6 resultados para Vamp7


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Melanosomes are a class of lysosome-related organelles produced by melanocytes. Biogenesis of melanosomes requires the transport of melanin-synthesizing enzymes from tubular recycling endosomes to maturing melanosomes. The SNARE proteins involved in these transport or fusion steps have been poorly studied. We found that depletion of syntaxin 13 (STX13, also known as STX12), a recycling endosomal Qa-SNARE, inhibits pigment granule maturation in melanocytes by rerouting the melanosomal proteins such as TYR and TYRP1 to lysosomes. Furthermore, live-cell imaging and electron microscopy studies showed that STX13 co-distributed with melanosomal cargo in the tubular-vesicular endosomes that are closely associated with the maturing melanosomes. STX family proteins contain an N-terminal regulatory domain, and deletion of this domain in STX13 increases both the SNARE activity in vivo and melanosome cargo transport and pigmentation, suggesting that STX13 acts as a fusion SNARE in melanosomal trafficking pathways. In addition, STX13-dependent cargo transport requires the melanosomal R-SNARE VAMP7, and its silencing blocks the melanosome maturation, reflecting a defect in endosome-melanosome fusion. Moreover, we show mutual dependency between STX13 and VAMP7 in regulating their localization for efficient cargo delivery to melanosomes.

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Die Hauptfunktion der Oligodendrozyten im zentralen Nervensystem ist die Myelinisierung. Dabei umwickelt die Zelle mit Ausläufern ihrer Plasmamembran mehrmals die Axone. In den Phasen der aktiven Myelinisierung produziert ein Oligodendrozyt eine Fläche von 5000-50000 µm2 Myelin pro Tag, wobei große Mengen der Myelinkomponenten über vesikulären Transport zur Zelloberfläche transportiert werden müssen. Die Fusion der Vesikel mit ihrer Zielmembran wird duch SNARE-Proteine (soluble N-ethylmaleimide-sensitive-factor attachment protein receptor proteins) kontrolliert, die durch spezifische Interaktionen zwischen R- (Vesikel) und Q- (Zielmembran) SNAREs auch zur Spezifität der Fusion beitragen. Um die SNAREs den oligodendroglialen Transportrouten zuzuordnen, wurde deren Expression, Regulation und subzelluläre Lokalisation in primären Oligodendrozyten, in Oli-neu Zellen und im Myelin untersucht. Die Plasmamembran-Q-SNAREs Syntaxin 3, Syntaxin 4 und SNAP23, sowie das endosomale R-SNAREs VAMP3 zeigten eine zunehmende Expression im Verlauf der Oligodendrozytenreifung, die Expression von SNAP29 hingegen verminderte sich. Zudem akkumulierten die SNARE-Proteine Syntaxin 2, Syntaxin 3, Syntaxin 4 und VAMP7 im adulten Myelin, was für ihre Beteiligung an der Myelinisierung spricht. Co-Immunpräzipitationen ergaben u.a. Interaktionen zwischen den SNARE-Proteinen VAMP3 (R), Syntaxin 4 (Qa) und SNAP23 (Qbc). Anhand der beschriebenen Analyse konnten die SNARE-Proteine den oligodendroglialen Transportwegen zugeordnet werden. Immunzytochemische Analysen zeigten, dass das Hauptmyelinprotein PLP mit dem R-SNARE des Recycling Endosoms VAMP3, und mit dem spät endosomal, lysosomalen SNARE VAMP7 kolokalisiert. Um deren Rolle im PLP-Transport zu untersuchen, wurden verschiedene VAMP3- bzw. VAMP7-Silencing-Experimente durchgeführt. In beiden Fällen führte dies zu einer reduzierten Menge an PLP an der Zelloberfläche. Die Ergebnisse lassen somit auf zwei unabhängige Transportwege für PLP zur Plasmamembran von Oligodendrozyten schließen. Der VAMP7-abhängige PLP-Transport wurde zusätzlich in vivo in AP3-defizienten Mäusen, welche VAMP7 fehlsortieren, überprüft. Die Gehirne der mutanten Mäuse enthielten weniger Myelin, das isolierte Myelin enthielt weniger PLP und CNP. VAMP7 scheint also bei der Myelinisierung die Fusion von PLP- und CNP-enthaltenden Vesikeln mit der Myelinmembran zu vermitteln.

