distant BM locations. By using a cellular limiting dilution PCR assay to quantify clonotypic B lineage cells, we confirmed that peripheral myeloma cells homed to the murine BM after IC and IO injection. The myeloma progenitor undergoes self-renewal in murine BM, as demonstrated by the transfer of human myeloma to a secondary recipient mouse. For 6 of 7 patients, G-CSF mobilized cells from patients who have minimal disease, taken at the time of mobilization or after cryopreservation, included myeloma progenitors as identified by engraftment of clonotypic cells and/or lytic bone disease in mice. This indicates that myeloma progenitors are mobilized into the blood by cyclophosphamide/G-CSF. Their ability to generate myeloma in a xenotransplant model implies that such progenitors are also myelomagenic when reinfused into patients, and suggests the need for an effective strategy to purge them before transplant.

Animals↗

Analysis of melanoma cells in peripheral blood by reverse transcription-polymerase chain reaction for tyrosinase and MART-1 after mononuclear cell collection with cell preparation tubes: a comparison with the whole blood guanidinium isothiocyanate RNA isolation method.

Melanoma cell detection in peripheral blood by tyrosinase reverse transcription-polymerase chain reaction (RT-PCR) is usually performed on RNA isolated from whole blood using a guanidinium isothiocyanate (GITC)/phenol extraction method or from Ficoll Hypaque isolated mononuclear cells. The first method contains environmentally harmful reagents, and the second is laborious in the preanalytical steps. Cell preparation tubes (CPTs) are ready-to-use Ficoll Hypaque-based tubes that avoid the time-consuming and critical loading on Ficoll Hypaque. We examined whether CPTs can be used to determine melanoma cell dissemination in peripheral blood. We first investigated whether melanoma cells were retained in the mononuclear cell layer. All six morphologically different melanoma cell lines studied in the spiking experiments were retained in the upper layer. In further experiments, we were able to detect low dilutions of added SK-MEL-28 cells more consistently after nested RT-PCR for tyrosinase or MART-1 in the RNA isolated from mononuclear cells from CPTs than from RNA isolated with the GITC method. In addition, RNA was extracted from paired blood samples from 24 analysable stage III and stage IV melanoma patients and analysed for the presence of tyrosinase and MART-1 RNA using both the CPT/RNeasy and the whole blood/GITC method. The quality of the CPT/RNeasy RNA was better than the RNA isolated from whole blood with GITC/phenol. However, the RT-PCR results were less unequivocal: MART-1 mRNA was more often detected with CPTIRNeasy compared with whole blood/GITC (six versus three), whereas tyrosinase mRNA was found less often in CPT/RNeasy RNA (two versus eight). Taken together these results suggest that the CPT isolation method is suitable for the isolation of mononuclear cells, including melanoma cells.

Antigens, Neoplasm↗

Clonotypic myeloma cells able to xenograft myeloma to nonobese diabetic severe combined immunodeficient mice copurify with CD34 (+) hematopoietic progenitors.

The identity of the multiple myeloma (MM) precursor(s) is unknown. Our objective was to determine the myelomagenic capabilities of CD34-enriched autografts. Hematopoietic progenitor fractions from fresh or cryopreserved granulocyte-colony-stimulating factor mobilized blood from myeloma patients were obtained by sorting or enrichment, followed by RT-PCR analysis of clonotypic transcripts and/or their ability to transfer myeloma to immunodeficient mice. CD34(+) enrichment using immunomagnetic methods comparable with those used clinically results in copurification of MM cells able to xenograft nonobese diabetic severe combined immunodeficient mice. Highly purified CD34(+) progenitors from granulocyte-colony-stimulating factor mobilized blood of myeloma patients include, on average, 31% clonotypic MM cells. CD34(+) progenitors also include 31% DNA aneuploid cells. For six of six MM patients, enriched progenitors were myelomagenic as measured by engraftment of clonotypic cells and/or the development of lytic bone lesions. Intrasternal injection of enriched progenitor fractions led to clonotypic cells in the femoral bone marrow and bone lesions at distant skeletal locations, confirming dissemination of myelomagenic cells. MM precursors copurify with normal hematopoietic progenitors, emphasizing the need for tumor-free grafts. Autologous MM engraftment is likely to be considerably more efficient than in a xenogeneic host, strongly suggesting that MM autografts contribute to posttransplant relapse. The xenografting myelomagenic component(s) is unlikely to be plasma cells, given the lack of morphologically identified plasma cells among enriched progenitors. Xenografting MM precursors appear to be CD34(+)CD45(low), similar to normal progenitors. Precursor function within the MM clone seems to be complex and may involve multiple components of the MM hierarchy.

Animals↗

Characterization of low- and high-metastatic clones isolated from a Lewis lung carcinoma.

