17 resultados para AICD


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LRP1 modulates APP trafficking and metabolism within compartments of the secretory pathway The amyloid precursor protein (APP) is the parent protein to the amyloid beta peptide (Abeta) and is a central player in Alzheimer’s disease (AD) pathology. Abeta liberation depends on APP cleavage by beta- and gamma-secretases. To date, only a unilateral view of APP processing exists, excluding other proteins, which might be transported together and/or processed dependent on each other by the secretases described above. The low density lipoprotein receptor related protein 1 (LRP1) was shown to function as such a mediator of APP processing at multiple steps. Newly synthesized LRP1 can interact with APP, implying an interaction between these two proteins early in the secretory pathway. Therefore, we wanted to investigate whether LRP1 can mediate APP trafficking along the secretory pathway, and, if so, whether it affects APP processing. Indeed, we demonstrate that APP trafficking is strongly influenced by LRP1 transport through the endoplasmic reticulum (ER) and Golgi compartments. LRP1-constructs with ER- and Golgi-retention motifs (LRP-CT KKAA, LRP-CT KKFF) had the capacity to retard APP trafficking at the respective steps in the secretory pathway. Here, we provide evidence that APP metabolism occurs in close conjunction with LRP1 trafficking, highlighting a new role of lipoprotein receptors in neurodegenerative diseases. Increased AICD generation is ineffective in nuclear translocation and transcriptional activity A sequence of amyloid precursor protein (APP) cleavages gives rise to the APP intracellular domain (AICD) together with amyloid beta peptide (Abeta) and/or p3 fragment. One of the environmental factors identified favouring the accumulation of AICD appears to be a rise in intracellular pH. This accumulation is a result of an abrogated cleavage event and does not extend to other secretase substrates. AICD can activate the transcription of artificially expressed constructs and many downstream gene targets have been discussed. Here we further identified the metabolism and subcellular localization of the constructs used in this well documented gene reporter assay. We also co-examined the mechanistic lead up to the AICD accumulation and explored possible significances for its increased expression. We found that most of the AICD generated under pH neutralized conditions is likely that cleaved from C83. Furthermore, the AICD surplus is not transcriptionally active but rather remains membrane tethered and free in the cytosol where it interacts with Fe65. However, Fe65 is still essential in AICD mediated transcriptional transactivation although its exact role in this set of events is unclear.

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The stability constants of M-L binary system and M-L-L' (M = La3+ similar to Yb3+, Y3+ and Ca2+; L= DL-malic aicd, L' = L-hydroxyproline) ternary system were determined by pH-(0)-tentiometric method under the simulating physiological condition(37 degrees C, I=0.15 mol/L NaCl). The complex species MpLqLr'H-s(abbr as pqrs) in the sytems were ascertained by program COMPLEX. The results show that there are three species(1101, 1100 and 1200) in M-L binary system and one species(1010) in M-L' binary system. In addition to the above four species, a new species, 1112 was found in the M-L-L' ternary system, which is the only species of mixed ligands. Rare earth ions form more stable complexes than calcium ion does and the stability differences between their complexes in the ternary system are less than that in the binary system. The distributions of all the species in La-L-L' ternary system vs pH are discussed.

