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S Querol

Publications and source records attributed to S Querol.

29 records · Page 2Linked to original sources

Comparison of volumetric capillary cytometry with standard flow cytometry for routine enumeration of CD34+ cells.

BACKGROUND: This study assesses the feasibility of a new volumetric cytometry system for the enumeration of CD34+ cells in apheresis components, peripheral blood, and cord blood samples in routine laboratory work. This system is compared with the following flow cytometry protocols: Milan, ISHAGE, ISHAGE with 7-AAD, and flow-count fluorospheres. STUDY DESIGN AND METHODS: Correlation, linearity, and reproducibility studies were performed for the various methods. Clonogenic cultures were performed, as an external control, to assess the correlation between the number of CD34+ cells per microL and the number of colony-forming units per microL. RESULTS: The linear regression analysis demonstrated that the five methods were comparable (R2 ranged from 0.86 to 0.96 and slopes were close to 1). The CD34+ assay and the flow-count methods showed poor linearity for CD34+ cell counts below 10 cells per microL (R2 = 0.46 and 0.47). The reproducibility assay for a CD34+ count of 10 cells per microL showed a CV of 12 percent and 25 percent for the Milan and CD34+ assay methods, respectively. The mean CV among all five methods for the 46 evaluated samples was 20 percent. There was a strong correlation between the number of CD34+ cells per microL and colony-forming units per microL in cord blood and apheresis samples (r = 0.71-0.81). CONCLUSION: The CD34+ assay is useful in CD34 enumeration in cord blood, leukapheresis samples, and peripheral blood samples and provides comparable results to the Milan, ISHAGE, ISHAGE with 7-AAD, and flow-count methods. Nevertheless, peripheral blood samples with low CD34 absolute counts (below 10 cells/microL) should be analyzed by alternative flow cytometry protocols. Even though the same operator performed the study in a single laboratory, the high inter-method CV suggests that differences in sample preparation and gating strategy are factors that increase variability. Protocols with fewer intermediate steps or fully automated protocols such as the CD34+ assay are expected to reduced intra- and inter-laboratory variability.

Antigens, CD34↗

Effect of glycosylation of recombinant human granulocytic colony-stimulating factor on expansion cultures of umbilical cord blood CD34+ cells.

BACKGROUND AND OBJECTIVE: Granulocytic colony-stimulating factor (G-CSF) is a cytokine widely used for several purposes such as stem cell mobilization, treatment of neutropenia or in vitro cultures. Recombinant human G-CSF (rh-G-CSF) is available in two forms: a non-glycosylated (E. Coli-derived), and a glycosylated CHO-derived rhG-CSF. As previously shown, glycosylation gives a higher degree of homology between the recombinant and the wild human G-CSF molecule. This study analyses the role of glycosylation in expansion cultures comparing the biological effects of the two forms of G-CSF. DESIGN AND METHODS: CD34+ cells from nine cord blood samples were positively selected (median purity 84%) and cultured in the presence of 50 ng/mL of stem cell factor and 1, 10 or 100 ng/mL of glycosylated rh-G-CSF (GG) or a deglycosylated form (DG). After 5 days of a static, serum-dependent culture fed on day 0, nucleated cells (NC), CD34+ cells and colony-forming units were evaluated and compared using the paired Student's t-test. RESULTS: For all concentrations tested, GG was able to generate more NC and progenitors than DG was able to (p<0.05). This effect was mainly observed in CFU-GM colonies, and in CFU-Mix, and indeed no influence was detected in terms of BFU-E expansion. The presence of GG in culture causes the generation of more mature granulocytic cells, assessed by the expression of CD11b/CD15 on CD13+ population, than the presence of DG. In order to check the role of the molecule's stability in this difference, the effect of daily supplementation was tested. Continuous presence of cytokines using either form of G-CSF (daily feeding) significantly increased the rate of expansion, but again GG produced higher generation than its DG counterpart. INTERPRETATION AND CONCLUSIONS: Our results suggest that the stability of the G-CSF molecule has a predominant effect on the higher biological activity found. A glycosylated form of G-CSF is recommended for in vitro cultures using serum-dependent conditions.

Antigens, CD34↗

Short-term, serum-free, static culture of cord blood-derived CD34+ cells: effects of FLT3-L and MIP-1alpha on in vitro expansion of hematopoietic progenitor cells.