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Oligodendrocytes form specialized plasma membrane extensions which spirally enwrap axons, thereby building up the myelin sheath. During myelination, oligodendrocytes produce large amounts of membrane components. Oligodendrocytes can be seen as a complex polarized cell type with two distinct membrane domains, the plasma membrane surrounding the cell body and the myelin membrane. SNARE proteins mediate the fusion of vesicular cargoes with their target membrane. We propose a model in which the major myelin protein PLP is transported by two different pathways. VAMP3 mediates the non-polarized transport of newly synthesized PLP via recycling endosomes to the plasma membrane, while transport of PLP from late endosomes/lysosomes to myelin is controlled by VAMP7. In the second part of the thesis, the role of exosome secretion in glia to axon signaling was studied. Further studies are required to clarify whether VAMP7 also controls exosome secretion. The thesis further focused on putative metabolic effects in the target neurons. Oligodendroglial exosomes showed no obvious influences on neuronal metabolic activity. Analysis of the phosphorylation levels of the neurofilament heavy subunit revealed a decrease in presence of oligodendrocytes, indicating effects of oligodendroglial exosomes on the neuronal cytoskeleton. Finally, candidates for kinases which are possibly activated upon influence of oligodendroglial exosomes and could influence neuronal survival were identified.

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We have investigated the relationships between the apical sorting mechanism using lipid rafts and the soluble N-ethyl maleimide-sensitive factor attachment protein receptor (SNARE) machinery, which is involved in membrane docking and fusion. We first confirmed that anti-alpha-SNAP antibodies inhibit the apical pathway in Madin– Darby canine kidney (MDCK) cells; in addition, we report that a recombinant SNAP protein stimulates the apical transport whereas a SNAP mutant inhibits this transport step. Based on t-SNARE overexpression experiments and the effect of botulinum neurotoxin E, syntaxin 3 and SNAP-23 have been implicated in apical membrane trafficking. Here, we show in permeabilized MDCK cells that antisyntaxin 3 and anti-SNAP-23 antibodies lower surface delivery of an apical reporter protein. Moreover, using a similar approach, we show that tetanus toxin-insensitive, vesicle-associated membrane protein (TI-VAMP; also called VAMP7), a recently described apical v-SNARE, is involved. Furthermore, we show the presence of syntaxin 3 and TI-VAMP in isolated apical carriers. Polarized apical sorting has been postulated to be mediated by the clustering of apical proteins into dynamic sphingolipid-cholesterol rafts. We provide evidence that syntaxin 3 and TI-VAMP are raft-associated. These data support a raft-based mechanism for the sorting of not only apically destined cargo but also of SNAREs having functions in apical membrane-docking and fusion events.

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To understand molecular mechanisms that regulate the intricate and dynamic organization of the endosomal compartment, it is important to establish the morphology, molecular composition, and functions of the different organelles involved in endosomal trafficking. Syntaxins and vesicle-associated membrane protein (VAMP) families, also known as soluble N-ethylmaleimide-sensitive factor (NSF) attachment protein receptors (SNAREs), have been implicated in mediating membrane fusion and may play a role in determining the specificity of vesicular trafficking. Although several SNAREs, including VAMP3/cellubrevin, VAMP8/endobrevin, syntaxin 13, and syntaxin 7, have been localized to the endosomal membranes, their precise localization, biochemical interactions, and function remain unclear. Furthermore, little is known about SNAREs involved in lysosomal trafficking. So far, only one SNARE, VAMP7, has been localized to late endosomes (LEs), where it is proposed to mediate trafficking of epidermal growth factor receptor to LEs and lysosomes. Here we characterize the localization and function of two additional endosomal syntaxins, syntaxins 7 and 8, and propose that they mediate distinct steps of endosomal protein trafficking. Both syntaxins are found in SNARE complexes that are dissociated by α-soluble NSF attachment protein and NSF. Syntaxin 7 is mainly localized to vacuolar early endosomes (EEs) and may be involved in protein trafficking from the plasma membrane to the EE as well as in homotypic fusion of endocytic organelles. In contrast, syntaxin 8 is likely to function in clathrin-independent vesicular transport and membrane fusion events necessary for protein transport from EEs to LEs.

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A key function of activated macrophages is to secrete proinflammatory cytokines such as TNF alpha; however, the intracellular pathway and machinery responsible for cytokine trafficking and secretion is largely undefined. Here we show that individual SNARE proteins involved in vesicle docking and fusion are regulated at both gene and protein expression upon stimulation with the bacterial cell wall component lipopolysaccharide. Focusing on two intracellular SNARE proteins, Vti1b and syntaxin 6 (Stx6), we show that they are up-regulated in conjunction with increasing cytokine secretion in activated macrophages and that their levels are selectively titrated to accommodate the volume and timing of post-Golgi cytokine trafficking. In macrophages, Vti1b and syntaxin 6 are localized on intracellular membranes and are present on isolated Golgi membranes and on Golgi-derived TNF alpha vesicles budded in vitro. By immunoprecipitation, we find that Vti1b and syntaxin 6 interact to form a novel intracellular Q-SNARE complex. Functional studies using overexpression of full-length and truncated proteins show that both Vti1b and syntaxin 6 function and have rate-limiting roles in TNF alpha trafficking and secretion. This study shows how macrophages have uniquely adapted a novel Golgi-associated SNARE complex to accommodate their requirement for increased cytokine secretion.