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D E Harrison

Publications and source records attributed to D E Harrison.

At least 19 recordsLinked to original sources

The same exhaustible multilineage precursor produces both myeloid and lymphoid cells as early as 3-4 weeks after marrow transplantation.

Hemopoietic precursors with the ability to differentiate into wide varieties of cell types are considered primitive, as are precursors with long-term repopulating ability. Here we study the populations of marrow precursors from which both myeloid and lymphoid lineages are descended shortly after transplantation. Surprisingly, few or none of these precursors show long-term repopulating ability. Equal portions of a mixture of marrow cells from C57BL/6J (B6) and congenic B6-Hbbd Gpi-1a mice are transplanted into a group of recipients. Three weeks later, highly significant correlations between percentages of B6 type T cells, B cells, granulocytes, and platelets in each recipient indicate that many lymphoid and myeloid cells are descended from common precursors. After 4-6 weeks, most correlations between lymphoid and myeloid cells improve, indicating that most or all differentiated cells are descended from common precursors. The more differentiated myeloid-specific precursors found in spleen colony-forming cell assays apparently fail to contribute significantly to the differentiated myeloid cell populations tested. By using the binomial model, in which variability of the data among the recipients is inversely related to the number of precursors in the mixture, donor precursor concentrations are estimated as approximately 21 per 10(5) marrow cells after 3 weeks, falling 3-fold to 6.6 per 10(5) after 4-6 weeks. This trend continues, with higher correlations, greater variabilities, and donor precursor concentrations of 1.9 per 10(5) marrow cells after 12-14 weeks and 1.4 per 10(5) after 24 weeks. Strong increases in variances between 3 and 12 weeks after transplantation suggest that most or all of the initially active multilineage precursors are exhausted during this time period. The fact that the ability of a hemopoietic stem cell to differentiate into widely disparate lineages is not associated with long-term repopulating ability requires a change in stem cell definitions, since primitive hemopoietic stem cells have traditionally been defined by both these abilities.

Animals

Cellular determinants of age-related decrements in the T-cell mitogen response of B6CBAF1 mice.

Age-related changes in the cellular composition of the immune system that are associated with an impaired proliferative response to T-cell mitogens were identified for B6CBAF1 mice. The frequencies of precursors of Con A-induced IL-2-secreting cells (pHTL) and of Con A-induced cytotoxic cells (pCTL), determined by limiting dilution analysis, were lower for splenocytes from old mice, as were the proliferative responses to Con A and PHA, determined in conventional high cell density cultures for the same mice. The pHTL frequency correlated with the proliferative response to Con A (r2 = .94) and to PHA (r2 = .83) among old mice, but not among young; there were no correlations of pCTL frequency with proliferative responses. The reduced pHTL frequency in old mice resulted from: (a) an age-related doubling of the number of splenic B cells that diluted T cells, and (b) a 67% decline in the absolute number of Con A-reactive pHTL cells in the spleen that appeared despite the maintenance of normal numbers of total splenic CD4+ and CD8+ cells. Thus, both a decline in absolute pHTL numbers and an increase in the number of non-T cells in the spleen result in a diminished pHTL frequency that is closely linked to the impaired mitogen response observed for old B6CBAF1 mice.

Aging

Polygenic influences on the length of oestrous cycles in inbred mice involve MHC alleles.

Genetic influences on female reproductive cycles were analysed in histocompatibility-congenic strains of mice. Oestrous cycles of young, virgin mice of inbred-congenic strains, hybrid crosses (F1), and parental-hybrid backcrosses (F2) were monitored for 3 months. Oestrous cycles were categorized by length (inter-oestrous interval): 4, 5, 6, or 7-14 days. Mice with the following H-2 haplotypes had a greater proportion of 5-day oestrous cycles: H-2b, H-2r, H-2h2, H-2h4, and H-2i5. In contrast, the H-2k and H-2d haplotypes had mostly 4-day oestrous cycles. Influences of H-2 haplotype were seen on two genetic backgrounds, C57BL/10Sn and C3H. Non-H-2 alleles were also implied by different patterns of cycles between strains with the same H-2b haplotype: C57BL/10Sn with predominantly 5-day cycles vs. C57BL/6J with a mix of 4- and 5-day cycles. The genetic basis for strain differences was investigation in F1 hybrids and their backcrosses. F1 hybrids of an H-2b (C57BL/10Sn; 5-day cycles) and an H-2k (B10.BR; 4-day cycles) strain had mostly 5-day cycles, indicating dominance of an H-2b allele(s). However, F1 hybrids from the reciprocal B6 x B10 cross (both H-2b) also display a preponderance of 5-day cycles, indicating dominance of a non-H-2 autosomal allele from the C57BL/10Sn strain. Among F2 mice, a '4-day' phenotype segregated with homozygosity for the k haplotype (P < 0.05, chi 2). These findings demonstrate the influence of genetic differences at the major histocompatibility complex on oestrous cycles.