BACKGROUND AND OBJECTIVE: The use of ex vivo expanded cells has been suggested as a possible means to accelerate the speed of engraftment in cord blood (CB) transplantation. The aim of this study was to fix the optimal condition for the generation of committed progenitors without affecting the stem cell compartment. DESIGN AND METHODS: Analysis of the effects of FLT3-L and MIP-1alpha when combined with SCF, IL-3 and IL-6, in short-term (6 days), serum-free expansion cultures of CB-selected CD34+ cells. RESULTS: An important expansion was obtained that ranged between 8-15 times for CFU-GM, 21-51 times for the BFU-E/CFU-Mix population and 11 to 30 times for CD34+ cells assessed by flow cytometry. From the combinations tested, those in which FLT3-L was present had a significant increase in the expansion of committed progenitors, while the presence of MIP-1alpha had a detrimental effect on the generation of more differentiated cells. However, stem cell candidates assessed by week 5 CAFC assay could be maintained in culture when both MIP-1a and FLT3-L were present (up to 91% recovery). This culture system was also able to expand megakaryocytic precursors as determined by the co-expression of CD34 and CD61 antigens (45-70 times), in spite of the use of cytokines non-specific for the megakaryocytic lineage. INTERPRETATION AND CONCLUSIONS: The results obtained point to the combination of SCF, IL-3, IL-6, FLT3-L and MIP-1alpha as the best suited for a pre-clinical short-term serum-free static ex vivo expansion protocol of CB CD34+ cells, since it can generate large numbers of committed progenitor cells as well as maintaining week 5 CAFC.

Cell Culture Techniques↗

Expansion of cord blood progenitor cells.

Cord blood (CB) provides an alternative source of stem cells for transplantation, although in a considerable number of cases CB transplantation is followed by long periods of aplasia. Ex vivo expansion has the capacity to generate large amounts of progenitors, and it has been proposed that expanded cells might be beneficial in overcoming these long periods of aplasia. We describe the biological characteristics of cord blood compared to other sources of stem cells (BM and PB), and report the effects of FLT3-L and MIP-1alpha when added to a combination of SCF, IL-3 and IL-6 in pre-clinical short-term, serum-free expansion cultures of CB-derived CD34+ cells. After 6 days, this culture system was able to generate considerable expansion rates in the committed compartment (between 8.16- and 17.26-fold for CFU-GM, and 21.58- and 36.53-fold for the BFU-E/CFU-Mix), and the CD34+ population (between 11.25- and 25.42-fold). Moreover, this culture system was also able to maintain the week 5 CAFC population, particularly when both FLT3-L and MIP-1alpha were present (91% of the input level). Thus, we have described a pre-clinical protocol for ex vivo expansion of CB CD34+ cells in a short-term, static, serum-free system, where a high generation of committed progenitor cells is achieved together with CAFC maintenance.

Cell Culture Techniques↗

The placental blood program of the Barcelona Cord Blood Bank.

Cord blood has recently become an alternative to bone marrow transplantation, generating the need for cord blood banks where large numbers of frozen cord blood units can be stored. The Barcelona Cord Blood Bank (bcB) was created in October 1995. Initially, several methods for volume reduction were tested, including Ficoll, Percoll, Gelatin and HES sedimentation. Of these, HES sedimentation (88% +/- 11 CD34+ cells recovery) was the one chosen for routine banking. Up to November 1997, the bank has processed 754 units with a median of 1.05 x 10(9) nucleated cells and 2.5 x 10(6) CD34+ cells stored per unit. Nine of these units have been shipped for transplantation.

Adult↗

Umbilical cord blood transplantation from unrelated donors in an adult weighing 90 kilograms. Role of immunosuppression in engraftment.

A 40-year-old male weighing 90 kilograms was diagnosed with acute myeloblastic leukaemia M5a which was resistant to chemotherapy. Neither a related nor an unrelated HLA-compatible bone marrow donor could be found. A unit of cord blood was found with an HLA compatibility of four out of six loci, and was infused after conditioning with cyclophosphamide, total body irradiation and antilymphocyte globulin. The infused cord blood had 0.98 x 10(7) nucleated cells per kilogram. On day 35 after infusion the patient was considered to have graft failure. A second unit of cord blood was found, and after 3 days of antilymphocyte globulin, it was infused (day 41). The course was complicated by severe hypoxia and bilateral interstitial pulmonary infiltrates, and the patient was treated with high doses of methylprednisolone. On day 58 the leukocyte count increased to 3 x 10(9)/l, and there was total chimerism of the first cord blood unit infused. Two weeks later leukocyte counts decreased progressively and the patient died of a disseminated fungal infection. We discuss the importance of the number of nucleated cells per kilogram of body weight infused, and the role of intensive immunosuppression in engraftment of cord blood transplantations in adults.

