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T Graham

Publications and source records attributed to T Graham.

At least 37 records · Page 2Linked to original sources

Use of the flagellar H7 gene as a target in multiplex PCR assays and improved specificity in identification of enterohemorrhagic Escherichia coli strains.

PCR products of 1.8 kb were generated with DNAs from all Escherichia coli H7 strains tested by using oligonucleotide primers which flank the fliC gene. Three RsaI digestion profiles of these PCR products were evident on agarose gels; the first occurred with serotype O55:H7, O157:H7, or nonmotile (NM) strains, the second occurred with serotype O1:H7 and O18:H7 strains, and the third occurred with serotype O?:H7, O19:H7, O121:H7, O88:H7, and O156:H7 strains. Despite these differences, the nucleotide sequences of the E. coli E32511 (O157:NM) and U5-41 (O1:H7) fliC genes were 97% homologous. Two PCR primer pairs synthesized on the basis of the E32511 H7 fliC sequence amplified specific DNA fragments from all E. coli H7 strains, but did not amplify DNA fragments from the other bacterial strains. The H7-specific primers were used in combination with other primers which target the Verotoxin 1(VT1) and VT2 genes and the E. coli O157:H7 eaeA gene in multiplex PCR assays. In these assays, vt and eaeA PCR products were observed with DNAs from the majority of EHEC strains and vt, eaeA, and fliC PCR products were observed with DNAs from E. coli O157:H7 or NM strains. Only eaeA PCR products were present with DNA from enteropathogenic E. coli, and only vt PCR products occurred with VT-producing E. coli which are not EHEC. The multiplex PCR assays described allow for the specific identification of E. coli O157:H7 or NM and other EHEC strains.

Adhesins, Bacterial↗

Allogeneic transplant of canine peripheral blood stem cells mobilized by recombinant canine hematopoietic growth factors.

We have studied graft-versus-host disease (GVHD) after transplantation of allogeneic peripheral blood stem cells (PBSC) mobilized by either recombinant canine granulocyte colony-stimulating factor (rcG-CSF) alone or combined with stem cell factor (rcSCF). These studies were prompted by the observation of extremely rapid and sustained engraftment of growth factor-mobilized PBSC in the autologous setting using genetically marked cells and changes in function of T lymphocytes from donors that had undergone mobilization. Specifically, lymphocytes from growth factor-treated donors were hyporesponsive in mixed leukocyte culture and in response to Con A, raising hopes that GVHD in dogs given growth factor mobilized allogenic PBSC might be altered in a beneficial way. Eighteen dogs were given a median of 17.1 x 10(8) PBSC/kg from littermate donors after 920 cGy of total body irradiation without postgrafting immunosuppression. Donors were either genotypically DLA-identical (n = 9) or DLA-haploidentical (n = 9). The median number of colony-forming unit-granulocyte macrophage (CFU-GM) infused was 27 x 10(4)/kg, and the number of CD34+ cells in the transplant was on the order of 4.6 x 10(6)/kg. The dogs received a median of 52.8 x 10(7) CD4 cells/kg and 13.7 X 10(7) CD8 cells/kg. All 18 dogs had prompt hematopoietic engraftment of donor cells as assessed by chimerism studies using variable number tandem repeat, as well as cytogenetic markers. Three of the nine dogs given grafts from DLA-identical littermates had fatal GVHD, five had transient GVHD, and one had no GVHD. All nine DLA-haploidentical recipients of PBSC developed fatal hyperacute GVHD. In conclusion, the expectation about rapid engraftment was fulfilled. However, incidence and severity of acute GVHD after transplantation of mobilized PBSC were not different than previously reported for nonmobilized PBSC or marrow. This model will allow for further studies, including T-cell depletion to minimize GVHD without increasing graft rejection.

Animals↗

Facilitation of DLA-incompatible marrow grafts by donor-specific serum transferrin?

Studies in mice have shown that donor-specific plasma transferrin (TF) given to the recipient in the peritransplant period facilitates engraftment of marrow from histoincompatible donors. Dogs given 920 cGy of total body irradiation (TBI) and infused with marrow from an unrelated major histocompatibility complex (DLA) different donor generally fail to engraft; only approximately 20% of dogs achieve sustained engraftment. We have now investigated in this model whether the infusion of donor-specific plasma TF would facilitate engraftment. Ten dogs were given TBI, followed at 23 h by an intravenous dose of TF, at 24 h by marrow from the same donor, and another dose of TF at 48 h; six dogs also received postgrafting methotrexate (MTX). Seven dogs (three of four without MTX, four of six with MTX) had sustained engraftment, and three dogs failed to engraft. A single dog given third-party TF failed to engraft. Among five dogs not given TF two achieved sustained engraftment. This pilot study suggests that donor-specific TF facilitates engraftment of DLA-incompatible marrow. Further studies are warranted.