Alleles

Most primitive hematopoietic stem cells are stimulated to cycle rapidly after treatment with 5-fluorouracil.

To test whether primitive hematopoietic stem cells (PHSC) cycle rapidly during recovery from an initial 5-fluorouracil (5-FU) treatment, two doses of 5-FU were administered 1, 3, 5 or 8 days apart. Cells from treated marrow donors were mixed with untreated competitor marrow that would produce genetically distinguishable erythrocytes and lymphocytes, using hemoglobin (Hb) and glucosephosphate isomerase (GPI) transplantation markers. These cell mixtures were injected into lethally irradiated hosts. Functional abilities of donor marrow populations were assessed after 3, 6, and 12 months as percentages of donor type Hb and GPI in the host's circulating erythrocytes and lymphocytes, respectively. Bone marrow from mice treated with two doses of 5-FU 3 to 5 days apart was severely affected, producing circulating erythroid and lymphoid cells an average of only 25% of normal for doses 3 days apart, and 14% of normal for doses 5 days apart. Two doses of 5-FU administered 1 day or 8 days apart had much smaller effects, producing circulating cells 75% or 58% of normal. Thus, most PHSC are stimulated to proliferate rapidly 3 to 5 days after treatment with 5-FU, but far fewer PHSC proliferate as early as 1 day, or as late as 8 days, after the 5-FU treatment.

Animals

Proliferative capacity of erythropoietic stem cell lines and aging: an overview.

The earliest bone marrow precursor cell types, often called stem CELLS, have a very large capacity for self renewal. This makes them a useful model system in which to test the hypothesis that normal somatic cells have a limited proliferative capacity. Marrow precursor cells differentiate and multiply to replenish the supply of various blood cell types that constantly turn over. Especially with erythrocyte production, this function is well difined and can be tested rigorously to determine whether a significant amount of the stem cell proliferative capacity is exhausted. Functional tests generally show that marrow stem cell lines are exhausted after three to six serial transplantations into successive recipients; the few exceptions are cases in which functioning by cells from the irradiated recipients has not been ruled out. Genetic markers unambiguously identifying marrow stem cell lines from the original donor are necessary for clear cut interpretations of transplantation experiments. No significant differences are found when comparing erythrocyte production by marrow stem cell lines from old and young adult donors. This suggests that little or none of the erythropoietic stem cell's proliferative capacity is exhausted by a lifespan of normal functioning.

Aging

Mouse erythropoietic stem cell lines function normally 100 months: loss related to number of transplantations.

Marrow stem cell lines from old and young donors in parallel experiments were transplanted into genetically anemic W/WV recipients. These recipients were populated and their anemias were cured by stem cell lines from WCB6F1 or C57BL/6 dorons that had been repeatedly transplanted up to five times at annual intervals into successive W/WV recipients. Old marrow cell lines produced erythrocytes normally for as long as 2600 to 3000 days. However, after three to four serial transplantations many stem cell lines failed to cure at least two-thirds of the recipients, and all failed by transplantation six. This decline occurred in a similar pattern whether the original stem line donor was old or young. Two experiments suggested that the decline was caused by the transplantation procedure: (1) chromosomally marked donor cells from old and young donors permanently populated lymph nodes in lethally irradiated recipients after the first transplantation, but under the same conditions cell lines from the same donors transplanted a second time were substantially infiltrated by regenerating recipient cells; (2) the ability to compete with the same chromosomally marked cell line in populating irradiated recipients declined markedly in both old and young marrow stem cell lines that had been previoulsy transplanted.

Aging

Processing by the thymus is not required for cells that cure and populate W/WV recipients.

Adult marrow, fetal liver or nu/nu mouse marrow from histocompatible donors was grafted into genetically anemic W/WV recipients, and all three types of grafts cured thymectomized as well as intact W-anemic recipients. With the latter two types of graft, the genetic anemia was cured by cells that could not have been processed in a mature thymus, since the adult recipients were thymectomized before receiving the grafts, the nu/nu donors were congenitally thymusless, and the fetal donors were used at 16 days of gestation. Chromosome-marked marrow grafts were used to show that immune systems were populated to similar degrees in thymectomized and intact W/WV recipients. Therefore, the cells derived from the donor marrow graft that partially populate the immune systems of W-anemic recipients do not require thymus processing. Small numbers of liver rudiment or yolk sac cells from fetal donors less than 12 days old failed to cure W/WV recipients, even when mixed with adult thymus cells. Therefore, the lack of adequately developed thymic helper cells appears not to be the reason why early fetal hemopoietic stem cells fail to cure W/WV recipients.

