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T Geiger

Publications and source records attributed to T Geiger.

At least 19 recordsLinked to original sources

A one-step large-scale method for T- and B-cell depletion of mobilized PBSC for allogeneic transplantation.

BACKGROUND: The presence of T and B cells in allogeneic grafts contributes to GvHD and to EBV-associated lymphoproliferative disease (LPD). Depletion of T and B cells from the graft decreases the risk of these complications. METHODS: T and B cells were depleted from mobilized peripheral stem cells from volunteer donors (n=5) using anti-CD3 and anti-CD19 Abs conjugated to magnetic microbeads, and the CliniMACS device. The function of the stem cells after depletion was evaluated using colony assays and non-obese diabetic (NOD)/SCID repopulating experiments. RESULTS: The mean mononuclear cell (MNC) count prior to T- and B-cell depletion was 2.19x10(10) (range 1.48-3.53). After depletion, the mean percentage of contaminating T cells was 0.02% (range 0.01-0.04%) with a mean log(10) depletion of 3.4 (range 3-3.8). The mean percentage of contaminating B cells was 0.1% (range 0.01-0.4%) with a mean log(10) depletion of 2.2 (range 1.4-3). The mean recovery of CD3- and CD19-negative MNCs after depletion was 70% (range 54-88%) and the mean recovery of CD34(+) stem cells was 69% (range 52-98%). The mean number of natural killer (NK) cells after T- and B-cell depletion was 5.2x10(8) (range 2-10x10(8)). In vitro colony assays and in vivo NOD/SCID repopulation assays showed no negative impact of this method on the function of the hematopoietic stem cells. DISCUSSION: Our results show that the CliniMACS system can be used to efficiently deplete PBSC of T and B cells simultaneously, without adverse effect on the graft.

Animals↗

Large-scale isolation of CD133+ progenitor cells from G-CSF mobilized peripheral blood stem cells.

We have evaluated the feasibility of large-scale isolation of CD133+ progenitors from healthy mobilized adult donors for potential clinical use in autologous and allogeneic transplantation. A total of 11 healthy volunteer adult donors were mobilized with G-CSF. CD133+ stem cells were isolated from a single leukapheresis using the Clinimacs method. The median percentage of CD133 before positive selection was 0.75% (range 0.39-2.03%). After selection, the median purity and recovery was 94% (range 85.2-98.0%) and 69% (range 44-100%), respectively. The median log10 T-cell depletion obtained by CD133+ positive selection was 4.2 (range 3.8-4.7). The CD133+ progenitors were highly enriched in colony-forming units (CFU) and transplantation into NOD/SCID mice resulted in a high engraftment rate. Transplantation of sorted CD133+/CD34+ cells into NOD/SCID mice showed a higher engraftment compared to CD133-/CD34+ cells. Mobilized peripheral CD133+ stem cells can be purified in large scale for potential clinical use. The biological function of the cells is not impaired. The majority of the NOD/SCID repopulating cells are within the CD133+/CD34+ subpopulation. Therefore, clinical studies using purified CD133+ stem cells can be envisoned to further clarify the role of CD133+ stem cells in hematopoietic reconstitution after transplantation.

AC133 Antigen↗

A large-scale method for T cell depletion: towards graft engineering of mobilized peripheral blood stem cells.

We have investigated the feasibility and efficacy of large-scale T cell depletion from granulocyte colony-stimulating factor (G-CSF) mobilized peripheral blood stem cells (PBSC). The method is based on the use of a CD3 antibody conjugated to magnetic microbeads and magnetic activated cell sorting (Clinimacs). A total of eight large-scale experiments were performed. In four experiments, CD3(+) T cells were depleted from PBSC obtained from volunteers mobilized with G-CSF whereas, in four experiments, T cells were depleted from PBSC from stem cell donors, in which the CD34(+) stem cells had been removed for allogeneic transplantation by positive selection prior to T cell depletion. The mean number of processed mononuclear cells (MNCs) was 3.3 x 10(10) (range 1.5 x 10(10)-5.1 x 10(10)) with a mean T cell proportion of 35.8% (range 16.7-64.0%). After T cell depletion, the percentage of contaminating T cells was 0.15% (range 0.01-1.01%) with a mean log(10) depletion of 3.4 (range 2.8-4.1). The mean recovery of CD3-negative MNCs after depletion was 76% (range 52-100%). The mean recovery of CD34(+) stem cells in the four evaluable experiments was 82% (range 75-92%). In vitro colony assays and in vivo NOD/SCID repopulation assays showed that this large-scale T cell depletion method has no negative impact on the function of the hematopoietic precursor cells. Therefore, we conclude that this T cell depletion method is a valuable tool for further graft engineering strategies involving mobilized PBSCs.