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Inúmeras potenciais funções foram sugeridas para a APP (Proteína Precursora de Amilóide de Alzheimer), contudo, fisiologicamente, a função precisa da APP não foi ainda desvendada. A APP tem características consistentes com a função de molécula-receptora, capaz de reconhecer sinais extracelulares. Também relevante para este trabalho, é o facto de que a sinalização através de RIP (Proteólise Intramembranar Regulada) tem consequências na expressão génica, como no caso da sinalização tipo-Notch. Tal como a proteína Notch, a APP é processada resultando num fragmento C-terminal designado por AICD (Domínio Intracelular da APP). Neste trabalho é focado o papel importante na sinalização nuclear desempenhado pelo fragmento AICD, especificamente através da interacção com proteínas adaptadoras, promovendo a transcrição. Com o objectivo de contribuir para uma melhor compreensão da base molecular da DA (Doença de Alzheimer), torna-se importante investigar as vias de localização nuclear do AICD e o seu envolvimento na transcrição génica, possivelmente afectando proteínas até agora não associadas à DA. Por estes motivos é fundamental a identificação de novas proteínas que interajam com a APP. Um rastreio foi efectuado, utilizando o sistema Dois-Híbrido em Levedura, para identificar interacções específicas do AICD no cérebro humano e, assim, caracterizar o interactoma do AICD. Foi feito o rastreio de aproximadamente 1.1x108 clones de uma biblioteca de cDNA de cérebro humano com o domínio C-terminal da APP com a mutação Y687E, que mimetiza o estado fosforilado. De experiências anteriores deste laboratório sabemos que a tirosina-687 afecta a localização subcelular da APP e é também consensual que a fosforilação é importante nos mecanismos de transdução de sinais, daí a utilização deste mutante parecer apropriada. O rastreio originou 55 clones positivos que foram analisados para identificar proteínas que interagem com a APP. Dois clones são particularmente importantes, a RanBPM e a Transportin-SR2, visto que estão associadas ao transporte de proteínas para o núcleo e confirmam a sinalização nuclear da APP. ABSTRACT: Many putative functions for APP (Alzheimer’s amyloid precursor protein) have been suggested, although the precise physiological function of APP remains to be elucidated. APP has characteristics consistent with it having a role as a receptor, capable of mediating extracellular signals. Also of relevance to the work described here is that RIP (Regulated Intramembrane Proteolysis) signalling can have consequences in gene expression, similar to Notch signalling. Like the latter, APP is processed by RIP resulting in a C-terminal fragment known as AICD. Here we test the hypothesis that the AICD fragment may play an important role in nuclear signalling, specifically by interacting with adaptor proteins potentiating transcription. Therefore, in order to contribute to our understanding of the molecular basis of AD (Alzheimer’s disease) it is important to investigate the pathways of AICD nuclear targeting and its involvement in gene transcription, possibly affecting other proteins hitherto not associated with AD. Thus, it is important to identify AICD binding proteins. A Yeast Two-Hybrid (YTH) screen was performed to identify human brainspecific AICD binding proteins, and thus characterize the AICD interactome. The screen of approximately 1.1 x108 clones from a human brain cDNA library was carried out using the AICD fragment with an Y687E mutation, which mimics phosphorylation on that residue. From previous work carried out in the laboratory we know that tyrosine-687 phosphorylation affects subcellular localization of APP, and it is also recognized that phosphorylation events are important in signal transduction mechanisms, hence the use of this mutant is appropriate. The YTH screen yielded 55 positive clones that were analysed and several novel brain-specific APP binding proteins were identified. Two clones were particularly important, RanBPM and Transportin-SR2, being that they are associated with the nuclear transport of proteins, and support the nuclear signalling for APP.

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A doença de Alzheimer (DA) é uma desordem neurodegenerativa progressiva patologicamente caracterizada pela presença de placas de amilóide (placas senis) insolúveis e também pela presença de tranças neurofibrilhares,formadas pela proteína Tau hiperfosforiladada. O principal constituinte das placas senis é o peptídeo beta-amilóide (Ab), que deriva do processamento proteolítico da proteína precursora de amilóide de Alzheimer (APP). Embora Ab exista como um agregado pouco solúvel nas placas senis, ele é secretado pelas células como uma molécula solúvel. O Ab “per se” pode afectar o metabolismo da APP. Alguns autores sugerem que o Ab exerce o seu efeito alterando o processamento ou catabolismo da APP, outros sugerem que ele também induz a transcrição da APP, onde aumentando os níveis da APP pode estar a contribuir para a sua própria produção (mecanismo de “feedback” positivo). Assim sendo, torna-se difícil consolidar todas estas observações e identificar as potenciais funções fisiológicas do Ab “in vivo”, ou as consequências da sua produção. Neste trabalho caracterizaram-se os efeitos do Ab no metabolismo da APP. Os nossos estudos revelaram que um dos mecanismos induzidos pelo Ab é a acumulação intracelular do fragmento neuroprotector sAPP (isAPPa) em estruturas com características vesiculares associadas ao citosqueleto. Estudos adicionais em culturas primárias revelaram que o Ab estava a exercer o seu efeito ao nível da secreção vesicular, provavelmente interferindo com o transporte de APP/sAPP ao longo da rede do citosqueleto. Esta hipótese é sustentada pelo facto do Ab estar a afectar a estabilidade e a polimerização de proteínas envolvidas na dinâmica do citosqueleto. Contrariamente a publicações anteriores o Ab não induziu a transcrição da APP, na verdade em culturas primárias neuronais foi observado uma diminuição nos níveis de expressão da APP. Isto foi acompanhado por um aumento nos fragmentos C-terminais da APP (CTFs) e uma diminuição na localização nuclear do seu domínio intracelular (AICD), sugerindo alterações na sinalização nuclear da APP. O Ab pode afectar outras vias de sinalização, particularmente alterando o balanço entre as actividades das proteínas cinases e fosfatases, o que pode ter consequências para o desenvolvimento da doença. Os dados obtidos indicam que o Ab é capaz de inibir a actividade da proteína fosfatase1, a sua importância numa perspectiva de futuras terapias é discutida. Devido à relevância da agregação do Ab para a sua toxicidade, a formação de complexos com proteínas que promovem a sua desagregação/degradação e o seu efeito no processamento da APP foi avaliado. Na presença destes complexos observou-se uma reversão da acumulação isAPP, demonstrando o potencial terapêutico destas proteínas como moduladores do metabolismo da APP. Este trabalho permitiu compreender melhor os mecanismos envolvidos nos efeitos do Ab no processamento da APP e descobrir algumas moléculas que podem ser relevantes numa perspectiva de diagnóstico e terapia na DA.

