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Biomedical subjects

Claudia Wickenhauser

Publications and source records attributed to Claudia Wickenhauser.

11 recordsLinked to original sources

Mixed chimerism of bone marrow vessels (endothelial cells, myofibroblasts) following allogeneic transplantation for chronic myelogenous leukemia.

Experimental findings support the hypothesis that within the functional network of the bone marrow (BM) microenvironment the endothelial cells (ECs) exert a pivotal role as gatekeepers by controlling the trafficking and homing of progenitor cells. However, little information is available concerning the origin of ECs after allogeneic bone marrow transplantation (BMT) in CML. To determine the extent of mixed chimerism (MCh) a simultaneous immunohistochemical and fluorescence in-situ hybridization (FISH) study was performed on BM biopsies derived from patients following sex-mismatched BMT with full unmanipulated BM. ECs were identified by their staining with CD34 and the myofibroblasts (MFs) of large vessels were labeled by an antibody against alpha-smooth muscle actin. For sex-typing and demonstration of the bcr/abl fusion product appropriate commercially available probes and detection systems were applied. Contrasting a total congruence of labeling in control samples five patients showed donor type ECs in the early posttransplant period in about 20%. In the remaining four patients the amount of donor type ECs increased slightly after the third month up to 30%. A total of 26 MFs could be identified lining large capillaries and arterioles that exclusively revealed a host origin. Following successful engraftment only very few of the persistent host-derived ECs also displayed the bcr/abl gene. In five patients, a conversion of MCh from donor to host type ECs was recognizable during the evolution of leukemic relapse. This finding was accompanied by a bcr/abl rearrangement of about 10% of these cells. In conclusion, following myelo-ablative therapy, a survival of a considerable number of ECs and MFs of the vessel walls has been found implying persistence of host-derived vascular structures of the BM stroma. However, in only a small proportion bcr/abl+ ECs and thus minimal residual disease was detectable. Evolution of leukemic relapse was characterized by conversion of MCh with almost total loss of donor type ECs and increase in number of bcr/abl+ ECs.

Adult↗

Structural, antigenetic and transcriptional characteristics in peripheral blood CD34+ progenitor cells from polycythemia vera patients: evidence for delayed determination.

Polycythemia vera (PV) is a clonal disorder characterized by trilinear hematopoietic proliferation. PV progenitors are hypersensitive to several growth factors although their receptor expression is reduced or absent. In this study selected CD34+ peripheral blood (PB) cells from PV patients, PB healthy donors and patients with secondary polycythemia (SP) were investigated and compared concerning frequency, morphology, antigen expression, transcription of differentiation markers and proliferation as well as apoptosis rate following short-term culture. The highest amount of CD34+ cells was found in the SP group while the frequency was slightly lower but more variable in PV. Native PV CD34+ cells varied in shape and form and developed intracytoplasmatic organelles like mitochondria and a more extended Golgi apparatus while in the other groups they constituted a uniform phenotype. However, no premature transcripts for glycophorin A (GypA) and CD41b, both markers for advanced erythropoiesis and megakaryopoiesis, could be detected in sorted PV progenitors. Also, coexpression for early acting hematopoietic cytokine receptors IL-3Ralpha and c-Kit and for initial erythropoiesis (GypC) or megakaryopoiesis (CD61) was similar in the different groups. Performing 96 h cocultures with bone marrow (BM) fibroblasts the frequency of CD34+ cells was elevated, downregulation of IL-3Ralpha delayed, coexpression of GypC reduced and proliferative activity higher in the PV group. Our results suggest that primitive hematopoiesis is altered in PV because PB CD34+ cells in this disease are characterized by a maturation dissociation with increased activation in untreated populations and a delayed differentiation in short-term cultures.

Adult↗

Phase 1 trial of the novel bispecific molecule H22xKi-4 in patients with refractory Hodgkin lymphoma.

CD30 is an excellent target for immunotherapy of Hodgkin lymphoma (HL) because it is overexpressed on Hodgkin and Reed-Sternberg cells. We developed a novel bispecific molecule (BSM) consisting of F(ab') fragments derived from the murine anti-CD30 monoclonal antibody (MoAb) Ki-4 and the humanized CD64-specific MoAb H22. In vitro experiments of H22xKi-4 demonstrated specific phagocytosis of HL-derived cell lines. Patients (pts) with refractory CD30(+) HL were treated with escalating doses of H22xKi-4 at doses of 1, 2.5, 5, 10, and 20 mg/m(2)/d, respectively (administered intravenously on days 1, 3, 5, and 7). The main study objectives were to determine the maximum tolerated dose and the dose-limiting toxicities of H22xKi-4, to define its pharmacokinetic profile, and to document clinical response. Ten pts were enrolled and are evaluable for toxicity and response. Side effects were transient and mild with hypotension (4 of 10), tachycardia (6 of 10), fatigue (10 of 10), and fever (2 of 10 grade I, 3 of 10 grade II). Pharmacokinetic (PK) data revealed an elimination half-life of 11.1 hours, resulting in a significant accumulation of H22xKi-4. The BSM was shown to bind to both monocytes and malignant cells. Response to H22xKi-4 included 1 complete remission (CR), 3 partial remissions (PR), and 4 pts with stable disease. The new BSM H22xKi-4 can be given safely to pts with refractory CD30(+) HL in doses up to 80 mg/m(2) per cycle. Although this dose is not the maximum tolerated dose (MTD) as defined by toxicity criteria, surrogate parameters suggest a biologic effective regimen. H22xKi-4 shows activity in heavily pretreated HL patients warranting further clinical evaluation.

