3 resultados para Clinical response

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Therapeutisches Drug Monitoring (TDM) ist eine Maßnahme, bei der durch Messung der Medikamentenspiegel im Blut die Dosis ermittelt wird, bei der mit höchster Wahrscheinlichkeit mit Therapieansprechen gerechnet werden kann. Dabei wird angenommen, dass die Konzentrationen im Blut mit denen im Wirkkompartiment korrelieren. Für Antipsychotika wurde gezeigt, dass die Konzentrationen im Blut direkt mit denen im Gehirn korrelieren, die Verteilung zwischen den beiden Kompartimenten ist jedoch für die verschiedenen Antipsychotika sehr unterschiedlich. Die Distribution von Arzneistoffen zwischen Blut und Gehirn wird durch Effluxtransporter in der Blut-Hirn-Schranke kontrolliert. Welche Rolle dabei P-Glykoprotein (P-gp) für die Verteilung von atypischen Antipsychotika spielt und wie die Pharmakokinetik und –dynamik durch diesen Transporter beeinflusst werden, sollte in dieser Arbeit untersucht werden. Für die Messung des neu eingeführten Antipsychotikums Aripiprazol, sowie für seinen aktiven Metaboliten Dehydroaripiprazol, wurde eine hochleistungsflüssigchromatographische (HPLC) Methode mit Säulenschaltung und spektrophotometrischer Detektion etabliert. Die Methode wurde für die Messung von Serumproben schizophrener Patienten eingesetzt, um einen therapeutischen Bereich für Aripiprazol zu ermitteln. Aus der Analyse von 523 Patientenproben wurde herausgefunden, dass Aripiprazol-Serumkonzentrationen von 150 bis 300 ng/ml mit gutem klinischen Ansprechen und einem geringen Risiko für Nebenwirkungen einhergingen. Weiterhin wurde festgestellt, dass die Serumspiegel bei gleichzeitiger Gabe von Inhibitoren und Induktoren der Cytochrom P450 (CYP) Isoenzyme CYP2D6 und CYP3A4 erhöht bzw. gesenkt wurden. Am Modell der P-gp Knockout Maus im Vergleich zu FVB Wildtyp Mäusen wurden Konzentrationsverläufe von Antipsychotika nach i.p. Gabe von Amisulprid, Aripiprazol, Dehydroaripiprazol, Clozapin, Desmethylclozapin, Haloperidol, Olanzapin, Quetiapin, Risperidon und 9-Hydroxyrisperidon sowie der Kontrollsubstanz Domperidon im Gehirn und Blut über 24 Stunden mittels HPLC-Methoden gemessen. Welchen Einfluss eine verminderte Expression von P-gp auf die Pharmakodynamik hat, wurde in zwei Verhaltenstests untersucht. Mit Hilfe des Rotarods wurden motorische Effekte der Arzneistoffe erfasst und mittels Radial Arm Water Maze kognitive Fähigkeiten. Risperidon und sein aktiver Metabolit 9-Hydroxyrisperidon waren die stärksten Substrate von P-gp. 10-fach höhere Konzentrationen im Gehirn der P-gp Knockout Mäuse führten zu 10-fach stärkeren Beeinträchtigungen in den pharmakodynamischen Untersuchungen im Vergleich zu Wildtyp Tieren. Amisulprid, Aripiprazol, Dehydroaripiprazol, Desmethylclozapin und Quetiapin konnten ebenfalls als Substrate von P-gp identifiziert werden. Olanzapin, Haloperidol und Clozapin wurden durch P-gp wenig bzw. nicht in ihrer Pharmakokinetik und –dynamik beeinflusst. Da P-gp von Nagern und Menschen nach derzeitiger Kenntnis in ihren Substrateigenschaften weitgehend übereinstimmen, muss bei einer Behandlung von schizophrenen Patienten mit Antipsychotika, die als Substrate von P-gp identifiziert wurden, davon ausgegangen werden, dass eine Veränderung der Expression oder Aktivität von P-gp, genetisch verursacht oder durch Medikamente bedingt, für das Therapieansprechen oder das Auftreten von Nebenwirkungen bedeutsam sind.