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A Doença de Alzheimer (AD) é a maior doença neurodegenerativa a nível mundial, e a principal causa de demência na população idosa. O processamento da proteína precursora de amilóide (APP) pelas β- e g- secretases origina o peptídeo Aβ, que agrega em oligómeros neurotóxicos e em placas senis. Estes são eventos-chave na patogénese da DA que levam à rutura da neurotransmissão sináptica, morte neuronal e inflamação neuronal do hipocampo e córtex cerebral, causando perda de memória disfunção cognitiva geral. Apesar dos grandes avanços no conhecimento do papel do processamento da APP na DA, a sua função fisiológica ainda não foi totalmente elucidada. Os mapas de interações proteína-proteína (PPI) humanos têm desempenhado um papel importante na investigação biomédica, em particular no estudo de vias de sinalização e de doenças humanas. O método dois-híbrido em levedura (YTH) consiste numa plataforma para a produção rápida de redes de PPI em larga-escala. Neste trabalho foram realizados vários rastreios YTH com o objetivo de identificar proteínas específicas de cérebro humano que interagissem com a APP, ou com o seu domínio intracelular (AICD), tanto o tipo selvagem como com os mutantes Y687F, que mimetizam o estado desfosforilado do resíduo Tyr-687. De facto, a endocitose da APP e a produção de Aβ estão dependentes do estado de fosforilação da Tyr-687. Os rastreios YTH permitiram assim obter de redes proteínas que interagem com a APP, utilizando como “isco” a APP, APPY687F e AICDY687F. Os clones positivos foram isolados e identificados através de sequenciação do cDNA. A maior parte dos clones identificados, 118, correspondia a sequências que codificam para proteínas conhecidas, resultando em 31 proteínas distintas. A análise de proteómica funcional das proteínas identificadas neste estudo e em dois projetos anteriores (AICDY687E, que mimetiza a fosforilação, e AICD tipo selvagem), permitiram avaliar a relevância da fosforilação da Tyr-687. Três clones provenientes do rastreio YTH com a APPY687F foram identificados como um novo transcrito da proteína Fe65, resultante de splicing alternativo, a Fe65E3a (GenBank Accession: EF103274), que codifica para a isoforma p60Fe65. A p60Fe65 está enriquecida no cérebro e os seus níveis aumentam durante a diferenciação neuronal de células PC12, evidenciando o potencial papel que poderá desempenhar na patologia da DA. A RanBP9 é uma proteína nuclear e citoplasmática envolvida em diversas vias de sinalização celulares. Neste trabalho caracterizou-se a nova interação entre a RanBP9 e o AICD, que pode ser regulada pela fosforilação da Tyr-687. Adicionalmente, foi identificada uma nova interação entre a RanBP9 e a acetiltransferase de histonas Tip60. Demonstrou-se ainda que a RanBP9 tem um efeito de regulação inibitório na transcrição mediada por AICD, através da interação com a Tip60, afastando o AICD dos locais de transcrição ativos. O estudo do interactoma da APP/AICD, modelado pela fosforilação da Tyr-687, revela que a APP poderá estar envolvida em novas vias celulares, contribuindo não só para o conhecimento do papel fisiológico da APP, como também auxilia a revelar as vias que levam à agregação de Aβ e neurodegeneração. A potencial relevância deste trabalho relaciona-se com a descoberta de algumas interações proteicas/vias de sinalização que podem que podem ser relevantes para o desenvolvimento de novas estratégias terapêuticas na DA.

