3 resultados para OVARY

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The human cytochrome P450 3A4 (CYP3A4), the predominant but variably expressed cytochrome P450 in adult liver and small intestine is involved in the metabolism of over 50% of currently used drugs. Its paralog CYP3A5 plays a crucial role in the disposition of several drugs with low therapeutic index, including tacrolimus. Limited information is available for the CYP3A5 transcriptional regulation and its induction by xenobiotics remains controversial. In the first part of this study, we analysed the CYP3A5 transcriptional regulation and its induction by xenobiotics in vivo using transgenic mice. To this end, two transgenic strains were established by pronuclear injection of a plasmid, expressing firefly luciferase driven by a 6.2 kb of the human CYP3A5 promoter. A detailed analysis of both strains shows a tissue distribution largely reflecting that of CYP3A5 transcripts in humans. Thus, the highest luciferase activity was detected in the small intestine, followed by oesophagus, testis, lung, adrenal gland, ovary, prostate and kidney. However, no activity was observed in the liver. CYP3A5-luc transgenic mice were similarly induced in both sexes with either PCN or TCPOBOP in small intestine in a dose-dependent manner. Thus, the 6.2 kb upstream promoter of CYP3A5 mediates the broad tissue activity in transgenic mice. CYP3A5 promoter is inducible in the small intestine in vivo, which may contribute to the variable expression of CYP3A in this organ. rnThe hepato-intestinal level of the detoxifying oxidases CYP3A4 and CYP3A5 is adjusted to the xenobiotic exposure mainly via the xenosensor and transcriptional factor PXR. CYP3A5 is additionally expressed in several other organs lacking PXR, including kidney. In the second part of this study, we investigated the mechanism of the differential expression of CYP3A5 and CYP3A4 and its evolutionary origin using renal and intestinal cells, and comparative genomics. For this examination, we established a two-cell line models reflecting the expression relationships of CYP3A4 and CYP3A5 in the kidney and small intestine in vivo. Our data demonstrate that the CYP3A5 expression in renal cells was enabled by the loss of a suppressing Yin Yang 1 (YY1)-binding site from the CYP3A5 promoter. This allowed for a renal CYP3A5 expression in a PXR-independent manner. The YY1 element is retained in the CYP3A4 gene, leading to its suppression, perhaps via interference with the NF1 activity in renal cells. In intestinal cells, the inhibition of CYP3A4 expression by YY1 is abrogated by a combined activating effect of PXR and NF1 acting on their respective response elements located adjacent to the YY1-binding site on CYP3A4 proximal promoter. CYP3A4 expression is further facilitated by a point mutation attenuating the suppressing effect of YY1 binding site. The differential expression of CYP3A4 and CYP3A5 in these organs results from the loss of the YY1 binding element from the CYP3A5 promoter, acting in concert with the differential organ expression of PXR, and with the higher accumulation of PXR response elements in CYP3A4. rn

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The amyloid precursor protein (APP) is a type I transmembrane glycoprotein, which resembles a cell surface receptor, comprising a large ectodomain, a single spanning transmembrane part and a short C-terminal, cytoplasmic domain. It belongs to a conserved gene family, with over 17 members, including also the two mammalian APP homologues proteins APLP1 and APLP2 („amyloid precursor like proteins“). APP is encoded by 19 exons, of which exons 7, 8, and 15 can be alternatively spliced to produce three major protein isoforms APP770, APP751 and APP695, reflecting the number of amino acids. The neuronal APP695 is the only isoform that lacks a Kunitz Protease Inhibitor (KPI) domain in its extracellular portion whereas the two larger, peripheral APP isoforms, contain the 57-amino-acid KPI insert. rnRecently, research effort has suggested that APP metabolism and function is thought to be influenced by homodimerization and that the oligomerization state of APP could also play a role in the pathology of Alzheimer's disease (AD), by regulating its processing and amyloid beta production. Several independent studies have shown that APP can form homodimers within the cell, driven by motifs present in the extracellular domain, as well as in the juxtamembrane (JM) and transmembrane (TM) regions of the molecule, whereby the exact molecular mechanism and the origin of dimer formation remains elusive. Therefore, we focused in our study on the actual subcellular origin of APP homodimerization within the cell, an underlying mechanism, and a possible impact on dimerization properties of its homologue APLP1. Furthermore, we analyzed homodimerization of various APP isoforms, in particular APP695, APP751 and APP770, which differ in the presence of a Kunitz-type protease inhibitor domain (KPI) in the extracellular region. In order to assess the cellular origin of dimerization under different cellular conditions, we established a mammalian cell culture model-system in CHO-K1 (chinese hamster ovary) cells, stably overexpressing human APP, harboring dilysine based organelle sorting motifs at the very C-terminus [KKAA-Endoplasmic Reticulum (ER); KKFF-Golgi]. In this study we show that APP exists as disulfide-bound, SDS-stable dimers, when it was retained in the ER, unlike when it progressed further to the cis-Golgi, due to the KKFF ER exit determinant. These stable APP complexes were isolated from cells, and analyzed by SDS–polyacrylamide gel electrophoresis under non-reducing conditions, whereas strong denaturing and reducing conditions completely converted those dimers to monomers. Our findings suggested that APP homodimer formation starts early in the secretory pathway and that the unique oxidizing environment of the ER likely promotes intermolecular disulfide bond formation between APP molecules. We particularly visualized APP dimerization employing a variety of biochemical experiments and investigated the origin of its generation by using a Bimolecular Fluorescence Complementation (BiFC) approach with split GFP-APP chimeras. Moreover, using N-terminal deletion constructs, we demonstrate that intermolecular disulfide linkage between cysteine residues, exclusively located in the extracellular E1 domain, represents another mechanism of how an APP sub-fraction can dimerize within the cell. Additionally, mutational studies revealed that cysteines at positions 98 and 105, embedded in the conserved loop region within the E1 domain, are critical for interchain disulfide bond formation. Using a pharmacological treatment approach, we show that once generated in the oxidative environment of the ER, APP dimers remain stably associated during transport, reaching the plasma membrane. In addition, we demonstrate that APP isoforms, encompassing the KPI domain, exhibit a strongly reduced ability to form cis-directed dimers in the ER, whereas trans-directed cell aggregation of Drosophila Schneider (S2)-cells was isoform independent, mediating cell-cell contacts. Thus, suggesting that steric properties of KPI-APP might be the cause for weaker cis-interaction in the ER, compared to APP695. Finally, we provide evidence that APP/APLP1 heterointeractions are likewise initiated in the ER, suggesting a similar mechanism for heterodimerization. Therefore, dynamic alterations of APP between monomeric, homodimeric, and possibly heterodimeric status could at least partially explain some of the variety in the physiological functions of APP.rn