AC133 Antigen↗

Reversal of the Ras-induced transformed phenotype by HR12, a novel ras farnesylation inhibitor, is mediated by the Mek/Erk pathway.

We have used the selective farnesylation inhibitor HR12 [cysteine-N(methyl)valine-N(cyclohexyl) glycine-methionine-O-methyl-ester] to study the role of oncogenic Ras in cytoskeletal reorganization in Ha-ras(V12)-transformed Rat1 cells (Rat1/ras). Application of HR12 resulted in complete restoration of the cytoskeleton and associated cell adhesions disrupted by oncogenic Ras. This included an increase in the number and size of focal adhesions, accompanied by massive stress fiber formation and enhanced tyrosine phosphorylation. Furthermore, HR12 induced assembly of adherens junctions and dramatically elevated the level of the junctional components, cadherin and beta-catenin. HR12 was unable to restore the nontransformed phenotype in cells expressing farnesylation-independent, myristylated Ras. Examination of the main Ras-regulated signaling pathways revealed that HR12 induced a dose- and time-dependent decline in Erk1&2 activation (t(1/2) approximately 6 h), which correlated with the accumulation of nonfarnesylated oncogenic-Ras. Inhibition of the Mek/Erk pathway in Rat1/ras cells, using the Mek inhibitor, PD98059, resulted in complete cytoskeletal recovery, indistinguishable from that induced by HR12. Moreover, a constitutively active Mek mimicked the effect of ras transformation in Rat1 cells, and prevented HR12-induced cytoskeletal effects in Rat1/ras cells. No such effects were observed after treatment of Rat1/ras cells with the phosphatidylinositol 3-kinase inhibitor LY294002. These findings establish the Mek/Erk pathway as the dominant pathway involved in conferring the cytoskeletal and junctional manifestations of the Ras-induced transformed phenotype.

3T3 Cells↗

Consequences of the inhibition of Hdm2 expression in human osteosarcoma cells using antisense oligonucleotides.

The present study was performed to identify a potent and sequence-specific antisense oligonucleotide (ASO), to inhibit Hdm2 expression in human cancer cell lines and to study the downstream consequences. Ten chimeric 2'-O-methoxyethyl (MoE)-modified hemimers were synthesized that targeted various regions from the 5'- to the 3'-end of Hdm2 mRNA. The IC50 of the most potent ASO, NCH-4401, was subsequently determined and compared to the IC50 of a 2'-MoE-modified ASO, with a complete phosphorothioate backbone (NCH-4668), and to a 3 bp mismatched ASO (NCH4529). NCH4401 inhibited Hdm2 expression in SJSA-1 cells with an IC50 of 120 nm, whereas NCH-4668 was less potent with an IC50 of 180 nm. The mismatched control ASO was completely inactive, indicating a sequence-dependent mechanism of action of NCH-4401. NCH4401 was subsequently used to study the consequences of inhibiting Hdm2 expression in human osteosarcoma cells. NCH-4401 completely inhibited Hdm2 protein expression in SJSA-1 cells at a concentration of 300 nm, already 4 h after start of ASO treatment. At an ASO concentration of 300 nM, p53 protein was induced 12.5-fold and p21 was induced 8-fold over background levels, 24 h after start of ASO treatment. The dramatic induction of p53 in SJSA-1 cells prompted us to investigate whether the accumulation of p53 in these cells was followed by induction of apoptosis. However, no signs for apoptosis were detected in SJSA-1 cells, following induction of wild-type p53 using the Yopro method and the induction of caspase-3 activity. SJSA-1 cells were subsequently treated with NCH-4401 at different concentrations in combination with two well-known DNA-damaging agents, i.e. carboplatin and mitomycin C. Apoptosis induction following treatment of cells with DNA-damaging agents and NCH4401 was determined in parallel by measuring caspase-3 activation and uptake of the DNA dye Yopro. Carboplatin and mitomycin C together only slightly induced apoptosis in SJSA-1 cells to a factor of approximately 2-fold, as measured by the induction of caspase-3 activity. The downregulation of Hdm2 expression by NCH4401 did not induce apoptosis on its own and did not potentiate the mitomycin C/carboplatin-induced programmed cell death.