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Antigen-presenting cells (APCs) control T-cell responses by multiple mechanisms, including the expression of co-stimulatory molecules and the production of cytokines and other mediators that control T-cell proliferation, survival and differentiation. Here, we demonstrate that soluble factor(s) produced by Toll-like receptor (TLR)-activated APCs suppress activation-induced cell death (AICD). This effect was observed in non-stimulated APCs, but it was significantly increased after lipopolysaccharide (LPS) treatment. Using different KO mice, we found that the LPS-induced protective factor is dependent on TLR4/MyD88. We identified the protective factor as prostaglandin E-2(PGE(2)) and showed that both APC-derived supernatants and PGE(2) prevented CD95L upregulation in T cells in response to TCR/CD3 stimulation, thereby avoiding both AICD and activated T cell killing of target macrophages. The PGE(2) receptors, EP2 and EP4, appear to be involved since pharmacological stimulation of these receptors mimics the protective effect on T cells and their respective antagonists interfere with the protection induced by either APCs derived or synthetic PGE(2). Finally, the engagement of EP2 and EP4 synergistically activates protein kinase A (PKA) and exchange protein directly activated by cAMP pathways to prevent AICD. Taken together, these results indicate that APCs can regulate T-cell levels of CD95L by releasing PGE2 in response to LPS through a TLR4/MyD88-dependent pathway, with consequences for both T cell and their own survival.

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Die Alterung stellt den größten Risikofaktor für die Entwicklung der Alzheimer Krankheit dar, wobei die biochemische Basis dieser Korrelation bisher nicht bekannt ist. Ein möglicherweise zentraler Mechanismus der Alzheimer Pathologie wird durch die Prozessierung von APP repräsentiert, die in der Synthese von Aβ resultiert. Der Einfluss zellulärer Alterung auf die Biochemie der APP-Prozessierung ist bislang weitestgehend ungeklärt. In der vorliegenden Arbeit wurde gezeigt, dass die Prozessierung von endogenem APP im Verlauf der Zellalterung humaner Fibroblasten progressiv verringert wird. Die Bildung der intrazellulären APP-Spaltfragmente (C99, C83 und AICD) nahm mit zunehmender Lebensspanne ab und war gleichfalls mit einer reduzierten Synthese von extrazellulären APP-Fragmenten (sAPP, sAPPα) verbunden. Weiterhin wurde nachgewiesen, dass die Reifung von APP in seneszenten Zellen selektiv reduziert war, und dass dies durch altersabhängig erhöhte zelluläre Cholesterolspiegel vermittelt wurde. Von den APP-prozessierenden Sekretasen waren die Proteinspiegel von Presenilin-1 und Nicastrin, beides Komponenten der γ-Sekretase, im Verlauf der Zellalterung graduell verringert. Dies hatte einen progressiven Rückgang der enzymatischen Aktivität der γ-Sekretase zur Folge, wodurch die Prozessierung von APP unmittelbar reduziert wurde. Die Proteinspiegel von ADAM10, einer α-Sekretase, sowie der β-Sekretase, BACE, wiesen keine Altersregulation auf, aber interessanterweise wurde eine erhöhte enzymatische Aktivität der β-Sekretase in seneszenten Zellen nachgewiesen. Die γ-Sekretase sowie BACE sind in Lipid Rafts lokalisiert, geordneten Membransubdomänen, die hohe Cholesterol- und Caveolin-1-Spiegel aufweisen. Obwohl das Gesamtniveau dieser strukturellen Komponenten von Lipid Rafts in seneszenten Zellen erhöht war, war die Assoziation beider Moleküle mit Lipid Rafts reduziert und sie akkumulierten in speziellen Organellen, die höchstwahrscheinlich Lipidkörper darstellen. Somit wurde gezeigt, dass Lipid Rafts im Zuge der Zellalterung disintegrieren beziehungsweise in ihrem Gesamtspiegel reduziert waren. Diese altersabhängige Membranmodifikation war mit einer veränderten Verteilung von Presenilin-1 und BACE zwischen der Lipid Raft und der Nicht Raft Fraktion der Membran verbunden, die möglicherweise das Potential dieser Enzyme zur Prozessierung von APP reduzierte. In einem zweiten Teil der Arbeit wurden transgene C. elegans konstruiert, die humanes APP exprimieren, das C-terminal an GFP gekoppelt war. Diese Würmer wiesen eine reduzierte Fertilität, Eilegedefekte und eine verzögerte post-embryonale Entwicklung auf, die möglicherweise auf eine Transgen-vermittelte Neurodegeneration zurückgeführt werden können. Durch erste Untersuchungen der Prozessierung des Transgens konnten Spaltfragmente nachgewiesen werden, die potentiell auf eine spezifische Spaltung von APP durch die endogenen Sekretasen schließen lassen. Somit werden die Prozessierung sowie die Reifung von APP durch die altersabhängige Modifikationen zellulärer Biochemie nachhaltig beeinflusst. Zukünftige Studien sollen zeigen, ob sich diese zellulären Zusammenhänge in den Gesamtorganismus C. elegans übertragen lassen. Des Weiteren sollen die altersabhängigen zellulären Veränderungen, insbesondere des Cholesterol-Metabolismus und der Sekretaseaktivitäten, weitergehend analysiert werden, um zusätzliche Erkenntnisse über altersassoziierte Regulationen möglicher therapeutischer Ziele der Alzheimer Erkrankung zu gewinnen.

