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Die Bande q23 auf Chromosom 11 ist in zahlreiche reziproke chromosomale Translokationen verwickelt. Diese sind dominant mit dem Krankheitsphänotyp einer AML, ALL und seltener mit malignen Lymphomen und myelodysplastischen Syndromen assoziiert. Mittlerweile sind fünfundachtzig cytogenetische Aberrationen der Bande 11q23 bekannt. Das auf 11q23 betroffene Gen wird als das Mixed Lineage Leukemia (MLL), Acute Lymphoblastic Leukemia (ALL-1), Human Homolog of trithorax (HRX) oder als Human Trithorax 1 (Htrx1) bezeichnet. Die häufigsten Partnergene des MLL sind AF4 (40 %), AF9 (27 %), sowie ENL, AF6, ELL und AF10 (4-7 %).
Die Bruchpunkte von t(11;V) Translokationen sind nicht gleichmäßig über das gesamte, 92 kb große humane MLL-Gen verteilt, sondern liegen alle in der 8,3 kb großen Bruchpunktsregion Bpr. Auch innerhalb der Bpr ist die Verteilung der Translokationsbruchpunkte nicht homogen. Die Bruchpunkte von Patienten mit de novo Leukämien und einem Alter über einem Jahr liegen mehrheitlich in der 5’-Hälfte der Bpr, dem Subcluster I. Dagegen liegen die Bruchpunkte von Patienten mit therapiebedingten Leukämien und einem Alter unter einem Jahr überwiegend in der 3’-Hälfte der Bpr, dem Subcluster II.
Neuere Forschungsergebnisse zeigten, daß DNA-Doppelstrangbrüche auf zwei verschiedenen Chromosomen eine hinreichende Voraussetzung für das Entstehen chromosomaler Translokationen sind. Aufgrund der inhomogenen Verteilung der Translokationsbruchpunkte im MLL-Gen stellte sich die Frage, ob bestimmte Regionen dieses Gens für DNA-Doppelstrangbrüche prädisponiert sind. Interessanterweise ist Subcluster II extrem sensitiv gegenüber DNA-Doppelstrangbrüchen, die durch cytotoxische Agenzien oder Apoptose-auslösende Ereignisse induziert werden können. In unserer Arbeitsgruppe konnte eine etwa 200 bp große Region lokalisiert werden, über die sich nahezu alle Etoposid-induzierten DNA-Doppelstrangbrüche verteilten.
In dieser Arbeit konnte gezeigt werden, daß die Bildung von DNA-Doppelstrangbrüchen in dieser Region durch die Gabe eines Caspase-Inhibitors gehemmt werden kann. Eine Etoposid-induzierte Protein-DNA-Wechselwirkung konnte allerdings nicht nachgewiesen werden. In der Literatur fanden sich Hinweise darauf, daß Subcluster II im Gegensatz zu Subcluster I eine verstärkte Histonacetylierung aufweist. Basierend auf diesen Hinweisen sollte die Arbeitshypothese untersucht werden, ob Subcluster II einen geninternen Promotor des MLL-Gens darstellt.
Die potentielle Promotorregion wurde zunächst durch Computeranalysen eingegrenzt. Mit RT-PCR Experimenten wurde anschließend der potentielle geninterne Promotor des murinen Mll-Gens in einer murinen Fibroblastenzellinie lokalisiert, die einen Transkriptionsstop und eine Polyadenylierungssequenz in Exon 4 des Mll-Gens trug. Um die am Mausmodell gewonnenen Erkenntnisse auch im humanen System zu überprüfen, wurde die geninterne Promotorregion des humanen MLL Gens vor ein Luciferasereportergen kloniert. Durch RTPCR konnte der geninterne Transkriptionsstart im Subcluster II des humanen MLL-Gens lokalisiert werden. Damit konnte zum ersten Mal gezeigt werden, daß Transkriptionsinitiation und genetische Instabilität im Subcluster II des humanen MLL-Gens kolokalisieren.