Apoptosis↗

Antitumor activity of a PKC-alpha antisense oligonucleotide in combination with standard chemotherapeutic agents against various human tumors transplanted into nude mice.

A 20-mer phosphorothioate oligodeoxynucleotide (ODN) directed against human protein kinase C-alpha (CGP 64128A = ISIS 3521) was analyzed for its antitumor activity either alone or in combination therapy. Combination studies with CGP 64128A and standard chemotherapeutic agents (cisplatin, mitomycin-C, vinblastine, estracyt and adriamycin) were performed in nude mice that had been transplanted s.c. with a variety of human tumors (breast, prostate, large cell lung and small cell lung carcinomas, and melanomas). Additive antitumor effects with CGP 64128A and the cytotoxins were found for half of the combinations studied. The combination of CGP 64128A with vinblastine or cisplatin showed superadditive antitumor activities against MCF-7 human breast carcinomas and PC3 prostate carcinomas with complete responses. CGP 64128A in combination with adriamycin resulted in superadditive antitumor effects against BT20 human breast carcinomas with complete tumor responses, and in combination with mitomycin-C superadditive antitumor effects with cures were observed against NCI-H460 human large cell carcinomas. The antitumor activity of CGP 64128A appeared to be due to a sequence-dependent mechanism of action as two 20-mer control ODNs were completely inactive as single agents against A549 and NCI-H69 human lung carcinomas. The antitumor activity of cisplatin against NCI-H69 human small cell lung carcinomas was slightly inhibited by one of the control ODNs, indicating that the superadditive antitumor activities of CGP 64128A in combination with cisplatin are the result of a sequence-dependent mechanism of action.

Animals↗

Antitumor activity of a C-raf antisense oligonucleotide in combination with standard chemotherapeutic agents against various human tumors transplanted subcutaneously into nude mice.

A 20-mer phosphorothioate oligodeoxynucleotide (ODN) directed against human C-raf kinase (CGP 69846A or ISIS 5132) was analyzed for its antitumor activity either alone or in combination therapy. Combination studies with CGP 69846A and standard chemotherapeutic agents (cisplatin, mitomycin C, tamoxifen, or Adriamycin) were performed in nude mice that had been transplanted s.c. with a variety of human tumors (breast, prostate, colon, small cell lung, large cell lung, and squamous lung carcinomas). For the majority of the combinations studied, additive antitumor effects with CGP 69846A and the cytotoxins were found. The combination of CGP 69846A with cisplatin or mitomycin C showed superadditive antitumor activities against NCI-H69 small cell lung carcinomas with complete tumor responses. CGP 69846A, in combination with cisplatin, showed superadditive antitumor effects against PC3 human prostate carcinomas with tumor cures, and in combination with mitomycin C, superadditive antitumor effects of CGP 69846A with tumor cures against NCI-H460 large cell lung carcinoma were found. These effects appeared to be sequence-specific because a mismatched control ODN was completely without effect as a single agent against NCI-H69 human small cell lung cancers. The combination of the mismatched control ODN with mitomycin C or cisplatin did not influence the antitumor activity of the cytotoxins against NCI-H69 human small cell lung cancers, indicating that the superadditive antitumor effects observed for CGP 69846A in combination with cisplatin or mitomycin C are the result of a sequence-specific mechanism of action in NCI-H69 human small cell lung cancers.

Animals↗

Sequence-specific antitumor activity of a phosphorothioate oligodeoxyribonucleotide targeted to human C-raf kinase supports an antisense mechanism of action in vivo.

To determine the mechanism of action responsible for the in vivo antitumor activity of a phosphorothioate antisense inhibitor targeted against human C-raf kinase (ISIS 5132, also known as CGP69846A), a series of mismatched phosphorothioate analogs of ISIS 5132 or CGP69846A were synthesized and characterized with respect to hybridization affinity, inhibitory effects on C-raf gene expression in vitro, and antitumor activity in vivo. Incorporation of a single mismatch into the sequence of ISIS 5132 or CGP69846A resulted in reduced hybridization affinity toward C-raf RNA sequences and reduced inhibitory activity against C-raf expression in vitro and tumor growth in vivo. Moreover, incorporation of additional mismatches resulted in further loss of in vitro and in vivo activity in a manner that correlated well with a hybridization-based (i.e., antisense) mechanism of action. These results provide important experimental evidence supporting an antisense mechanism of action underlying the in vivo antitumor activity displayed by ISIS 5132 or CGP69846A.