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Eine der häufigsten Komplikationen bei der allogenen Blutstammzelltransplantation stellt die Transplantat-gegen-Wirt-Erkrankung (Graft versus Host Disease, GvHD) dar. Sie wird durch allogene Spender-T-Lymphozyten verursacht, die Gewebe des Transplantatempfängers erkennen und inflammatorische Entzündungsprozesse auslösen. Neben dieser Alloreaktivität induzieren Spender-T-Lymphozyten jedoch auch immuntherapeutisch erwünschte Transplantat-gegen-Leukämie-Reaktionen (Graft versus Leukemia, GvL-Reaktion), bei denen residuelle Tumor- bzw. Leukämiezellen im Patienten durch Spender-T-Zellen spezifisch erkannt und eliminiert werden. Im Rahmen einer verbesserten Immmuntherapie wird daher versucht, GvHD-reaktive und GvL-reaktive Spender-T-Lymphozyten effizient voneinander zu separieren und so eine wirkungsvolle GvHD-Prophylaxe bzw. optimierte GvL-Induktion zu erreichen. In diesem Kontext war es Ziel dieser Arbeit, murine dendritische Zellen (DZ) so zu modifizieren, daß sie für die spezifische Deletion alloreaktiver T-Zellen in murinen GvHD/GvL-Tiermodellen eingesetzt werden können. Die Modifikation der DZ sollte dazu führen, daß über das CD95/CD178-System Aktivierungs-induzierter Zelltod (activation induced cell death, AICD) in alloreaktiven T-Zellen ausgelöst wird. Hierzu wurden für die Modifikation der DZ zwei verschiedene Mechanismen angewandt: a) die Transfektion der DZ mit CD178-mRNA sowie b) die zielgerichtete Immobilisierung von hCD178-X-Fusionsproteinen auf Oberflächenmolekülen von DZ bzw. T-Zellen. Als Positivkontrolle für die Induktion CD95-vermittelter Apoptose diente der agonistische anti-CD95-Antikörper Jo2. Bei der Transfektion muriner DZ mit mRNA zeigte sich anhand des Reportergens EGFP, daß aus dem Knochenmark generierte DZ mit hoher Effizienz mit EGFP-mRNA transfizierbar waren. Im Falle von hCD178-mRNA führte die Transfektion jedoch zu einer insuffizienten CD178-Expression, die mit den regulatorischen Eigenschaften der zytoplasmatischen CD178-Region in Verbindung gebracht werden konnte. So führte die Verwendung einer zytoplasmatisch trunkierten Form der CD178-mRNA (CD178Dzyt) zu einer durchflußzytometrisch nachweisbaren CD178-Expression in DZ. Mit diesen CD178Dzyt-exprimierenden DZ konnte in einem Proliferationstest die Proliferation alloreaktiver T-Zellen inhibiert werden. Die Beladung von DZ bzw. von T-Zellen mit hCD178-X-Fusionsproteinen führte in vitro ebenfalls zu einer deutlichen Reduktion von Alloreaktivität. Dabei konnte eine spezifische Deletion/Inhibition alloreaktiver T-Zellen nachgewiesen werden. Die Elimination alloreaktiver T-Zellen erfolgte in beiden Verfahren über AICD. Darüber hinaus wurde eine Bifunktionalität der Fusionsproteine festgestellt, da sie neben der Induktion CD95-vermittelter Apoptose auch in der Lage waren, die Kostimulation allogener T-Zellen effizient zu inhibieren. Mit Hilfe adoptiver T-Zell-Transferexperimente konnten abschließend die in vitro gewonnenen Ergebnisse in vivo in zwei verschiedenen GvHD-Mausmodellen bestätigt werden.