Durch Deletionsmutanten wurde die Bedeutung der einzelnen Module dieser Promotorregion ermittelt. Dabei zeigte sich, daß die Anwesenheit von zwei retromobilen Elementen eine Enhancer-Funktion haben. Demgegenüber zeigte die homologe murine Sequenz, die in unserer Arbeitsgruppe gleichzeitig von S. Scharf untersucht wurde und für die keine erhöhte Anfälligkeit für DNA-Doppelstrangbrüche bekannt ist, nur eine schwache Promotoraktivität. Dies weist auf einen Zusammenhang zwischen der genetischen Instabilität von Subcluster II und der Rate geninterner Transkriptionsinitiationsprozesse hin.
Das Protein, für das das Transkript des geninternen murinen Promotors kodiert, wurde mittels immunhistologischer und Western Blot Experimente nachgewiesen. Dabei konnte gezeigt werden, daß dieses Protein, wie auch das MLL-Protein, proteolytisch durch Taspase1 und daß sich ein Mini-MLL-Komplex bildet.
Das CD-44-Molekül ist ein membranständiger Oberflächenrezeptor, der als Adhäsionselement von Tumorzellen im Rahmen der Metastasierung genutzt wird. Berichte verweisen auf eine direkte Korrelation zwischen CD-44-Expression eines Tumors und der klinischen Prognose. Darüber hinaus kann der CD-44-Rezeptor auch intrazelluläre Signalwege aktivieren, und als solches Signalelement in die Regulation des Zellzyklus eingreifen.
Im Rahmen der vorliegenden Arbeit wurde postuliert, dass der CD-44-Rezeptor zellzyklusabhängige Veränderungen erfährt und sich daraus Modifikationen des Adhäsionsverhaltens von Tumorzellen ergeben.
Repräsentativ wurde an der Magenkarzinom-Zell-Linie MKN-45 die CD-44-Expression bzw. dessen Splice-Varianten während des Zellzyklus fluorometrisch untersucht (FACS-Analyse, konfokale Laserscan-Mikroskopie). Parallel wurde das Adhäsionsverhalten an isolierten und kultivierten humanen Endothelzellen evaluiert. Die Tumorzellen wurden zuvor mittels Aphidicolin synchronisiert. Als Kontrolle dienten nicht-synchronisierte Zellen.
Die Untersuchungen verdeutlichten eine spezifische Expression der CD-44-Varianten CD44v4, CD44v5, CD44v7. Die Inkubation der Tumorzellen mit Aphidicolin bewirkte eine ausgeprägte Akkumulation von MKN-45-Zellen in der S-Phase. Nach Absetzen des Aphidicolins und Freisetzung in den Zellzyklus kam es zur signifikanten zyklusabhängigen Modulation der Rezeptorexpression. CD44v4, CD44v5 und CD44v7 waren in der G2/MPhase gegenüber der G0/G1- und S-Phase deutlich vermehrt auf der Membran detektierbar. In der G2/M-Phase erhöhte sich zudem signifikant die Adhäsionskapazität der MKN-45-Zellen. Blockadestudien mit gegen die CD-44-Varianten gerichteten monoklonalen Antikörpern belegten die CD-44-abhängige Tumorzell-Endothelzell-Interaktion.
Die Studien belegen zumindest am in vitro Zellkulturmodell die zellzyklus-gesteuerte CD-44-Expression und CD-44-abhängige Invasionseigenschaften von Tumorzellen. Es lässt sich daraus ableiten, dass eine anti-tumorale Therapie an zuvor synchronisierten Tumorzellen womöglich besonders effektiv sein kann. Auch die pharmakologische Blockade des CD-44-Rezeptors könnte einen anti-tumoralen Effekt besitzen.