Animals↗

An anti-CD44 antibody does not enhance engraftment of DLA-identical marrow after low-dose total body irradiation.

920 cGy total body irradiation (TBI) is adequate for consistently successful engraftment of marrow from dog leukocyte antigen (DLA)-identical littermates; however, the dose is inadequate to ensure a marrow graft from DLA-nonidentical unrelated donors. Such mismatched grafts are successful only after 1800 cGy, given in three fractions. While anti-T-cell reagents enhance engraftment of DLA-identical littermate marrow after 920 cGy, they fail to be effective in the DLA-nonidentical setting. However, a monoclonal antibody (mAb) to CD44, S5, was found to be very effective in enhancing engraftment of DLA-nonidentical marrow. The current study asked whether mAb S5 was also effective in the setting of DLA-identical littermate transplants. To this purpose, the TBI dose was lowered to 450 cGy, a dose after which 70% of such grafts failed. Four dogs were treated with antibody S5, 0.2 mg/kg on days -7 through -2 (per previously published protocol), given 450 cGy TBI followed by marrow grafts from their DLA-identical littermates. All four dogs rejected their grafts; two of these died from marrow aplasia, and two survived with endogenous marrow recovery. This result was not statistically significantly different from that in 17, historical (n = 5) and concurrent (n = 12), control dogs where 11 of 17 animals rejected. Even if ten experimental animals were transplanted and all six remaining dogs engrafted, the results still would not have been significantly different from control. This result is in contrast to the successful engraftment promoted by pretreatment with antibody S5 of DLA-nonidentical unrelated dogs, consistent with the notion that different host cells are involved in graft rejection in the two disparate histocompatibility settings.

Animals↗

Long-term persistence of canine hematopoietic cells genetically marked by retrovirus vectors.

In 1991 we reported gene transduction into autologous long-term repopulating marrow cells in dogs using amphotropic helper-free retrovirus vectors containing the bacterial neomycin phosphotransferase gene (neo) and the human adenosine deaminase gene (ADA). Two of the dogs are still alive and healthy now more than 5 years after transplantation of transduced autologous marrow cells. In one of the surviving dogs, polymerase chain reaction (PCR) analysis showed the neo and ADA genes to be present in peripheral blood granulocytes and lymphocytes up to the present time. The estimated percentage of neo-positive cells ranged from < 0.001% to 0.1%. ADA mRNA expression was detected by reverse transcriptase PCR (RT-PCR) in granulocytes 63 months after transplantation. The other surviving dog failed to show either persistence or expression of the transduced genes after 50 months. Three additional dogs have been transplanted according to the same transduction protocols and with the same retrovirus vectors, and persistence of the transduced neo gene has been documented in peripheral blood myeloid and lymphoid cells along with G418-resistant colony-forming unit-granulocyte/macrophage (CFU-GM) for now more than 2 years. These findings represent the longest follow-up of retrovirus-mediated gene transduction in any animal species. Long-term transduction efficiency, though, has remained low and will need to be improved for therapeutic application to be possible.

Adenosine Deaminase↗

Genus- and species-specific detection of Listeria monocytogenes using polymerase chain reaction assays targeting the 16S/23S intergenic spacer region of the rRNA operon.

In this study, the 16S/23S rRNA intergenic spacer (IGS) regions of six Listeria species were examined. DNA bands of 590 and 340 bp were observed following polymerase chain reaction (PCR) amplification of DNA from Listeria monocytogenes, Listeria innocua, Listeria seeligeri, Listeria welshimeri, and Listeria ivanovii strains with generic rRNA IGS oligonucleotide primers. For strains of Listeria grayi subspp. grayi and murrayi, DNA band sizes of 550 and 340 bp were observed with this primer pair. DNA bands of these sizes were not observed for other Gram-negative or- positive bacteria in this PCR assay. Four RsaI digestion profiles were noted for the Listeria PCR products. Listeria monocytogenes strains had one profile; L. innocua strains had a second; L seeligeri, L. welshimeri, and L ivanovii strains had a third; and L. grayi strains had a fourth. The small and large 16S/23S rRNA IGSs of L. monocytogenes ATCC 15313 were identical in the first 58 5' and the last 169 3' nucleotides. However, the large rRNA IGS contained a central 267-bp region with tRNA(Ile) and tRNA(Ala) genes. Large rRNA 16S/23S IGS nucleotide sequence data has not been previously reported. This data was used to develop novel Listeria genus-specific and L.monocytogenes species-specific PCR assays.