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Mental retardation in Down syndrome (DS) has been imputed to the decreased brain volume, which is evident starting from the early phases of development. Recent studies in a widely used mouse model of DS, the Ts65Dn mouse, have shown that neurogenesis is severely impaired during the early phases of brain development, suggesting that this defect may be a major determinant of brain hypotrophy and mental retardation in individuals with DS. Recently, it has been found that in the cerebellum of Ts65Dn mice there is a defective responsiveness to Sonic Hedgehog (Shh), a potent mitogen that controls cell division during brain development, suggesting that failure of Shh signaling may underlie the reduced proliferation potency in DS. Based on these premises, we sought to identify the molecular mechanisms underlying derangement of the Shh pathway in neural precursor cells (NPCs) from Ts65Dn mice. We found that the expression levels of the Shh receptor Patched1 (Ptch1) were increased compared to controls both at the RNA and protein level. Partial silencing of Ptch1 expression in trisomic NPCs restored cell proliferation, indicating that proliferation impairment was due to Ptch1 overexpression. We further found that the overexpression of Ptch1 in trisomic NPCs is related to increased levels of AICD, a transcription-promoting fragment of amyloid precursor protein (APP). Increased AICD binding to the Ptch1 promoter favored its acetylated status, thus enhancing Ptch1 expression. Taken together, these data provide novel evidence that Ptch1 over expression underlies derangement of the Shh pathway in trisomic NPCs, with consequent proliferation impairment. The demonstration that Ptch1 over expression in trisomic NPCs is due to an APP fragment provides a link between this trisomic gene and the defective neuronal production that characterizes the DS brain.

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Die am häufigsten auftretende altersassoziierte neurodegenerative Krankheit ist die Alzheimer Demenz. Ein mit entscheidender Schritt bei der Entstehung der Alzheimer Erkrankung ist wahrscheinlich die Produktion des Aβ-Peptids durch proteolytische Spaltung das Amyloid-Vorläuferproteins APP. In der vorliegenden Arbeit wurde die altersabhängige Prozessierung des Amyloid-Vorläuferproteins (APP) in Fibroblasten von Hautbiopsien von Familiärer Alzheimer-, Trisomie21 und Niemann-Pick Typ C-Krankheit untersucht. Die in dieser Arbeit verwendeten Fibroblasten wurden bis zum Erreichen des zellulären Wachstumsstopps (replikative Seneszenz) seriell passagiert und die Untersuchungen erfolgten an Zellen aufsteigender PDL. Dabei zeigte sich, dass, unabhängig von dem durch die Krankheit vorliegenden genetischen biochemischen Hintergrund, die APP-Prozessierung im Laufe der Zellalterung progressiv verringert wird. Die altersabhängig ansteigenden Cholesterinspiegel führten zu einer Reduktion der APP-Reifung und infolge dessen nahmen sowohl die intrazellulären APP-Spaltfragmente (C99, C83 und AICD) als auch die extrazellulären APP-Fragmente (sAPPα, sAPP) ab. Ebenso konnte gezeigt werden, dass die γ-Sekretase-Aktivität abnimmt. Dies war verbunden mit einem Rückgang der Proteinspiegel von Nicastrin und Presenilin, beides Komponenten des γ-Sekretase-Komplexes. Obwohl die Proteinexpression der α-Sekretase ADAM10 altersassoziiert konstant blieb, nahm die α-Sekretase-Aktivität mit steigendem Lebensalter ab. Erste Untersuchungen zeigten, dass die NAD+-abhängige Histon-Deacetylase SIRT1 eine wichtige Rolle im Bezug auf die α-Sekretase-Aktivität spielen könnte. Im Gegensatz zu den Abnahmen der α- und γ-Sekretase-Aktivitäten konnte eine erhöhte Aktivität der β-Sekretase in seneszenten Zellen beobachtet werden. Die mRNA-Menge und Proteinspiegel der ß-Sekretase BACE1 blieben dabei unverändert. Des Weiteren zeigte sich eine Zunahme der β-Sekretase-Aktivität bei Behandlung von jungen Zellen mit konditioniertem Medium seneszenter Zellen. Da sensezente Zellen einem Proliferationsstopp in der G1-Phase unterliegen, wurde der Einfluss des Zellzyklus-Inhibitors Aphidicolin auf die β-Sekretase untersucht. Hier wurde sowohl in IMR90 Fibroblasten als auch in Neuroblastoma-Zellen N2a eine Zunahme der β-Sekretase-Aktivität nach Zugabe der Inhibitoren beobachtet. Auch kommt es im Zuge der Alterung zu einer verstärkten Expression inflammatorischer Zytokine, die mit der Entstehung von Aβ-Peptiden in Verbindung gebracht werden. Deshalb wurde der Einfluss von Zytokinen auf die β-Sekretase-Aktivität untersucht. Die Zugabe von Interferon-γ und Interleukin 6 führte bei jungen IMR90-Zellen zu einem Anstieg der β-Sekretase-Aktivität, während bei alten Zellen keine Änderung zu verzeichnen war.