Calreticulin is a Ca2+ -binding chaperone that resides in the lumen of the endoplasmic reticulum and is involved in the regulation of intracellular Ca2+ homeostasis and in the folding of newly synthesized glycoproteins. In this study, we have used site-specific mutagenesis to map amino acid residues that are critical in calreticulin function. We have focused on two cysteine residues (Cys(88) and Cys(120)), which form a disulfide bridge in the N-terminal domain of calreticulin, on a tryptophan residue located in the carbohydrate binding site (Trp(302)), and on certain residues located at the tip of the "hairpin-like" P-domain of the protein (Glu(238), Glu(239), Asp(241), Glu(243), and Trp(244)). Calreticulin mutants were expressed in crt(-/-) fibroblasts, and bradykinin-dependent Ca2+ release was measured as a marker of calreticulin function. Bradykinin-dependent Ca2+ release from the endoplasmic reticulum was rescued by wild-type calreticulin and by the Glu(238), Glu(239), Asp(241), and Glu(243) mutants. The Cys(88) and Cys(120) mutants rescued the calreticulin-deficient phenotype only partially ( approximately 40%), and the Trp(244) and Trp(302) mutants did not rescue it at all. We identified four amino acid residues (Glu(239), Asp(241), Glu(243), and Trp(244)) at the hairpin tip of the P-domain that are critical in the formation of a complex between ERp57 and calreticulin. Although the Glu(239), Asp(241), and Glu(243) mutants did not bind ERp57 efficiently, they fully restored bradykinin-dependent Ca2+ release in crt(-/-) cells. This indicates that binding of ERp57 to calreticulin may not be critical for the chaperone function of calreticulin with respect to the bradykinin receptor.
NAD(P)H oxidase, the main source of reactive oxygen species in vascular cells, is known to be regulated by redox processes and thiols. However, the nature of thiol-dependent regulation has not been established. Protein disulfide isomerase (PDI) is a dithiol/disulfide oxidoreductase chaperone of the thioredoxin superfamily involved in protein processing and translocation. We postulated that PDI regulates NAD(P)H oxidase activity of rabbit aortic smooth muscle cells (VSMCs). Western blotting confirmed robust PDI expression and shift to membrane fraction after incubation with angiotensin II (AII, 100 nm, 6 h). In VSMC membrane fraction, PDI antagonism with bacitracin, scrambled RNase, or neutralizing antibody led to 26-83% inhibition (p < 0.05) of oxidase activity. AII incubation led to significant increase in oxidase activity, accompanied by a 6-fold increase in PDI refolding isomerase activity. AII-induced NAD(P)H oxidase activation was inhibited by 57-71% with antisense oligonucleotide against PDI (PDIasODN). Dihydroethidium fluorescence showed decreased superoxide generation due to PDIasODN. Confocal microscopy showed co-localization between PDI and the oxidase subunits p22(phox), Nox1, and Nox4. Co-immunoprecipitation assays supported spatial association between PDI and oxidase subunits p22(phox), Nox1, and Nox4 in VSMCs. Moreover, in HEK293 cells transfected with green fluorescent protein constructs for Nox1, Nox2, and Nox4, each of these subunits co-immunoprecipitated with PDI. Akt phosphorylation, a known downstream pathway of AII-driven oxidase activation, was significantly reduced by PDIasODN. These results suggest that PDI closely associates with NAD(P)H oxidase and acts as a novel redox-sensitive regulatory protein of such enzyme complex, potentially affecting subunit traffic/assembling.
Excessive accumulation of the extracellular matrix is a hallmark of many inflammatory and fibrotic diseases, including those of the kidney. This study addresses the question whether NO, in addition to inhibiting the expression of MMP-9, a prominent metalloprotease expressed by mesangial cells, additionally modulates expression of its endogenous inhibitor TIMP-1. We demonstrate that exogenous NO has no modulatory effect on the extracellular TIMP-1 content but strongly amplifies the early increase in cytokine-induced TIMP-1 mRNA and protein levels. We examined whether transforming growth factor beta (TGFbeta), a potent profibrotic cytokine, is involved in the regulation of NO-dependent TIMP-1 expression. Experiments utilizing a pan-specific neutralizing TGFbeta antibody demonstrate that the NO-induced amplification of TIMP-1 is mediated by extracellular TGFbeta. Mechanistically, NO causes a rapid increase in Smad-2 phosphorylation, which is abrogated by the addition of neutralizing TGFbeta antisera. Similarly, the NO-dependent increase in Smad-2 phosphorylation is prevented in the presence of an inhibitor of TGFbeta-RI kinase, indicating that the NO-dependent activation of Smad-2 occurs via the TGFbeta-type I receptor. Furthermore, activation of the Smad signaling cascade by NO is corroborated by the NO-dependent increase in nuclear Smad-4 level and is paralleled by increased DNA binding of Smad-2/3 containing complexes to a TIMP-1-specific Smad-binding element (SBE). Reporter gene assays revealed that NO activates a 0.6-kb TIMP-1 gene promoter fragment as well as a TGFbeta-inducible and SBE-driven control promoter. Chromatin immunoprecipitation analysis also demonstrated DNA binding activity of Smad-3 and Smad-4 proteins to the TIMP-1-specific SBE. Finally, by enzyme-linked immunosorbent assay, we demonstrated that NO causes a rapid increase in TGFbeta(1) levels in cell supernatants. Together, these experiments demonstrate that NO by induction of the Smad signaling pathway modulates TIMP-1 expression.