Aging

Loss of proliferative capacity in immunohemopoietic stem cells caused by serial transplantation rather than aging.

Marrow stem cell lines from old donors and those from young controls gave equally rapid rates of colony growth on spleens of irradiated mice. Old and young stem cell lines competed equally well with chromosomally marked marrow stem cells from a young donor in producing cell types that are stimulated by bleeding; old cells competed 70% as well as young in producing cell types stimulated by phytohemagglutinin (PHA) in vitro. After a single serial transplantation, the rates of colony growth declined 1.5- to 2.5-fold, and the ability to compete declined 2- to 4-fold for bleeding-stimulated and 4- to 10-fold for PHA-stimulated cells. Thus, immediate stem cell proliferative capacities decline much more after one serial transplantation than after a lifetime of normal function.

Animals

Molar growth yields, respiration and cytochrome profiles of Beneckea natriegens when grown under carbon limitation in a chemostat.

The effect of growth rate on the physiology of Beneckea natriegens was studied in chemostat culture. The molar growth yields (Y) from glucose and oxygen, the specific rates of oxygen (Qo2) and glucose (Qg1c) consumption and the specific rate of CO2 production (Qco2) were linearly dependent on the growth rate over the dilution rate 0.17 h-1 to 0.60 h-1. Further increase in the dilution rate resulted in a decrease in growth yield and respiration rate and these changes were coincident with increases in the specific rate of glucose utilisation and of acetate production. The affinity of Beneckea natriegens for glucose was similar when measured either directly in chemostat culture or in a closed oxygen electrode system using harvested bacteria. The total content of cytochromes decreased with increasing growth rate. However, the quantity of CO-binding cytochromes remained independent of growth rate and correlated with the potential respiration rate.

Carbon

Purification and properties of the methane mono-oxygenase enzyme system from Methylosinus trichosporium OB3b.

1. A three-component enzyme system that catalyses the oxidation of methane to methanol has been highly purified from Methylosinus trichosporium. 2. The components are (i) a soluble CO-binding cytochrome c, (ii) a copper-containing protein and (iii) a small protein; the mol. wts. are 13 000, 47 000 and 9400 respectively. The cytochrome component cannot be replaced by similar cytochrome purified from Pseudomonas extorquens or by horse heart cytochrome c. 3. The stoicheiometry suggests a mono-oxygenase mechanism and the specific activity with methane as substrate is 6 micronmol/min per mg of protein. 4. Other substrates rapidly oxidized are ethane, n-propane, n-butane and CO. Dimethyl ether is not a substrate. 5. The purified enzyme system utilizes ascorbate or, in the presence of partially purified M. trichosporium methanol dehydrogenase, methanol as electron donor but not NADH or NADPH. 6. Activity is highly sensitive to low concentrations of a variety of chelating agents, cyanide, 2-mercaptoethanol and dithiothreitol. 7. Activity is highly pH-dependent (optimum 6.9-7.0) and no component of the enzyme is stable to freezing. 8. The soluble CO-binding cytochrome c shows oxidase acitivity and the relationship between this and the oxygenase activity is discussed.

Ascorbate Oxidase

Cell lines from old immunodeficient donors give normal responses in young recipients.

Two different immune responses were compared in spleen cells obtained from old and young CBA/HT6J mice. Spleen cells from old mice (23 to 33 months) responded about half as well as did spleen cells from young mice (4 to 10 months) in the adoptive transfer anti-sheep red blood cell (SRBC) plague-forming assay, and caused slightly less than half the uptake of tritiated thymidine in response to phytohemagglutinin (PHA) in vitro. Marrow stem cell from some of the old and young mice whose splenic immune responses were tested were transplanted into irradiated young CBA/CaJ recipients. Seven to 17 weeks later these same immune responses were tested in the spleen cells of these young recipients, and the T6 chromosome marker was used to identify donor cells. Old animals' responses varied greatly, perhaps due to suppressing cells or factors in some individuals. Therefore, cells were never pooled and the responses of receipients were compared to the responses of the donor whose marrow had populated them. The response for a particular old donor, or for the recipients of its stem cells, was divided by the response for the young control used with that donor, or for its stem cell recipients. This was called the old/young ratio. With original donors with an old/young ratio for the SRBC response of (mean +/- S.D.) 0.35 +/- 0.14, The old/young ratio for that same response in the recipients was significantly improved to 1.26 +/- 0.71. In original donors with an old/young ratio for the PHA response of 0.44 +/- 0.17, the old/young ratio in the recipients improved significantly to 0.86 +/- 0.27. Thus, little or none of the decline with age in these immune responses was intrinsic to the old lymphoid stem cells.

Aging