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SUMOylation is a highly dynamic and reversible posttranslational protein modification closely related to ubiquitination. SUMOylation regulates a vast array of different cellular functions, such as cell cycle, nuclear transport, DNA damage response, proliferation and transcriptional activation. Several groups have shown in in vitro studies how important SUMOylation is for early B cell development and survival as well as for later plasma cell differentiation. This thesis focuses on the deSUMOylation protease SENP1 and its in vivo effects on B cell development and differentiation. For this a conditional SENP1 knockout mouse model was crossed to the CD19-Cre mouse strain to generate a B cell specific SENP1 knockout mouse.rnIn our conditional SENP1ff CD19-Cre mouse model we observed normal numbers of all B cell subsets in the bone marrow. However in the spleen we observed an impairment of B cell survival, based on a 50% reduction of the follicular B cell compartment, whereas the marginal zone B cell compartment was unchanged. T cell numbers were comparable to control mice. rnFurther, impairments of B cell survival in SENP1ff CD19-Cre mice were analysed after in vivo blocking of IL7R signalling. The αIL7R treatment in mature mice blocked new B cell formation in the bone marrow and increased apoptosis rates could be observed in splenic SENP1 KO B cells. Additionally, a higher turnover rate of B cells was measured by in vivo BrdU incorporation.rnSince it is known that the majority of transcription factors that are important for the maintenance of the germinal centre reaction or for induction of plasma cell development are SUMOylated, the question arose, how defective deSUMOylation will manifest itself in these processes. The majority of in vitro cultured splenic B cells, stimulated to undergo class switch recombination and plasma cell differentiation underwent activation induced cell death. However, the surviving cells increasingly differentiated into IgM expressing plasma cells. Class switch recombination to IgG1 was reduced. These observations stood in line with observation made in in vivo sheep red blood cell immunization experiments, which showed increased amounts of germinal centres and germinal centre B cells, as well as increased amounts of plasma cells differentiation in combination with decreased class switch to IgG1.rnThese results lead to the conclusion that SENP1 KO B cells increasingly undergo apoptosis, however, B cells that survive SENP1 deficiency are more prone to undergo plasma cell differentiation. Further, the precursors of these plasma cells either are not as capable of undergoing class switch recombination or they do switch to IgG1 and succumb to activation induced cell death. One possible explanation for both scenarios could be a defective DNA damage response mechanisms during class switch recombination, caused by impaired deSUMOylation. rn

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Die Alzheimer’sche Erkrankung (AD) ist die am häufigsten vorkommende Form der Demenz. Die Spaltung des APP scheint eine große Rolle in der Pathologie der Erkrankung zu spielen. APP kann auf zwei Wegen prozessiert werden. Dem amyloidogenen Weg, bei dem neben einem löslichen extrazellulären Fragment (sAPPβ) und der APP Intrazellulären Domäne (AICD) auch Aβ entsteht. Auf dem nicht-amyloidogenen Weg entsteht sAPPα, p3 und die AICD. Dem sAPPα werden neuroprotektiv Eigenschaften zugeschrieben. rnEs konnte gezeigt werden, dass sAPPα in jungen IMR90 Zellen, den durch proteasomalen Stress ausgelösten Anstieg der Bag3 und Hsp70 Proteinlevel senkt. Gleichzeitig konnte gezeigt werden, dass sAPPα die Zellviabilität nach proteasomalen Stress erhöht und weniger Aggresomen gebildet werden. Die Analyse der proteasomalen Aktivität zeigte, dass sAPPα die proteasomale Aktivität gestresster junger Zellen erhöhen kann. In alten IMR90 Zellen konnte keine Beeinflussung der Autophagie und der proteasomalen Aktivität festgestellt werden. Das ist ein Anhaltspunkt dafür, dass im Alter das Proteasom zu stark geschädigt ist, um durch sAPPα aktiviert zu werden. Das bei der amyloidogenen Prozessierung von APP entstehende sAPPβ zeigte eine ähnliche protektive Eigenschaft. rnInsgesamt konnte ein protektiver Einfluss von sAPPα und sAPPβ unter proteotoxischen Bedingungen in jungen und klonalen Zellen gezeigt werden, wodurch die Zellviabilität verbessert wird. rn