Animals↗

Inhibition of growth of human tumor cell lines in nude mice by an antisense of oligonucleotide inhibitor of protein kinase C-alpha expression.

A 20-mer phosphorothioate oligodeoxynucleotide (ISIS 3521) designed to hybridize sequences in the 3'-untranslated region of human protein kinase C-alpha (PKC-alpha) mRNA has been shown to inhibit the expression of PKC-alpha in multiple human cell lines. In human bladder carcinoma (T-24) cells, inhibition of PKC-alpha was both concentration dependent and oligonucleotide sequence specific. ISIS 3521 had a IC50 of 50-100 nM for PKC-alpha mRNA reduction and was without effect on the expression of other members of the PKC family of genes (PKC-eta and zeta). Toxicity studies in mice revealed that the oligodeoxynucleotide was well tolerated at repeat doses of 100 mg/kg i.v. for up to 14 days, with no acute toxicity apparent. The oligodeoxynucleotide was found to also inhibit the growth of three different human tumor cell lines, the T-24 bladder, human lung carcinoma (A549), and Colo 205 colon carcinoma grown in nude mice. The inhibition was dose dependent with ID50 values for the growth inhibition between 0.06 and 0.6 mg/kg daily when given i.v., depending on the cell line examined. Three control phosphorothioate oligodeoxynucleotides not targeting human PKC-alpha were without effect on the growth of the tumors at doses as high as 6 mg/kg. Recovery of ISIS 3521 from tumor tissue and resolution by capillary gel electrophoresis revealed that 24 It after the final dose of oligodeoxynucleotide, intact, full-length 20-mer material was present as well as some apparent exonuclease degradation products (e.g., n-1 and n-2 mers). These studies demonstrate the in vivo antitumor effects of an antisense oligodeoxynucleotide targeting PKC-alpha and suggest that this compound may be of value as a chemotherapeutic agent in the treatment of human cancers.

Animals↗

Inhibition of interleukin-1 type I receptor expression in human cell-lines by an antisense phosphorothioate oligodeoxynucleotide.

A 20 mer oligodeoxynucleotide designed to hybridize to specific 3'-untranslated sequences in the type I receptor IL-1r mRNA was identified which inhibited the expression of both IL-1r mRNA and protein in human A549 lung carcinoma cells and human dermal fibroblasts. The oligodeoxynucleotide exhibited an IC50 value of approximately 100 nM in both cell lines and reduced IL-1r mRNA expression for up to 48 h. Multiple scrambled control oligonucleotides were without effect on IL-1r mRNA expression. Treatment of A549 cells with this oligodeoxynucleotide (but not scrambled controls) inhibited the IL-1 stimulated expression of the cell adhesion molecule ICAM-1 but was without effect on the TNF-alpha induction of this molecule. This study demonstrates that phosphorothioate oligodeoxynucleotides can selectively inhibit IL-1r expression leading to a reduction in IL-1 dependent gene expression.

Carcinoma↗

Antitumor activity of a phosphorothioate antisense oligodeoxynucleotide targeted against C-raf kinase.

Substantial evidence exists supporting a direct role for raf kinases in the development and maintenance of certain human malignancies. Here we test the potential of phosphorothioate antisense oligodeoxynucleotides targeted against human C-raf-1 kinase to specifically inhibit C-raf-1 kinase gene expression and tumor progression in cell culture and in vivo, using human tumor xenograft mouse models. Treatment of human tumor cells with appropriate phosphorothioate antisense oligodeoxynucleotides led to specific inhibition of C-raf kinase gene expression in cell culture and in vivo at well-tolerated doses. Moreover, oligodeoxynucleotide treatment resulted in potent antiproliferative effects in cell culture and potent antitumor effects in vivo against a variety of tumor types that were highly consistent with an antisense mechanism of action for these compounds. These studies strongly suggest that antisense inhibitors targeted against C-raf-1 kinase may be of considerable value as antineoplastic agents that display activity against a wide spectrum of tumor types at well-tolerated doses.

Animals↗

Breaking immunologic ignorance to an antigenic peptide of simian virus 40 large T antigen.