Base Sequence↗

Myelosuppressive conditioning improves autologous engraftment of genetically marked hematopoietic repopulating cells in dogs.

We have studied the role of different conditioning regimens for engraftment of genetically marked hematopoietic repopulating cells in dogs. Peripheral blood (PB) and/or marrow cells collected after treatment with recombinant canine stem cell factor (rcSCF) or cyclophosphamide were transduced in a vector-containing long-term culture system. Three different vector-producing cell lines with similar viral titers were used. In two of them, the neo-containing LN vector was packaged either in the PA317 cell line with an amphotropic murine retrovirus envelope or the PG13 cell line with the gibbon ape leukemia virus (GALV) envelope. The MFG/GC vector produced in PA317 cells contained the human glucocerebrosidase gene. Nineteen dogs received either no conditioning (group A, n = 5), irradiation to both humeri with 1,000 cGy (group B, n = 5), a sublethal dose of cyclophosphamide 40 mg/kg (group C, n = 4), a sublethal dose of 200 or 300 cGy total body irradiation (TBI) (group D, n = 3), or an otherwise lethal dose of 920 cGy TBI (group E, n = 3) before intravenous (groups A, C, D, E) or intramedullary (group B) infusion of the transduced autologous hematopoietic cells. Transduction efficiency of hematopoietic cells at the time of infusion into the animals was similar among the different conditioning groups. Dogs were observed for at least 6 months. PB granulocytes were obtained at least every 3 weeks after transplant and analyzed by polymerase chain reaction for the presence of the transduced genes. The percentages of positive results in dogs more than 4 weeks after transplantation were 0% without conditioning, 5% with local irradiation, 18% with sublethal cyclophosphamide, 33% with sublethal TBI, and 17% with otherwise lethal TBI. Analyzing the influence of conditioning regimens by a generalized estimating equation (GEE) technique, which considered the use of different retrovirus vectors and the number of mononuclear cells infused as potential confounding variables, we found that engraftment of genetically marked repopulating cells was significantly improved (P < .001) in dogs receiving systemic conditioning with either otherwise lethal TBI, sublethal TBI, or sublethal cyclophosphamide compared to dogs with local irradiation only or no conditioning. Within the limitation of the experimental design, these data suggest that myeloablative or myelosuppressive conditioning improves engraftment of genetically marked hematopoietic repopulating cells.

Animals↗

Minimum level of teachers' performance and students' achievement in volleyball skills.

The purpose of this study was to establish the minimum performance by teachers on the Qualitative Measures of Teaching Performance Scale required to influence students' achievement of volleyball skills. Beginning eighth-grade students and 14 teachers were examined over an instructional three-week volleyball unit. Teachers who scored 40 to 53 points were not as effective as those who scored above 55 on the 100-point scale. In this context a score at least in the mid-fifties was desirable.

Adolescent↗

Inhibition of hematopoiesis in long-term marrow cultures established on adherent layers from AcSDKP-treated dogs.

The tetrapeptide Acetyl-N-Ser-Asp-Lys-Pro (AcSDKP) interferes with G1/S phase progression in hematopoietic precursors. We investigated the effect of AcSDKP on in vitro and in vivo hematopoiesis in a canine model. AcSDKP, added daily for 2 weeks to long-term marrow culture (LTMC) at concentrations > 10(-8)M, reversibly inhibited colony-forming unit granulocyte/macrophage (CFU-GM) formation (p < 0.001 and p < 0.05 for 10(-6) and 10(-7)M, respectively). Inhibition was more profound when AcSDKP addition was begun at the initiation rather than at the time of recharging the cultures. Next, seven dogs were given AcSDKP in vivo at 50 (n = 2), 250 (n = 2), or 500 micrograms/kg/day (n = 3) via continuous infusion for 7 days. No adverse effects were observed. LTMCs were established on days -9, -2, +7, and +28 of AcSDKP. One week later (days -2, +5, +14, and +35), adherent layers were recharged with fresh autologous marrow, and CFU-GM in nonadherent cells was assayed weekly beginning 1 week after recharging. The cumulative number of CFU-GM harvested from LTMCs was dependent upon the time of initiation of LTMC. The difference between day -2 (adherent layer pre-AcSDKP; recharge on AcSDKP) and day +7 culture (adherent layer on AcSDKP; recharge after discontinuation of AcSDKP, p < 0.001) suggested an effect of AcSDKP on the adherent stromal layer. Ex vivo hematopoiesis partially recovered following discontinuation of AcSDKP, although CFU-GMs were still reduced in LTMCs established on day +28. Normal nonadherent cells recharged onto allogeneic adherent/layers obtained during AcSDKP treatment grew significantly fewer CFU-GM than cultures on adherent cells obtained before AcSDKP treatment (p < 0.05). Therefore, these data suggest that AcSDKP affects not only hematopoietic cells but also cells of the adherent layer.