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In addition to its proinflammatory effects, TNF-alpha exhibits immunosuppression. Here, we compared the capacities of transmembrane TNF-alpha (tmTNF) and soluble TNF-alpha (sTNF) in regulating expansion of activated T cells by apoptosis. Splenic CD4(+) T cells from wtTNF, TNF-alpha-deficient (TNF(-/-)) and TNF(-/-) mice expressing a non-cleavable mutant tmTNF showed comparable proliferation rates upon TCR-mediated stimulation. Activation-induced cell death (AICD), however, was significantly attenuated in tmTNF and TNF(-/-), compared with wtTNF CD4(+) T cells. Addition of sTNF during initial priming was sufficient to enhance susceptibility to AICD in tmTNF and TNF(-/-) CD4(+) T cells to levels seen in wtTNF CD4(+) T cells, whereas addition of sTNF only during restimulation failed to enhance AICD. sTNF-induced, enhanced susceptibility to AICD was dependent on both TNF receptors. The reduced susceptibility of tmTNF CD4(+) T cells for AICD was also evident in an in vivo model of adoptively transferred CD4(+) T-cell-mediated colonic inflammation. Hence, the presence of sTNF during T-cell priming may represent an important mechanism to sensitize activated T cells for apoptosis, thereby attenuating the extent and duration of T-cell reactivities and subsequent T-cell-mediated, excessive inflammation.

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Lactacystin, a microbial metabolite that inhibits protease activity only in the proteasome, was used to study the role of the proteasome in the activation-induced cell death (AICD) of T cells. Lactacystin induces DNA fragmentation and apoptosis in a T cell hybridoma (DO.11.10) in a dose-dependent manner. Between 1 and 10 μM, the mildly cytotoxic lactacystin inhibited the AICD of DO.11.10 cells cultured in anti-CD3-coated wells. Degradation of IκBβ and the translocation of the NF-κB (p50/RelA) into the nucleus, which occurred at 1.5 hr after anti-CD3 activation, were inhibited by lactacystin. Lactacystin did not inhibit the expression of nuclear transcription factor Oct-1. The activation-induced expression of the immediate–early gene, Nur77, and the T cell death genes, CD95 (Fas) and CD95 ligand (FasL), were inhibited. Functional expression of FasL cytotoxicity and the increase of cell surface Fas were also inhibited. Lactacystin must be added within 2 hr of activation to efficiently block AICD. In addition, lactacystin failed to inhibit the killing of DO.11.10 by FasL-expressing allo-specific cytotoxic effector cells. These observations strongly suggest a direct link between the proteasome-dependent degradation of IκBβ and the AICD that occurs through activation of the FasL gene and up-regulation of the Fas gene.

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Transmembrane proteins play crucial roles in many important physiological processes. The intracellular domain of membrane proteins is key for their function by interacting with a wide variety of cytosolic proteins. It is therefore important to examine this interaction. A recently developed method to study these interactions, based on the use of liposomes as a model membrane, involves the covalent coupling of the cytoplasmic domains of membrane proteins to the liposome membrane. This allows for the analysis of interaction partners requiring both protein and membrane lipid binding. This thesis further establishes the liposome recruitment system and utilises it to examine the intracellular interactome of the amyloid precursor protein (APP), most well-known for its proteolytic cleavage that results in the production and accumulation of amyloid beta fragments, the main constituent of amyloid plaques in Alzheimer’s disease pathology. Despite this, the physiological function of APP remains largely unclear. Through the use of the proteo-liposome recruitment system two novel interactions of APP’s intracellular domain (AICD) are examined with a view to gaining a greater insight into APP’s physiological function. One of these novel interactions is between AICD and the mTOR complex, a serine/threonine protein kinase that integrates signals from nutrients and growth factors. The kinase domain of mTOR directly binds to AICD and the N-terminal amino acids of AICD are crucial for this interaction. The second novel interaction is between AICD and the endosomal PIKfyve complex, a lipid kinase involved in the production of phosphatidylinositol-3,5-bisphosphate (PI(3,5)P2) from phosphatidylinositol-3-phosphate, which has a role in controlling ensdosome dynamics. The scaffold protein Vac14 of the PIKfyve complex binds directly to AICD and the C-terminus of AICD is important for its interaction with the PIKfyve complex. Using a recently developed intracellular PI(3,5)P2 probe it is shown that APP controls the formation of PI(3,5)P2 positive vesicular structures and that the PIKfyve complex is involved in the trafficking and degradation of APP. Both of these novel APP interactors have important implications of both APP function and Alzheimer’s disease. The proteo-liposome recruitment method is further validated through its use to examine the recruitment and assembly of the AP-2/clathrin coat from purified components to two membrane proteins containing different sorting motifs. Taken together this thesis highlights the proteo-liposome recruitment system as a valuable tool for the study of membrane proteins intracellular interactome. It allows for the mimicking of the protein in its native configuration therefore identifying weaker interactions that are not detected by more conventional methods and also detecting interactions that are mediated by membrane phospholipids.