PubMed Health⌕ Search

Biomedical subjects

Y Galperin

Publications and source records attributed to Y Galperin.

10 recordsLinked to original sources

Retroviral gene transfer into cord blood stem/progenitor cells using purified vector stocks.

Cord blood (CB) progenitor/stem cells (P/SC) are ideal targets for early gene therapy in individuals prenatally diagnosed with genetic disorders. Most retroviral transduction protocols were developed using adult peripheral blood stem cells (PBSC) and bone marrow (BM). Less is known about retroviral transduction of CB P/SC. We examined how timing, multiplicity of infection (MOI), and polycations in the transduction media affect transduction efficiency. Rates of transduction were determined in recently isolated CD34+ enriched CB cells and in colonies derived after various times in liquid cultures (LC). CB mononuclear cells (MNC) were separated by ficoll-hypaque centrifugation and enriched for CD34+ cells. Purity was assessed by flow cytometry. Transduction were performed with clinical-grade retroviral stocks at MOIs of 1-20. Transduction was performed with fetal bovine serum (FBS) or autologous plasma, IL-3, GM-CSF, IL-6, and SCF. The retroviral vector contained LacZ and neomycin resistance (neo) reporter genes. Transduction was determined by X-gal stain and by PCR amplification of the reporter genes. No drug selection was used. Twenty-five experiments were done. CB volumes ranged from 35-150 ml. MNC and CD34+ cell counts ranges were: 0.14-840 x 10(6) and 0.1-4.2 x 10(6), respectively. Transduction efficiency in liquid cultures ranged from 4-63%. Higher rates were seen using MOI > or = 10, 2 microg/ml polybrene, and 10% autologous CB plasma. In colonies, transduction rates were 63 to 72% by PCR and 32% by X-gal staining. In LTC-IC derived colonies, transduction was 7% by PCR. Short incubations of CD34+ CB cells with purified retroviral stocks, polybrene, and autologous sera result in high transduction rates of committed progenitors and moderately low efficiencies of transduction of LTC-IC in the absence of drug selection.

Antigens, CD34↗

Effect of antiviral drugs and hematopoietic growth factors on in vitro erythropoiesis.

BACKGROUND: The purpose of these studies was to improve our understanding of nucleoside analog, antiviral, drug-induced anemia in HIV infection. METHODS: Peripheral blood erythroid progenitor cells (BFU-E) from HIV-positive (HIV+) patients and normal donors were compared in methylcellulose cultures with erythropoietin, with and without antiviral drugs, and with and without the hematopoietic growth factors, stem cell factor (SCF), hemin, and interleukin-3 (IL-3). RESULTS: Normal numbers of BFU-E-derived colonies were observed in cultures from HIV+ patients (mean +/- 1 SD BFU-E/10(5) cells plated: normal = 14.1 +/- 7.9, HIV+ = 17.2 +/- 14.2, p = 0.39). The antiviral drugs zidovudine (AZT), dideoxyinosine (ddI), and didehydrodideoxythymidine (d4T) all inhibited erythroid colonies in HIV+ and normal cultures. AZT was the most erythropoietically inhibitory drug (AZT ID50, mean +/- 1 SD for normal cultures = 2.64 +/- 4.15 microM, for HIV+ cultures = 6.28 +/- 10.79 microM, p = 0.24). Hematologic toxicity was less with ddI and d4T. However, doses of ddI and d4T < or = 10 microM inhibited colony growth in 9/14 and 8/12 cultures, respectively, from HIV+ patients. CONCLUSIONS: Stem cell factor (SCF), hemin, and interleukin-3 (IL-3) increased colony growth in HIV+ and normal cultures. In control cultures, hematopoietic growth factors added singly increased growth 1.3- to 8-fold. Hematopoietic growth factors increased growth even in cultures containing antiviral drugs. In some instances growth factors restored growth to control levels. SCF, hemin, and IL-3 were most effective when combined.

Adult↗

A murine model for human cord blood transplantation: near-term fetal and neonatal peripheral blood cells can achieve long-term bone marrow engraftment in sublethally irradiated adult recipients.

The purposes of the research reported here were first to explore a murine model for human placental and umbilical cord blood transplantation and second to evaluate the engraftment ability of ex vivo cultured hematopoietic cells. Murine near-term fetal and neonatal peripheral blood (FNPB) cells, genetically marked with the human multiple drug resistance transgene (MDR1) were used for syngeneic transplants into sublethally irradiated adult mice. Donor cells were transplanted either fresh and untreated, or after ex vivo culture in the presence of the hematopoietic growth factors recombinant murine stem cell factor, recombinant human interleukin-3 (rHu IL-3), and rHu IL-6, in a liquid culture system. To evaluate, count, and characterize FNPB progenitor cell-derived colonies, neonatal mouse mononuclear cells were cultured directly in methylcellulose with growth factors. To assess their ex vivo expansion ability, FNPB mononuclear cells were first cultured in liquid medium for 3 to 8 days and then transferred to semisolid assay plates. Evaluation of the cell counts after liquid culture showed a 1.4- to 11.6-fold increase, and the numbers of colonies observed in methylcellulose were similar to those produced by fresh FNPB cells. Donor-type engraftment was demonstrated by polymerase chain reaction (PCR) amplification of the human MDR1 transgene in the peripheral blood of all surviving animals (5 of 7 recipients of the fresh, and 3 of 8 recipients of the ex vivo-cultured cells) 2 to 4 months after transplantation. The proportion of donor leukocytes in the peripheral blood of the recipients (chimerism) was evaluated using fluorescence in situ hybridization (FISH) analysis 4 to 6 months after transplantation and ranged from 2% to 26%. In addition, bone marrow cultures were obtained from two recipient animals: one had received fresh-untreated cells and was evaluated 8 months after transplant, the other had received ex vivo cultured cells and was tested 14 months after grafting. The derived hematopoietic colonies were tested by PCR and the transgene was detected, conclusively proving long-term engraftment of donor cells. These results indicate that FNPB transplants can be successfully performed in sublethally irradiated mice with and without ex vivo culture. Long-term donor-type engraftment with sustained chimerism has been demonstrated. Thus, murine neonatal blood grafts can be used as an animal model for cord blood transplantation for gene therapy studies where complete myeloablation is not desirable and partial replacement of defective marrow may be sufficient. Furthermore, the possibility of numerically expanding hematopoietic progenitor cells contained in neonatal blood without affecting their engraftment ability could facilitate use of cord blood grafts in adult recipients.

Animals↗

Disparate lympho-erythroid donor to recipient chimaerism in a beta(0)-thalassaemia bone marrow transplant recipient with red cell indices indicative of apparent full engraftment.

A 4-year-old girl with transfusion-dependent beta(0)-thalassaemia received an HLA-identical bone marrow transplant (BMT) from her beta(0)-thalassaemia trait sister. Prior to BMT, chromosomal analysis revealed the recipient to have 46,XX,9qh+, a polymorphic variant of the heterochromatin region of chromosome 9, which her donor did not have. Within 1 month post-BMT, 89% of nucleated bone marrow cells were of donor origin. One year later, donor engraftment had decreased to 44% and 34% in nucleated bone marrow cells and blood lymphocytes, respectively. By 2 years, donor lymphocyte engraftment fell to 5%, raising concern of possible graft rejection. To examine erythroid chimaerism, globin synthesis by individual erythroid progenitor cell derived colonies (BFU-E) was analysed. On days 1000 and 1130 post-BMT, 79% and 77% of colonies, respectively, synthesized beta-globin and therefore were of donor origin.

Bone Marrow Transplantation↗