Animals↗

Effects of rhIL-11 on normal dogs and after sublethal radiation.

The effects of recombinant human interleukin-11 (rhIL-11) were studied in normal dogs and dogs given otherwise sublethal total-body irradiation (TBI) without marrow transplantation. Ten normal dogs were given rhIL-11 subcutaneously, twice daily for 14 days at varying doses, two dogs at 30 micrograms/kg/day, four dogs at 60 micrograms/kg/day, two dogs at 120 micrograms/kg/day, and two dogs at 240 micrograms/kg/day. Peripheral blood platelet counts increased in all dogs. The increase in platelet counts ranged from 1.4 to 3.1 times the pre-treatment level. The greater increases of platelets were associated with higher doses (p = 0.01). No change in platelet size was evident except at the dose of 240 micrograms/kg/day. There were no changes in the total white blood cell (WBC) count or differential. A higher proportion of megakaryocytes with a DNA content of 32N/64N was observed in dogs treated with rhIL-11 at day 7 (n = 6) than for control dogs that did not receive rhIL-11 (n = 7; p = 0.01). In both peripheral blood and marrow, significantly increased hematopoietic progenitors (i.e, colony-forming unit granulocyte/macrophage [CFU-GM]) were present 7 and 14 days after the start of treatment. Concentrations of serum fibrinogen increased by a median of 155 mg/dL at day 7 of rhIL-11 (p < 0.01). Cholesterol also increased by a median of 52 mg/dL at day 14 (p < 0.01). There was a single death of a non-irradiated dog from pneumonitis on day 15 after the start of rhIL-11 administration at a dose of 120 micrograms/kg/day. All other non-irradiated dogs tolerated rhIL-11 without any significant adverse effects. Five dogs were given 200 cGy TBI without marrow grafting, followed by 240 micrograms/kg/day rhIL-11 subcutaneously in two divided doses for 28 days starting within 2 hours of TBI. The results in this group were compared with 10 dogs that had previously or concurrently been given 200 cGy without marrow grafting or hematopoietic growth factors. Two of the five treatment dogs died of pneumonitis on day 13 compared to one death among 10 control dogs on day 24. Among dogs that survived to hematologic recovery, the rhIL-11 dogs had decreased platelet counts (< 150,000) for a median of 24 days (range = 24 to 41) compared to a median of 28 days (range = 21-40) for the control group. Treatment with rhIL-11 increased platelet counts, platelet size, ploidy number of megakaryocytes, and marrow and peripheral blood CFU-GM in normal dogs.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Effects of granulocyte colony-stimulating factor and stem cell factor, alone and in combination, on the mobilization of peripheral blood cells that engraft lethally irradiated dogs.