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Chondrocytes live isolated in the voluminous extracellular matrix of cartilage, which they secrete and is neither vascularized nor innervated. Nutrient and waste exchanges occur through diffusion leading to low oxygen tension around the cells. Consequently even normal cartilage under normal physiological conditions suffers from a poor reparative potential that predisposes to degenerative conditions, such as osteoarthritis of the joints, with significant clinical effects.rnOne of the key challenges in medicine is the structural and functional replacement of lost or damaged tissues. Current therapeutical approaches are to transplant cells, implant bioartificial tissues, and chemically induce regeneration at the site of the injury. None of them reproduces well the biological and biomechanical properties of hyaline cartilage.rnThis thesis investigates the re-differentiation of chondrocytes and the repair of cartilage mediated by signaling molecules, biomaterials, and factors provided in mixed cellular cultures (co-culture systems). As signaling molecules we have applied prostaglandin E2 (PGE2) and bone morphogenetic protein 1 (BMP-1) and we have transfected chondrocytes with BMP-1 expressing vectors. Our biomaterials have been hydrogels of type-I collagen and gelatin-based scaffolds designed to mimic the architecture and biochemistry of native cartilage and provide a suitable three-dimensional environment for the cells. We have brought chondrocytes to interact with osteosarcoma Cal 72 cells or with murine preosteoblastic KS483 cells, either in a cell-to-cell or in a paracrine manner.rnExogenous stimulation with PGE2 or BMP-1 did not improve the differentiation or the proliferation of human articular chondrocytes. BMP-1 induced chondrocytic de-differentiation in a dose-dependent manner. Prostaglandin stimulation from gelatin-based scaffolds (three-dimensional culture) showed a certain degree of chondrocyte re-differentiaton. Murine preosteoblastic KS483 cells had no beneficial effect on human articular chondrocytes jointly cultivated with them in hydrogels of type I collagen. Although the hydrogels provided the chondrocytes with a proper matrix in which the cells adopted their native morphology; additionally, the expression of chondrocytic proteoglycan increased in the co-cultures after two weeks. The co-culture of chondrocytes with osteoblast-like cells (in transwell systems) resulted in suppression of the regular de-differentiation program that passaged chondrocytes undergo when cultured in monolayers. Under these conditions, the extracellular matrix of the chondrocytes, rich in type-II collagen and aggrecan, was not transformed into the extracellular matrix characteristic of de-differentiated human articular chondrocytes, which is rich in type-I collagen and versican.rnThis thesis suggests novel strategies of tissue engineering for clinical attempts to improve cartilage repair. Since implants are prepared in vitro (ex-vivo) by expanding human articular chondrocytes (autologous or allogeneic), we conclude that it will be convenient to provide a proper three-dimensional support to the chondrocytes in culture, to supplement the culture medium with PGE2, and to stimulate chondrocytes with osteoblastic factors by cultivating them with osteoblasts.rn

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In allogeneic hematopoietic stem cell transplantation (allo-HSCT), alloreactive T lymphocytes of donor origin mediate the beneficial graft-versus-leukemia effect but also induce graft-versus-host disease (GvHD). Since human leukocyte antigens (HLA) mismatch alleles represent major targets of alloreactive T lymphocytes, patient and donor are usually matched for the class I molecules A, B, C, and for the class II molecules DRB1 and DQB1, in order do reduce the risk of GvHD. The HLA-DPB1 locus, however, is still ignored in donor selection. Interestingly, clinical studies have demonstrated that disparities at HLA-DQB1 alleles as well as distinct HLA DPB1 mismatch constellations do not adversely affect the outcome