Expression of antigenic proteins in the periphery may result in immunologic tolerance, immunologic ignorance, or autoimmunity. It is not clear why some Ags induce tolerance, whereas others activate Ag-reactive T cells. The physical nature of the Ag, the developmental timing of Ag expression, the priming of reactive lymphocytes, and the level of Ag expression are possible factors determining the immunologic response to extra-thymic Ags. Expression of the whole SV40 large T Ag (SV40-T) induces transformation of T antigen-expressing cells in vivo, and this phenomenon has been postulated to be the triggering event that leads to autoimmunity in some transgenic mouse models. Here we present a model in which a nononcogenic, yet antigenic, fragment of the SV40-T (SV40-Tfrag) is expressed specifically in pancreatic islet beta-cells. In contrast to whole SV40-T transgenic mice, SV40-Tfrag mice that are also transgenic for a TCR specific for the SV40-T are ignorant of Ag in vivo. They do not respond in vivo to the tissue-specific SV40-Tfrag Ag even after priming, but are fully responsive in vitro. This immunologic ignorance cannot be broken after activated SV40-T reactive T cells are transferred into sublethally irradiated mice expressing the islet-specific SV40-Tfrag. However, similar adoptive transfer experiments in mice co-expressing B7-1 and SV40-Tfrag on islet cells specifically lead to Ag recognition and diabetes. This demonstrates that in some circumstances the presence of (primed) reactive T cells is not sufficient to break tolerance; rather, costimulation is additionally required to elicit an autoimmune response. This also suggests that SV40-T-induced cellular transformation is important for the autoimmune response directed against SV40-T in other tissue-specific transgenic models.

Animals↗

Mechanisms of immune tolerance induction through the thymic expression of a peripheral tissue-specific protein.

A major process through which the immune system becomes tolerant to self proteins involves the deletion of self reactive cells in the thymus. However, T cells reactive to peripheral tissue-specific proteins can escape this deletion and become tolerized in the periphery by a variety of mechanisms. We report here, contrary to expectation, that the pancreas-specific protein, elastase I, is also expressed at a low level in the thymus, and that this thymic expression contributes to tolerance induction. To study the mechanism of this tolerance induction, we utilized a double transgenic mouse model. In these mice the expression of a model protein, SV40 T antigen, is directed by the elastase I promoter and hence parallels elastase I expression in the pancreas and thymus. These mice were crossed with mice transgenic for a TCR specific for T antigen, so the majority of thymocytes and T cells in these mice express the transgene. In double transgenic mice we find that thymic expression of T antigen results in anergic thymocytes which also show a reduction of Th1 activity with no decrease in Th2 activity. These functional characteristics persist in peripheral T cells, but there is also a depletion in the number of T antigen reactive T cells in lymph nodes. Chimeras were constructed which directly demonstrated that the thymus is the site of tolerance induction and that the tolerizing element is thymic epithelium. We propose that the loss of Th1 activity as a consequence of the thymic epithelium being encountered by tissue-specific proteins results in the functional tolerization of CTL in vivo, despite the fact that CTL are fully functional in vitro. In this way autoimmune destruction is contained. Thymic expression of peripheral proteins may therefore be an additional way in which tolerance to peripheral proteins can be achieved.

Animals↗

CGP 47969A: a novel inhibitor of the synthesis of inflammatory cytokines.

CGP 47969A is a novel piperazine derivative that inhibits the synthesis of inflammatory cytokines, such as interleukin-1 alpha (IL-1), IL-1 beta and tumor necrosis factor alpha (TNF), in human monocytes stimulated with lipopolysaccharide (LPS), zymosan or IL-1 itself. IC50 values are in the range of 0.3-5 mumol/l. CGP 47969A does not inhibit total protein or RNA synthesis indicating selectivity for cytokine inhibition. CGP 47969A exerts its inhibitory effect at a post-transcriptional level, most probably by reducing translational efficiency of IL-beta mRNA, as steady-state levels of IL-1 beta mRNA are not inhibited while the primary translation product, the 31 kD IL-1 beta precursor molecule, is dose-dependently inhibited by CGP 47969A. The compound is devoid of cyclooxygenase and phospholipase A2 inhibitory activity but efficiently inhibits the generation of PGE2 and LTC4 in zymosan-stimulated mouse macrophages with an IC50 of 1.2 and 0.6 mumol/l, respectively. Antagonism of IL-1 and/or TNF is thought to have a beneficial effect on the course of inflammatory diseases. CGP 47969A may therefore represent a mechanistically new approach to the treatment of such diseases.

Animals↗