The effects of recombinant canine granulocyte colony-stimulating factor (rcG-CSF) and recombinant canine stem cell factor (rcSCF), a c-kit ligand, on the circulation of hematopoietic progenitor and stem cells were studied in a canine model. Administration of rcG-CSF (10 micrograms/kg) for 7 days led to a 5.4-fold increase in CFU-GM/mL of blood, while 7 days of rcSCF (200 micrograms/kg) led to an 8.2-fold increase. Although treatment with low-dose rcSCF (25 micrograms/kg) had no effect on the level of peripheral blood progenitors, 7-day exposure to a combination of G-CSF plus low dose SCF led to a 21.6-fold increase (P = .03). To assess the ability of these factors to increase the circulation of cells capable of rescuing animals after lethal total body irradiation (TBI), 1 x 10(8) peripheral blood mononuclear cells (PBMC)/kg were collected and cryopreserved from animals after 7 days of treatment with G-CSF, SCF or a combination of the two. One month later, animals were exposed to 9.2 Gy TBI and transplanted with the previously collected cells. Control animals transplanted with 1 x 10(8) PBMC/kg collected without pretreatment died with marrow aplasia 11 to 29 days after TBI as did animals treated with only low-dose SCF before cell collection. In contrast, all animals given PBMC collected after G-CSF, high-dose SCF, or a combination of G-CSF plus low-dose SCF recovered granulocyte function. Recovery to 500 granulocytes/microL after transplant took 17, 18.8, and 13.6 days, respectively, (P = .056 for the difference between the combination G-CSF-SCF group and the other two groups). In both the G-CSF and SCF groups, 4 of 5 animals completely recovered while 1 of 5 in each group died with prolonged thrombocytopenia. In the combination group, all 5 animals became long-term survivors. These studies demonstrate that both G-CSF and SCF dramatically increase the level of peripheral blood hematopoietic progenitor and stem cells and support the view that these factors can act synergistically.

Animals↗

Rescue from anti-MHC class II antibody-mediated marrow graft failure by c-kit ligand.

Dogs given 920 cGy of total body irradiation (TBI) followed by autologous marrow infusion uniformly achieve sustained hematopoietic reconstitution. We have previously shown that administration of the anti-MHC class II monoclonal antibody (MoAb) H81.98.21 (IgG2a) at 0.6 mg/kg/d immediately after transplantation results in delayed graft failure. A second noncrossblocking anti-MHC class II MoAb, B1F6, of the same isotype, at the same dose, did not interfere with sustained engraftment, suggesting that the observed effect was epitope dependent. Although higher concentrations of B1F6 were required, in the present study both MoAbs interfered with the propagation of long-term marrow cultures. When MoAb B1F6 was given in vivo at 1.2 mg/kg/d, ie, twice the dose used previously, dogs so treated also developed delayed marrow graft failure. Marrow failure with either MoAb involved myeloid, erythroid, and megakaryocytic lineages. Administration of recombinant canine c-kit ligand/stem cell factor (SCF) for 7 or 21 days posttransplant resulted in reversal of graft failure. Although the short course did induce a broad transient early peak of granulocytes, the longer course of SCF was accompanied by earlier sustained recovery than the short course. In conclusion, therefore, marrow graft failure induced by anti-MHC class II MoAb does not appear to be epitope dependent, involves all hematopoietic lineages, and is overcome by the administration of c-kit ligand.

Animals↗

Retrovirus-mediated gene transduction into canine peripheral blood repopulating cells.

Genetically marked peripheral blood progenitor cells were used to investigate their contribution to long-term hematopoietic reconstitution after autologous marrow and peripheral blood cell transplantation. After autologous marrow harvest and cryopreservation, canine peripheral blood progenitor cells were mobilized in three dogs by treatment with recombinant canine stem cell factor for 8 days. Peripheral blood mononuclear cells were collected and enriched for major histocompatibility complex (MHC) class II antigen-positive cells by avidin-biotin immunoadsorption, thereby enriching for repopulating cells. Subsequently, the cells were cocultivated for 24 hours on irradiated vector-producing packaging cells (PA317/LN), followed by an 11-day incubation in a vector containing long-term marrow culture system. On the day of transplantation, the animals were irradiated with 9.2 Gy total body irradiation (TBI), and transduced peripheral blood cells and untransduced cryopreserved marrow cells were infused within 2 hours of TBI. All three dogs engrafted. Two dogs are long-term survivors showing intermittently G418-resistant marrow-derived colony-forming unit granulocyte-macrophage colonies at a median of 1% and 2%, respectively (range, 1% to 10%), for now up to 48 weeks after transplantation. Neo-specific sequences were detected by polymerase chain reaction in peripheral blood granulocytes for now up to 65 weeks and in peripheral blood lymphocytes for up to 75 weeks after transplantation. Peripheral blood samples of the dogs were free of helper virus and no side effects from the transduction were observed. One of the three dogs died from chronic canine distemper sclerosing encephalitis on day 84, whereas the other two dogs are alive at 15 and 17 months. Our data show successful retroviral transduction of canine peripheral blood repopulating cells. Long-term persistence of marked myeloid and lymphoid cells after transplantation suggests that peripheral blood contains repopulating cells that contribute to long-term hematopoietic reconstitution after otherwise lethal TBI.

Animals↗