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Biomedical subjects

K Eddleman

Publications and source records attributed to K Eddleman.

11 recordsLinked to original sources

First- and second-trimester Down syndrome screening markers in pregnancies achieved through assisted reproductive technologies (ART): a FASTER trial study.

OBJECTIVE: To determine whether first- and second-trimester Down syndrome screening markers and screen-positive rates are altered in pregnancies conceived using assisted reproductive technologies (ARTs). METHODS: ART pregnancies in the multicenter FASTER trial were identified. Marker levels were evaluated for five types of ART: in vitro fertilization with ovulation induction (IVF-OI), IVF with OI and egg donation (IVF-OI-ED), IVF with ED (IVF-ED), and intrauterine insemination with OI (IUI-OI) or without OI (IUI). Each group was compared to non-ART controls using Mann-Whitney U analysis. RESULTS: First-trimester marker levels were not significantly different between ART and control pregnancies, with the exception of reduced PAPP-A levels in the IUI-OI group. In contrast, second-trimester inhibin A levels were increased in all ART pregnancies, estriol was reduced and human chorionic gonadotropin (hCG) was increased in IVF and IUI pregnancies without ED, and alpha-fetoprotein (AFP) was increased in ED pregnancies. Second-trimester screen-positive rates were significantly higher than expected for ART pregnancies, except when ED was used. CONCLUSIONS: These data show that ART significantly impacts second-, but not first-, trimester markers and screen-positive rates. The type of adjustment needed in second-trimester screening depends on the particular type of ART used.

Adult↗

Circulating hematopoietic progenitor cells in a fetus with alpha thalassemia: comparison with the cells circulating in normal and non-thalassemic anemia fetuses and implications for in utero transplantations.

Our aim was to evaluate the number of progenitor cells circulating in an alpha-thalassemic fetus during its infusion in utero with paternal CD34(+) and adult red cells and to compare those values with those circulating in normal and non-thalassemic anemic fetuses of matched gestational age. The treatment of the alpha-thalassemic fetus has been described elsewhere. Fetal blood was obtained from normal and anemic fetuses by fetal blood sampling for diagnostic or therapeutic purposes according to a protocol approved by the human subject committee. The number of progenitor cells in fetal blood was estimated on the basis of the number of colonies they gave rise to in semisolid cultures. The alpha-thalassemic fetus, as did the other fetuses analyzed, contained high numbers (10(6)-10(7) depending on the age) of progenitor cells, values which were higher than the number (10(4)-10(5)) of paternal progenitor cells being transplanted. Progenitor cells with adult characteristics (adult kinetics of differentiation) were detected rapidly (10 min) after the CD34(+) cell infusion, but were not detectable 2-3 weeks after the transplant. These results indicate that adult progenitor cells do not have a numerical advantage when transplanted into alpha-thalassemic fetuses.

Antigens, CD34↗

Multifetal pregnancy reduction.

Multifetal pregnancies have increased dramatically since the introduction and improvement in assisted reproductive techniques. Multifetal pregnancy reduction (MPR) is a technique developed over the past 15 years to deal with the sequelae of higher order multiple gestations resulting from infertility treatment. With increasing operator experience, loss rates for patients undergoing MPR have declined dramatically. The present review addresses recent data on the outcomes of patients undergoing MPR, as well as recent information on the natural history of higher-order multiple gestations in individuals not undergoing MPR. New developments in this area such as the use of chorionic villus sampling before MPR, as well as MPR to a single fetus, and information on the psychological follow-up of MPR patients are also discussed.

Female↗

Controversies in the intrapartum management of twin gestations.

Advances in reproductive endocrine technology have helped to make twin gestations commonplace; however, as this article suggests, many unanswered questions and areas of controversy about the intrapartum management of twin gestations remain. Continued research in this area and the performance of prospective studies will shed further light on many of these topics.

Delivery, Obstetric↗

Successful pregnancy in severe methylmalonic acidaemia.

Methylmalonic acidaemia is an inborn error of metabolism characterized by recurrent episodes of life-threatening ketoacidosis. With improved and intensive treatment, these patients are living into adulthood, but many experience late-onset disease complications such as chronic renal failure, chronic pancreatitis and osteopenia. We report the successful delivery of a healthy baby to a 20-year-old woman with vitamin B12-unresponsive methylmalonic acidaemia who has these late-onset manifestations of the disease and had plasma methylmalonic acid concentrations of 1900 mumol/L during the first trimester of pregnancy.

Acidosis↗

Circulating progenitor cells in human ontogenesis: response to growth factors and replating potential.