Adult↗

Mixed chimerism of bone marrow CD34+ progenitor cells (genotyping, bcr/abl analysis) after allogeneic transplantation for chronic myelogenous leukemia.

BACKGROUND: Although CD34 progenitors play a crucial role during bone marrow transplantation (BMT), there is only scant knowledge concerning their lineage-restricted mixed chimerism (MCh). METHODS: An immunohistochemical and fluorescence in situ hybridization study was performed on bone marrow biopsies derived from 11 patients with chronic myelogenous leukemia after sex-mismatched BMT to quantify the CD34 cell population and their expression. After proper identification by a lineage-specific monoclonal antibody, X chromosome- and Y chromosome-specific probes were used for sex typing and for labeling of the locus commercially available detection systems were applied. RESULTS: After successful engraftment, 241 progenitor cells were identified at days 9 to 586 of the posttransplant period. Overall incidence of MCh was 24% with a tendency to decline after day 100 to 15%. The gene was detectable in only 10% of these precursors and decreased to less than 4% after more than 6 months. Approximately 0.5 to 5.5 years after BMT in six patients, a manifest leukemic relapse occurred, which was accompanied by a conversion of donor-to-host-type progenitors. This phenomenon involved up to 94% of the 303 evaluable CD34 cells and also included a retrieval of the translocation gene in approximately 50% of this population. CONCLUSION: The lineage-restricted MCh of progenitors after BMT is in keeping with the assumption that leukemic (bcr/abl ) precursors represent only a fraction of the total host-derived (chimeric) CD34 cells. These residual clonally transformed progenitors survive myeloablative treatment and thus may be the source for a later relapse.

Adult↗

Murine acute graft-versus-host disease can be prevented by depletion of alloreactive T lymphocytes using activation-induced cell death.

Depletion of T lymphocytes from allogeneic bone marrow transplants successfully prevents the development of graft-versus-host disease (GvHD) but is associated with impaired engraftment, immunosuppression, and abrogation of the graft-versus-leukemia effect. We therefore explored the possibility of selectively eliminating alloreactive T cells by CD95/CD95L-mediated activation-induced cell death (AICD) in a major histocompatibility complex allogeneic murine model system. Activation of resting or preactivated T lymphocytes from C3H/HeJ (H-2(k)) mice was induced with irradiated BALB/cJ (H-2(d)) mouse-derived stimulators. Substantial decrease (> or = 80%) of proliferative and lytic responses by activated alloreactive T cells was subsequently achieved by incubating the mixed lymphocyte culture with an agonistic monoclonal antibody to CD95, and residual T cells recovered did not elicit alloreactivity upon challenge to H-2(d). Depletion of alloreactive T lymphocytes by AICD was specific because reactivity to an I-A(d)-restricted ovalbumin (OVA) peptide by OVA-specific CD4(+) T cells mixed into the allogeneic T-cell pool and subjected to induction of AICD in the absence of OVA peptide could be preserved. Adoptive transfer of donor-derived allogeneic T lymphocytes, depleted from alloreactive T cells by AICD in vitro, in the parent (C3H/He) to F(1) (C3H/He x BALB/c) GvHD model prevented lethal GvHD. The results presented suggest that alloreactive T cells can effectively be depleted from allogeneic T cells by induction of AICD to prevent GvHD and might introduce a new strategy for the separation of GvH-reactive T cells and T cells mediating antiviral and possibly graft-versus-leukemia effects.

Adoptive Transfer↗

Mixed chimerism of the resident macrophage population after allogeneic bone marrow transplantation for chronic myeloid leukemia.

BACKGROUND: Bone marrow macrophages have been recognized to play a crucial role in the functional network that constitutes the microenvironment. In chronic myelogenous leukemia (CML), neoplastic macrophages are presumably responsible for the expansion of the leukemic cell clone. So far, no information is available about a persistence of host-type macrophages after allogeneic bone marrow transplantation (BMT) implicating a lineage-specific mixed chimerism. METHODS: Bone marrow trephine biopsies were investigated in eight male and five female patients with CML after BMT after a sex-mismatched host/donor constellation. Techniques included immunophenotyping (CD68) for identification of resident macrophages and a simultaneous genotyping with X- and Y-chromosome-specific DNA-probes (fluorescence in situ hybridization). Normal bone marrow and specimens of CML patients before BMT served as controls. RESULTS: Contrasting an almost 100% congruence with the genotyping in the controls, a mixed chimerism of the CD68+ macrophages and the other host myeloid cells was found. Until 3 months after BMT, incidence of host-type macrophages ranged from 8% to 10%. This feature was also identifiable in the peculiar subset of pseudo-Gaucher cells (PGCs). The number of host-type macrophages failed to decline significantly during the early posttransplant period, because after almost 4 months these were still detectable. On the other hand, in patients showing an initial-to-manifest leukemic relapse, an insidious conversion of up to 50% from the donor to host-type macrophages and myeloid cells occurred. CONCLUSIONS: The CD68+ resident bone marrow macrophage population including PGCs are involved in the lineage-specific chimerism and minimal residual disease after BMT in CML.