Cloned cell lines with low and high metastatic potentials were established from a Lewis lung carcinoma. Those with a high metastatic potential, LM12 -3-II cells, grew slower than those with a low potential, P-29 cells, both in vivo and in vitro. No significant difference between these cell lines was found in their susceptibility to natural killer cell-mediated lysis in vitro. Both LM12 -3-II and P-29 cells showed poor organization of microfilament bundles containing actin. LM-12-3-II cells showed lower cloning efficiency in semisolid 0.3% and 0.6% agar medium, lower lysosomal enzyme activities and lower homotypic aggregation than P-29 cells. LM12 -3-II cells adhered to monolayers of endothelial cells more slowly than P-29 cells, although they adhered to a subendothelial matrix a little more rapidly than P-29 cells. On the other hand, LM12 -3-II cells adhered to the surface of plastic culture dishes more firmly than P-29 cells. The neuraminidase-accessible sialic acid of LM12 -3-II cells was less than that of P-29 cells. Thus, the firmness of adhesion was positively correlated with the metastatic potential in these cells.

Actins↗

Myeloma cell contamination of peripheral blood stem cell grafts in patients with multiple myeloma treated by high-dose therapy.

In order to assess the contamination with malignant cells of peripheral blood stem cell (PBSC) transplants used to support high-dose therapy in multiple myeloma (MM), we used the immunoglobulin heavy chain gene radioactive fingerprinting polymerase chain reaction (PCR) method to detect clonal cells in PBSC from 10 patients. The sensitivity of the technique allowed the detection of one clonal cell among 10(4) normal blood mononuclear cells. A clonal band was detected in 4 of 11 leukaphereses samples. The level of contamination was low because a clonal band could never be identified on ethidium bromide-stained agarose gels whose sensitivity is between 1 and 5%. The use of granulocyte-colony stimulatory factor (G-CSF) in combination with chemotherapy in three cases did not seem to increase the contamination of PBSC grafts; in one patient, G-CSF was used during a second course of leukapheresis which was free of detectable clonal cells whereas the first one performed after chemotherapy alone contained clonal cells. Thus, PBSC grafts may rarely be completely devoid of clonal potentially malignant cells but the level of contamination is much lower than in BM grafts. Whether graft contamination is an important adverse prognostic factor for patients with MM undergoing intensive treatment and autografting is still unsettled.

Antineoplastic Agents↗

Donor leukocyte transfusions and discontinuation of immunosuppressants to achieve an initial remission after allogeneic bone marrow transplantation in a patient with primary refractory acute leukemia.

We present a female patient who received an allogeneic bone marrow transplantation for primary refractory Philadelphia-positive acute biphenotypic leukemia. Since leukemic blasts were persistently present in peripheral blood and bone marrow, in spite of the evidence for engraftment of male donor hematopoiesis, we performed donor leukocyte transfusions and discontinued immunosuppression. An initial complete remission was obtained 15 weeks after allogeneic bone marrow transplantation, and lasted for 24 weeks. We concluded that the prominent mechanism for the eradication of the refractory leukemic clone in the patient was the graft-versus-leukemia effect.

Adult↗

Fate of contaminating t(14; 18)+ lymphoma cells during ex vivo expansion of CD34-selected hematopoietic progenitor cells.

The use of ex vivo expanded CD34-selected hematopoietic progenitor cells (HPCs) for autologous stem cell support or gene therapy is a major area of research and is likely to increase in the future. At present, little is known about the fate of contaminating malignant cells during ex vivo expansion of CD34-selected HPCs. We established a competitive polymerase chain reaction (PCR) titration assay to determine the number of residual lymphoma cells before and after selection and ex vivo expansion of CD34-selected HPCs in patients with t(14; 18) translocation carrying non-Hodgkin's lymphoma. Seven bone marrow (BM) and 2 mobilized peripheral blood progenitor cell samples from 8 patients without histologic BM involvement at the time of the harvest were analyzed by competitive PCR titration assay and determined to contain between < or = 10 and 4,000 lymphoma cells/ 10(6) mononuclear cells (MNCs). Immunoadsorption enriched CD34+ cells from a mean of 5% (range, 1% to 9%) to a mean of 88% (range, 76% to 94%) of MNCs and resulted in a 1 to 4 log depletion of contaminating tumor cells. Two HPC samples became PCR negative after CD34 selection, whereas 7 samples still contained < or = 10 to 200 residual lymphoma cells/10(5) MNCs. CD34-selected cells were consecutively expanded in suspension culture in the presence of stem cell factor, interleukin-1 beta (IL-1 beta), IL-3, and IL-6. The mean increase of cells was 13-fold (range, 4- to 22-fold) at day 7 and 65-fold (range, 43- to 110-fold) at day 14 of culture. Expansion resulted predominantly in myelomonocytic differentiation, whereas B-cell antigen-expressing cells became undetectable. Six of the seven PCR-positive CD34-selected samples became PCR-negative for the t(14; 18) translocation at day 7 and/or 14 of expansion. One PCR-positive and one PCR-negative CD34-selected sample were PCR-positive after ex vivo expansion, but the number of residual lymphoma cells remained at the limit of detection. We conclude that CD34-selection does not eliminate contaminating lymphoma cells in the majority of t(14; 18)+ HPC harvests. However, during ex vivo expansion of CD34-selected HPCs, residual t(14; 18)+ lymphoma cells do not proliferate and become undetectable by PCR in the majority of cases.

Antigens, CD34↗