The tumor necrosis factor family member Fas ligand (FasL) induces apoptosis in Fas receptor-expressing target cells and is an important cytotoxic effector molecule used by CTL- and NK-cells. In these hematopoietic cells, newly synthesized FasL is stored in specialized secretory lysosomes and only delivered to the cell surface upon activation and target cell recognition. FasL contains an 80-amino acid-long cytoplasmic tail, which includes a proline-rich domain as a bona fide Src homology 3 domain-binding site. This proline-rich domain has been implicated in FasL sorting to secretory lysosomes, and it may also be important for reverse signaling via FasL, which has been described to influence T-cell activation. Here we report the identification of the Src homology 3 domain-containing adaptor protein PSTPIP as a FasL-interacting partner, which binds to the proline-rich domain. PSTPIP co-expression leads to an increased intracellular localization of Fas ligand, thereby regulating extracellular availability and cytotoxic activity of the molecule. In addition, we demonstrate recruitment of the tyrosine phosphatase PTP-PEST by PSTPIP into FasL·PSTPIP·PTP-PEST complexes which may contribute to FasL reverse signaling.
Mechanical stress is known to modulate fundamental events such as cell life and death. Mechanical stretch in particular has been identified as a positive regulator of proliferation in skin keratinocytes and other cell systems. In the present study it was investigated whether antiapoptotic signaling is also stimulated by mechanical stretch. It was demonstrated that mechanical stretch rapidly induced the phosphorylation of the proto-oncogene protein kinase B (PKB)/Akt at both phosphorylation sites (serine 473/threonine 308) in different epithelial cells (HaCaT, A-431, and human embryonic kidney-293). Blocking of phosphoinositide 3-OH kinase by selective inhibitors (LY-294002 and wortmannin) abrogated the stretch-induced PKB/Akt phosphorylation. Furthermore mechanical stretch stimulated phosphorylation of epidermal growth factor receptor (EGFR) and the formation of EGFR membrane clusters. Functional blocking of EGFR phosphorylation by either selective inhibitors (AG1478 and PD168393) or dominant-negative expression suppressed stretch-induced PKB/Akt phosphorylation. Finally, the angiotensin II type 1 receptor (AT1-R) was shown to induce positive transactivation of EGFR in response to cell stretch. These findings define a novel signaling pathway of mechanical stretch, namely the activation of PKB/Akt by transactivation of EGFR via angiotensin II type 1 receptor. Evidence is provided that stretch-induced activation of PKB/Akt protects cells against induced apoptosis.
Soluble guanylyl cyclase (sGC) is the major cytosolic receptor for nitric oxide (NO) that converts GTP into the second messenger cGMP in a NO-dependent manner. Other factors controlling this key enzyme are intracellular proteins such as Hsp90 and PSD95, which bind to sGC and modulate its activity, stability, and localization. To date little is known about the effects of posttranslational modifications of sGC, although circumstantial evidence suggests that reversible phosphorylation may contribute to sGC regulation. Here we demonstrate that inhibitors of protein-tyrosine phosphatases such as pervanadate and bisperoxo(1,10-phenanthroline)oxovanadate(V) as well as reactive oxygen species such as H2O2 induce specific tyrosine phosphorylation of the β1 but not of the α1 subunit of sGC. Tyrosine phosphorylation of sGCβ1 is also inducible by pervanadate and H2O2 in intact PC12 cells, rat aortic smooth muscle cells, and in rat aortic tissues, indicating that tyrosine phosphorylation of sGC may also occur in vivo. We have mapped the major tyrosine phosphorylation site to position 192 of β1, where it forms part of a highly acidic phospho-acceptor site for Src-like kinases. In the phosphorylated state Tyr(P)-192 exposes a docking site for SH2 domains and efficiently recruits Src and Fyn to sGCβ1, thereby promoting multiple phosphorylation of the enzyme. Our results demonstrate that sGC is subject to tyrosine phosphorylation and interaction with Src-like kinases, revealing an unexpected cross-talk between the NO/cGMP and tyrosine kinase signaling pathways at the level of sGC.