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Die Metalloprotease Ovastacin, ein Vertreter der Astacin-Familie, wurde erstmals 2004 beschrieben. Im Ovar von Säugetieren ist Ovastacin-mRNA im Zeitfenster vom Stadium der Sekundärfollikel bis kurz nach der Befruchtung der Eizelle zu finden. Der Expressionsort und -zeitpunkt sowie die Sequenzähnlichkeit von über 60% mit sogenannten „Schlüpfenzymen“ (engl. hatching enzymes), die man in den Eizellen und Zygoten niederer Wirbeltiere und Wirbelloser gefunden hatte, ließen die Vermutung aufkommen, es könnte sich hier um das Säugerhomolog dieser Proteasen handeln. Generell lösen hatching Enzyme die derben embryonalen Hüllstrukturen (bei Säugern die Zona pellucida, ZP) beim Schlüpfvorgang auf. Die essentielle Bedeutung des Ovastacins für die Befruchtung wird durch die um ca. 30% reduzierte Fruchtbarkeit von Ovastacin defizienten Mäusen belegt. Hochinteressant war in diesem Zusammenhang die Entdeckung des Ovastacins in den Cortikalgranula der Oocyten sowie seine Fähigkeit, das Zona pellucida Protein 2 zu schneiden. Die dadurch bewirkte Verhärtung der Zona pellucida verhindert das Eindringen weiterer Spermien, das heißt sie baut eine Barriere gegen Polyspermie auf. Ziel dieser Arbeit war es, Belege für die physiologische Funktion des Ovastacins zu finden. Vor allem galt es, potentielle Aktivatoren zu identifizieren, da das Enzym wie alle Astacine als inaktive Vorstufe gebildet wird, die proteolytisch aktiviert werden muss. Zu diesem Zweck exprimierte ich rekombinantes Pro-Ovastacin in Insektenzellen. Aktivierungsstudien in vitro zeigten, dass ein saures Milieu zu einer Aktivierung führt, ohne die Abspaltung des Propeptids zu bewirken. Sequenzalignments und ein homologes Strukturmodell des Ovastacins wiesen auf Trypsin- oder Elastase-ähnliche Serinproteasen als potentielle Aktivierungsenzyme hin. Tatsächlich konnte mit diesen beiden Proteasetypen zum ersten Mal aktives Ovastacin aus Pro-Ovastacin erzeugt werden. Trypsin kommt als physiologischer Aktivator allerdings nicht in Betracht, da es bisher in keinem der Gewebe nachgewiesen werden konnte, in dem Ovastacin exprimiert wird. Die neutrophile Elastase dagegen konnte in der Leber, im Herz sowie im Blutplasma nachgewiesen werden. Mit Hilfe spezifischer Antikörper konnte das Herz als Expressionsort für Ovastacin bestätigt werden. Somit wäre Elastase ein potentieller physiologischer Aktivator von Ovastacin. Die Identifikation des Ovastacins in Geweben wie Leber, Herz, Nabelschnur und im Blutplasma weist auf eine Rolle der Protease in proteolytischen Netzwerken außerhalb der Spermien-Ei-Interaktion hin. Die Bedeutung der biologischen Kontrolle des Ovastacins bei der Befruchtung der Säugereizelle wird durch die Beobachtung untermauert, dass das Leberprotein Fetuin B als physiologischer Ovastacininhibitor fungiert und dadurch eine vorzeitige Verhärtung der Zona pellucida verhindert, die andernfalls die Penetration von Spermien prinzipiell verhindern würde.