Adult↗

CD34+ cell positive selection from mobilized peripheral blood by an indirect immunomagnetic method: effect of the type of mobilization and assessment of tumor depletion ability.

Mobilized peripheral blood has been shown to be a suitable source of hematopoietic progenitor cells for autologous transplantation in oncologic patients. However, tumor cell contamination can potentially occur, although to a lesser extent than in the bone marrow. CD34+ cell positive selection has been developed as a system for the ex vivo purging of remaining tumor cells when used in mobilized peripheral blood. This method has shown a lower purification potential than that obtained with bone marrow or cord blood. The reason for this is not clear, but different groups have tried to improve the purity and yield of the positive selection on mobilized peripheral blood by predepletion of nonlymphoid cell populations, since they can induce nonspecific binding. The present study was designed to test an indirect immunomagnetic CD34+ cell selection method to make it reproducible, feasible, and effective for purging mobilized peripheral blood. Twenty-nine samples from mobilized peripheral blood were tested. The median starting CD34+ percentage was 0.8 (0.3%-4.2%), and the median final purity was 87% (32.7%-99.7%), with a median yield of 44.8% (15%-83.5%). The highest purity was reproducibly achieved when the starting percentage of CD34+ cells was higher than 0.65% (median purity 93.7, range 81%-99.7%, CV 6%) on samples obtained from patients primed with chemotherapy alone or chemotherapy plus recombinant human granulocyte-colony stimulating factor. No relation was found between the content of contaminating nucleated cells and the final CD34+ cell purity. This method showed a depletion capacity, assessed by PCR on samples contaminated with K562 leukemic cells, of about 3 logs. These results indicate that this indirect immunomagnetic method can produce high purity CD34+ cell fractions from mobilized peripheral blood with a high efficiency of tumor depletion.

Antigens, CD34↗

Peripheral blood CD34+ cell immunomagnetic selection in breast cancer patients: effect on hematopoietic progenitor content and hematologic recovery after high-dose chemotherapy and autotransplantation.

BACKGROUND: Tumor cells have been detected in mobilized peripheral blood of breast cancer patients, and they may contribute to tumor recurrence after the transplantation of peripheral blood progenitor cells. One of the most widespread technologies for tumor purging of the graft is immunomagnetic hematopoietic progenitor cell selection. STUDY DESIGN AND METHODS: The study assessed the effectiveness of a magnetic cell-separation system in selecting functional subpopulations of hematopoietic progenitors from 14 blood-derived harvests of 11 patients with high-risk breast cancer after mobilization following cytotoxic chemotherapy supported by granulocyte--colony-stimulating factor, as well as the feasibility of transplanting these selected subpopulations. RESULTS: CD34(+)-enriched cell fractions had a median purity of 93.0 percent (72.7-98.5%). The procedure yielded 52.6 percent of the CD34+ cell input (39.4-116.8%). Median recoveries of colony-forming units (CFUs) (36.87%) and cobblestone area-forming cells (CAFCs) (152.5%) were, respectively, 0.70 and 2.87 times those of CD34+ cells (52.6%). Moreover, CAFC efficiency in the positive cell fraction was 2.57 times that in the starting cell fraction. Peripheral blood neutrophil counts of 0.5 x 10(9) per L and platelet counts of 20 x 10(9) per L were reached after median times of 9 and 11 days, respectively. The number of transfused CAFCs per kg, CD34+ cells per kg, and postthaw CFU-granulocyte-macrophage per kg was correlated, respectively, with the speed of engraftment of neutrophils, platelets, or both. Tumor cells detected in one patient's peripheral blood were not found after CD34+ cell selection. CONCLUSION: Transplantation of immunomagnetically purified peripheral blood CD34+ cells does not increase transplantation-related morbidity. It induces a selective enrichment of more immature hematopoietic progenitors, which makes it suitable for use in cell expansion and gene therapy protocols.

Adult↗