Cathepsin D (CatD) is a lysosomal aspartic proteinase and plays an important role in the degradation of proteins and in apoptotic processes induced by oxidative stress, cytokines, and aging. All of these stimuli are potent inducers of endothelial cell apoptosis. Therefore, we investigated the role of CatD in endothelial cell apoptosis and determined the underlying mechanisms. Incubation with 100-500 microm H2O2 for 12 h induced apoptosis in endothelial cells. To determine a role for CatD, we co-incubated endothelial cells with the CatD inhibitor pepstatin A. Pepstatin A as well as genetic knock down of CatD abolished H2O2-induced apoptosis. In contrast, overexpression of CatD wild type but not a catalytically inactive mutant of CatD (CatDD295N) induced apoptosis under basal conditions. To gain insights into the underlying mechanisms, we investigated the effect of CatD on reactive oxygen species (ROS) formation. Indeed, knocking down CatD expression reduced H2O2-induced ROS formation and apoptosis. The major redox regulator in endothelial cells is thioredoxin-1 (Trx), which plays a crucial role in apoptosis inhibition. Thus, we hypothesized that CatD may alter Trx protein levels and thereby promote formation of ROS and apoptosis. Incubation with 100 microm H2O2 for 6 h decreased Trx protein levels, whereas Trx mRNA was not altered. H2O2-induced Trx degradation was inhibited by pepstatin A and genetic knock down of CatD but not by other protease inhibitors. Incubation of unstimulated cell lysates with recombinant CatD significantly reduced Trx protein levels in vitro, which was completely blocked by pepstatin A pre-incubation. Overexpression of CatD reduced Trx protein in cells. Moreover, H2O2 incubation led to a translocation of Trx to the lysosomes prior to the induction of apoptosis. Taken together, CatD induces apoptosis via degradation of Trx protein, which is an essential anti-apoptotic and reactive oxygen species scavenging protein in endothelial cells.
Human endothelial circulating progenitor cells (CPCs) can differentiate to cardiomyogenic cells during co-culture with neonatal rat cardiomyocytes. Wnt proteins induce myogenic specification and cardiac myogenesis. Here, we elucidated the effect of Wnts on differentiation of CPCs to cardiomyogenic cells. CPCs from peripheral blood mononuclear cells were isolated from healthy volunteers and co-cultured with neonatal rat cardiomyocytes. 6–10 days after co-culture, cardiac differentiation was determined by α-sarcomeric actinin staining of human lymphocyte antigen-positive cells (fluorescence-activated cell-sorting analysis) and mRNA expression of human myosin heavy chain and atrial natriuretic peptide. Supplementation of co-cultures with Wnt11-conditioned medium significantly enhanced the differentiation of CPCs to cardiomyocytes (1.7 ± 0.3-fold), whereas Wnt3A-conditioned medium showed no effect. Cell fusion was not affected by Wnt11-conditioned medium. Because Wnts inhibit glycogen synthase kinase-3β, we further determined whether the glycogen synthase kinase-3β inhibitor LiCl also enhanced cardiac differentiation of CPCs. However, LiCl (10 mm) did not affect CPC differentiation. In contrast, Wnt11-conditioned medium time-dependently activated protein kinase C (PKC). Moreover, the PKC inhibitors bisindolylmaleimide I and III significantly blocked differentiation of CPCs to cardiomyocytes. PKC activation by phorbol 12-myristate 13-acetate significantly increased CPC differentiation to a similar extent as compared with Wnt11-conditioned medium. Our data demonstrate that Wnt11, but not Wnt3A, augments cardiomyogenic differentiation of human CPCs. Wnt11 promotes cardiac differentiation via the non-canonical PKC-dependent signaling pathway.