of allo-HSCT. It has also been shown that HLA class II is predominantly expressed on hematopoietic cells under non-inflammatory conditions. Therefore, this PhD thesis focused on the application of CD4 T cells in adoptive immunotherapy of leukemias.rnIn the first part of this thesis we developed a rapid screening approach to detect T-cell reactivity of donors to single HLA class II mismatch alleles. Allo-HLA reactivity was measured in naive, memory, and entire CD4 T cells isolated from PBMC of healthy donors by flow cytometric cell sorting according to expression of the differentiation markers CD45RA, CD45RO, CD62L, and CCR7. T-cell populations were defined by a single marker to facilitate translation into a clinical-grade allo-depletion procedure. Alloreactivity to single HLA-DR/-DQ mismatch alleles was analyzed in short-term mixed lymphocyte reactions (MLR) in vitro. As standard antigen-presenting cells, we used the HLA-deficient cell line K562 upon electroporation with single HLA-DR/-DQ allele mRNA. We observed in IFN-γ ELISpot assays that allo-HLA-reactivity preferentially derived from subsets enriched for naive compared to memory T cells in healthy donors, irrespective of the HLA mismatch allele. This separation was most efficient if CD62L (P=0.008) or CD45RA (P=0.011) were used as marker. Median numbers of allo-HLA-reactive effector cells were 3.5-fold and 16.6-fold lower in CD62Lneg and CD45RAneg memory CD4 T cells than in entire CD4 T cells, respectively. In allele-specific analysis, alloreactivity to single HLA-DR alleles clearly exceeded that to HLA-DQ alleles. In terms of alloproliferation no significant difference could be observed between individual CD4 T-cell subsets. rnThe second part of this thesis dealed with the generation of allo-HLA-DQ/-DP specific CD4 T cells. Naive CD45RApos CD4 T cells isolated from healthy donor PBMC by flow cytometric cell sorting were stimulated in MLR against single allo-HLA-DQ/-DP alleles transfected into autologous mature monocyte-derived dendritic cells by mRNA electroporation. Rapidly expanding HLA-DQ/-DP mismatch reactive T cells significantly recognized and cytolysed primary acute myeloid leukemia (AML) blasts, fibroblasts (FB) and keratinocytes (KC) in IFN-γ ELISpot and 51chromium release assays if the targets carried the HLA DQ/ DP allele used for T cell priming. While AML blasts were recognized independent of pre-incubating them with IFN-γ, recognition of FB and KC required IFN-γ pre treatment. We further investigated HLA class II expression on hematopoietic and non-hematopoietic cells by flow cytometry. HLA class II was not detected on primary FB, KC, and non-malignant kidney cells, but was expressed at significant levels on primary AML blasts and B-LCL. Up-regulation of HLA class II expression was observed on all cell types after pre-incubation with IFN-γ.rnIn summary, the novel K562-HLA based MLR approach revealed that naive-depleted CD4 T-cell subsets of healthy individuals contain decreased allo-HLA reactivity in vitro. We propose the application of CD45RAneg naive-depleted CD4 T cells as memory T cell therapy, which might be beneficial for HLA-mismatched patients at high-risk of GvHD and low-risk of leukemia relapse. Memory T cells might also provide important post-transplant immune functions against infectious agents. Additionally, the screening approach could be employed as test system to detect donors which have low risks for the emergence of GvHD after allo-HSCT. In the second part of this thesis we developed a protocol for the generation of allo-HLA-DQ/-DP specific CD4 T cell lines, which could be applied in situations in which patient and donor are matched in all HLA alleles but one HLA-DQ/-DP allele with low GvHD potential. These T cells showed lytic activity to leukemia cells while presumably sparing non-hematopoietic tissues under non-inflammatory conditions. Therefore, they might be advantageous for allo-HSCT patients with advanced stage AML after reduced-intensity conditioning and T-cell depletion for the replenishment of anti-leukemic reactivity if the risk for disease relapse is high. rn