Biopsy, Needle↗

Proficient mismatch repair protein expression in Hodgkin and Reed Sternberg cells.

Hodgkin and Reed-Sternberg (H/RS) cells are characterized by chromosomal instability. Nevertheless, neither specific nor consistent chromosomal alterations could be characterized in H/RS cells. Microsatellite instability (MSI) is another form of genomic instability but its role in the pathogenesis of classical Hodgkin's disease (cHD) has not been investigated so far. We analyzed MSI and mismatch repair (MMR) protein expression in H/RS cells of cHD in order to assess genomic instability in these cells. Using a sensitive single cell approach, MSI-low was detected in a portion of single cells of the H/RS cell line L1236. Mutations of genes encoding for hMSH2 and hMLH1 were excluded by RT-PCR in L1236 cells. An analysis of pooled single H/RS cells of seven primary cases of cHD showed loss of heterozygosity for some allelic markers but absence of MSI in all 7 cases. Owing to a tight correlation between MSI-high, inactivating mutations of MMR genes and MMR protein expression in colon cancer, MMR protein expression commonly is used as a marker for MSI. In order to screen additional primary cases of cHD for MSI, we performed immunohistochemistry for hMSH2 and hMLH1 in 6 of the 7 cases analyzed by single cell PCR and 20 additional cases of cHD. H/RS cells from 25 out of 26 cases showed a nuclear staining pattern for hMSH2 and hMLH1 similar to germinal center B cells of non-malignant lymph nodes. These results indicate a proficient MMR system in most H/RS cells. It is concluded that a defect MMR system is unlikely to contribute to the malignant phenotype and genomic instability of H/RS cells in cHD.

Adaptor Proteins, Signal Transducing↗

Identification of activated matrix metalloproteinase-2 (MMP-2) as the main gelatinolytic enzyme in malignant melanoma by in situ zymography.

The involvement of extracellular matrix-degrading enzymes, such as matrix metalloproteinases and serine proteases, during tumour progression and metastasis is well established. In particular, the activation of pro-matrix metalloproteinase (MMP)-2 on the surface of malignant cells by membrane-bound MT1-MMP has been shown to contribute to the invasive abilities of various tumours. This study presents evidence that in tissue of malignant melanomas, increased effective gelatinolytic activity is mainly located at sites where melanoma cells interact with the surrounding extracellular matrix. Forty-one primary melanomas (30 superficial spreading and 11 nodular type) and six lymph node metastases were investigated by a modified technique of gelatin in situ zymography. This technique localizes areas of effective proteolytic activity within tissue sections. In 28/41 (68%) primary melanomas and in 6/6 (100%) metastases, considerable proteolysis was detected at the invading part of the tumour and especially at sites of tumour-stroma interactions, whereas no or only weak proteolytic activity was localized within the centres of solid nests of tumour cells. Zymographic analysis of extracts obtained from different areas of microdissected melanoma specimens identified activated MMP-2 as the enzyme responsible for this activity. Immunohistochemical analysis detected strong staining for MMP-2 and MT1-MMP, even in areas in which no proteolytic activity was found by in situ zymography, emphasizing the importance of more functional techniques for the investigation of balanced proteolytic systems. This technology makes it possible to draw conclusions regarding the balance between activated proteases and inhibitors, which are frequently found to be present together in close proximity in vivo.

Biopsy↗

Constitutive expression of c-FLIP in Hodgkin and Reed-Sternberg cells.

Crosslinking of the transmembrane receptor CD95/Fas leads to activation of a signaling cascade resulting in apoptosis. c-FLIP is a recently described protein that potently inhibits Fas-mediated apoptosis and has been shown to be a key factor in germinal center B cell survival. Because Hodgkin and Reed-Sternberg cells in classical Hodgkin's disease (cHD) are also resistant to Fas-mediated apoptosis we studied the role of c-FLIP in classical HD. High levels of c-FLIP protein were identified in two Fas-resistant Hodgkin-derived cell lines. In contrast to other tumor cells, inhibition of protein synthesis by cycloheximide did not lead to down-regulation of c-FLIP protein in these HD cell lines. Furthermore, Fas-mediated apoptosis was only partially restored suggesting that normal regulation of c-FLIP was disrupted. The in vivo relevance of these findings was supported by demonstration of significant c-FLIP expression by immunohistochemistry in 18 of 19 evaluable cases of primary HD. Taken together, c-FLIP is constitutively expressed in HD and may therefore be a major mechanism responsible for Fas-resistance in HD.

Adolescent↗