We have measured the number of progenitor cells circulating in fetal (17-32 weeks of gestation), perinatal (36 weeks of gestation), and adult (30-50 years old) blood. The progenitor cells at each ontogenetic stage were also characterized in terms both of the minimal combinations of growth factors they required to form maximal numbers of colonies in vitro and of their self-replication potential, as measured by the number of secondary and tertiary progenitor cells each could generate. The number of progenitor cells circulating in fetal and perinatal blood can be measured by directly plating the unfractionated blood. In this assay, fetal blood contains half the number of progenitor cells detected in perinatal blood (18.0 +/- 16.4 versus 40.88 +/- 0.63, p < 0.01), and the number of progenitor cells in adult blood is below the level of detection of the assay (< 1/8 microliter of blood). To compare the number of progenitor cells in all three stages of human development, progenitor cell counts were performed on blood mononuclear cells enriched by density separation. In this case, the light density cell fractions from fetal and neonatal blood contained the same number of progenitor cells (300/10(5) cells), numbers that were 10-fold higher than those observed with adult blood (30/10(5) cells). Circulating fetal-neonatal erythroid and multipotential progenitor cells were found to differ from their adult counterparts in terms of their response to growth factors and their self-renewal ability. In fact, the number of cytokines required to observe maximal colony formation increased with the ontogenetic stage of the cells. No differences were found in the frequency of primary colonies containing progenitor cells or in the mean number of secondary progenitor cells per primary colony in cultures of fetal, neonatal, or adult blood. Differences between the three ontogenetic stages, however, were found with respect to the number of sequential replatings that were possible. In fact, although both secondary granulocyte-macrophage (GM) and mixed-cell colonies derived from fetal cells gave rise to tertiary colonies, only perinatal secondary mixed-cell colonies grew in tertiary cultures, and no growth was observed in tertiary cultures of adult cells. These results suggest that the greater amplification of progenitor cells observed in liquid culture of fetal/neonatal versus adult blood is due both to a higher proliferative capacity of neonatal progenitor cells (up to two replatings versus one) and to a higher frequency in these samples of mixed-cell colony-forming cells (CFC) (37.7 +/- 7.3 versus 2.0 +/- 0.7/10(5) light density cells, respectively). Because of the high numbers of progenitor cells circulating in the fetus, as well as their high proliferative capacity, it is predicted that if blood could be harvested directly in utero, fetal blood would be as good a source of stem cells for transplantation as perinatal placental/cord blood. Circulating fetal stem cells would, therefore, represent an ideal target for gene therapy and in utero autologous transplantation.

Adult↗

Neonatal hepatitis and excessive hepatic iron deposition following intrauterine blood transfusion.

The management of hemolytic disease has undergone a number of significant changes over the past few decades. Intrauterine transfusion therapy, particularly intravascular transfusions, have significantly reduced the morbidity and mortality associated with isoimmunization. This therapy results not only in the transfusion of blood, but also in the transfusion of iron. The long-term consequences of iron loading in the fetus are unknown. We report a case of a newborn with Rh hemolytic disease who was treated with in utero transfusions and subsequently developed liver disease consistent with iron overload.

Adult↗

Long-term generation of human mast cells in serum-free cultures of CD34+ cord blood cells stimulated with stem cell factor and interleukin-3.

The generation of murine mast cells is supported by several cytokines, and mast cell lines are frequently established in long-term cultures of normal murine marrow cells. In contrast, growth of human mast cells was initially dependent on coculture with murine fibroblasts. The growth factor produced by murine fibroblasts and required to observe differentiation of human mast cells is attributable in part to stem cell factor (SCF). However, other factors are likely involved. We have previously shown that the combination of SCF and interleukin-3 (IL-3) efficiently sustains proliferation and differentiation of colony-forming cells (CFCs) from pre-CFC enriched from human umbilical cord blood by CD34+ selection. With periodic medium changes and the addition of fresh growth factors, five consecutive cultures of different cord blood samples gave rise to differentiated cells and CFCs for more than 2 months. Although differentiated cells continued to be generated for more than 5 months, CFCs were no longer detectable by day 50 of culture. The cells have the morphology of immature mast cells, are Toluidine blue positive, are karyotypically normal, are CD33+, CD34-, CD45+, c-kit-, and c-fms-, and die in the absence of either SCF or IL-3. These cells do not form colonies in semisolid culture and are propagated in liquid culture stimulated with SCF and IL-3 at a seeding concentration of no less than 10(4) cells/mL. At refeedings, the cultures contain a high number (> 50%) of dead cells and have a doubling time ranging from 5 to 12 days. This suggests that subsets of the cell population die because of a requirement for a growth factor other than SCF or IL-3. These results indicate that the combination of cord blood progenitor and stem cells, plus a cocktail of growth factors including SCF and IL-3, is capable with high efficiency of giving rise in serum-deprived culture to human mast cells that behave like factor-dependent cell lines. These cells may represent a useful tool for studies of human mast cell differentiation and leukemia.

Antigens, CD↗

Stem cell factor and the amplification of progenitor cells from CD34+ cord blood cells.

We have studied the frequency of colony-forming cells (CFC) in fetal and neonatal blood in comparison with adult blood and marrow. Fetal or neonatal blood contains at least as many CFC as adult marrow and higher numbers of the more primitive CFC--those CFC (mixed-cell CFC) giving rise to colonies composed of erythroid and myeloid cells. CD34+ cord blood cells (selected by one of several means) proliferate in culture over time and generate more CFC (from pre-CFC) and differentiated cells in response to stem cell factor (SCF) plus different hematopoietic growth factors. For its effect, SCF requires the synergistic action of erythropoietin (Epo), granulocyte colony-stimulating factor (G-CSF), or interleukin-3 (IL-3). In the presence of Epo or G-CSF, CFC and differentiated cells are generated for 15 days and are mainly erythroid or granulocytic, respectively. In contrast, SCF plus IL-3 generate multilineage CFC and differentiated cells for more than 1 month. When the conditions for these long-term suspension cultures were optimized, CFC and differentiated cells were generated for more than 2 months. At this time, CFC were no longer detectable, but cells continued to be generated, and the cells had a mast cell phenotype. These cells have been maintained and propagated for more than 8 months in the presence of IL-3 and SCF and may represent a useful tool to study human mast cell differentiation.

Aging↗

Aspects of the biology of the neonatal hematopoietic stem cell.

We have studied the frequency of colony forming cells (CFC) in fetal and neonatal blood in comparison with adult blood and marrow. Fetal/neonatal blood contains at least as many CFC as adult marrow and higher numbers of the more primitive CFC--those CFC giving rise to colonies composed of erythroid and myeloid cells. CD34+ cord blood cells (selected either by sorting, panning or affinity chromatography) proliferate in culture over time and generate more CFC (from pre-CFC) and differentiated cells in response to Steel factor plus different hematopoietic growth factors. Steel factor is unable to stimulate cell growth by itself under serum-deprived conditions and requires the synergistic action of erythropoietin (Epo), granulocyte colony stimulating factor (G-CSF) or interleukin 3 (IL-3). In the presence of Epo or G-CSF, CFC and differentiated cells are generated for 15 days and are mainly erythroid or granulocytic, respectively. In contrast, Steel factor plus IL-3 generates multilineage CFC and differentiated cells for more than one month. When the conditions for these long-term suspension cultures were optimized (37 degrees C, regular refeeding with fresh growth factors and media without changing the flask), CFC and differentiated cells were generated for more than two months. At this time, CFC were no longer detectable and all cells had a mast cell phenotype. These cells have been maintained and propagated for more than eight months in the presence of IL-3 and Steel factor and may represent a useful tool to study human mast cell differentiation.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Long-term generation of colony-forming cells (CFC) from CD34+ human umbilical cord blood cells.

Human umbilical cord blood cells represent a potential alternative to bone marrow as a source of stem and progenitor cells for allogeneic transplantation. Therefore, many studies are underway to evaluate the number of cord blood stem cells and their amplification potential. We analyze here the amplification potential of CD34+ cord blood cells in liquid cultures stimulated with stem cell factor (SCF) in combination with interleukin-3 (IL-3), erythropoietin (Epo) or granulocyte colony-stimulating factor (G-CSF) under serum-deprived conditions. We report that under certain circumstances (stimulation with SCF and IL-3, replacing of the medium and growth factors every 3-4 days, no change of the initial culture flask, 37 degrees C as incubation temperature), CD34+ cells give rise to differentiated cells and progenitor cells for more than two months. During this period, more than 10(10) differentiated cells and 10(6) progenitor cells are generated from 0.25-1 x 10(4) CD34+ cells in the absence of a stromal layer. These data highlight the high proliferative and differentiative potential of cord blood stem cells and, because the culture procedures are relatively simple and do not require a stromal layer, open the way to the clinical use of ex vivo stem cell expansion.

Animals↗