994 resultados para Caveolin-1
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Context: Berardinelli-Seip congenital lipodystrophy (BSCL) is a rare recessive disease characterized by near absence of adipose tissue, resulting in severe dyslipidemia and insulin resistance. In most reported cases, BSCL is due to alterations in either seipin, of unknown function, or 1-acylglycerol-3- phosphate acyltransferase-beta (AGPAT2), which catalyzes the formation of phosphatidic acid. Objective: We sought to determine the genetic origin of the unexplained cases of BSCL. We thus sequenced CAV1, encoding caveolin-1, as a candidate gene involved in insulin signaling and lipid homeostasis. CAV1 is a key structural component of plasma membrane caveolae, and Cav1-deficient mice display progressive loss of adipose tissue and insulin resistance. Design: We undertook phenotyping studies and molecular screening of CAV1 in four patients with BSCL with no mutation in the genes encoding either seipin or AGPAT2. Results: A homozygous nonsense mutation (p.Glu38X) was identified in CAV1 in a patient with BSCL born from a consanguineous union. This mutation affects both the alpha-and beta-CAV1 isoforms and ablates CAV1 expression in skin fibroblasts. Detailed magnetic resonance imaging of the proband confirmed near total absence of both sc and visceral adipose tissue, with only vestigial amounts in the dorsal sc regions. In keeping with the lack of adipose tissue, the proband was also severely insulin resistant and dyslipidemic. In addition, the proband had mild hypocalcemia likely due to vitamin D resistance. Conclusions: These findings identify CAV1 as a new BSCL-related gene and support a critical role for caveolins in human adipocyte function.
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Expression screening for genes preferentially expressed in mouse fetal ovaries relative to testes identified Cav-1 as a candidate female-specific gene. Cav-1 encodes caveolin-1, a component of the cell membrane invaginations known as caveolae, which are involved in lipid regulation and signal transduction. In situ hybridization revealed high levels of Cav-1 mRNA in developing ovaries, compared with moderate or low levels in testes. Analysis of caveolin-1 protein distribution by immunofluorescence showed this difference to be due to the development of a dense and complex vascular network in the developing ovary. These observations point to a higher degree of differentiation and organization of the early stage mammalian ovary than previously suspected. (C) 2002 Wiley-Liss, Inc.
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Caveolae and their proteins, the caveolins, transport macromolecules; compartmentalize signalling molecules; and are involved in various repair processes. There is little information regarding their role in the pathogenesis of significant renal syndromes such as acute renal failure (ARF). In this study, an in vivo rat model of 30 min bilateral renal ischaemia followed by reperfusion times from 4 h to 1 week was used to map the temporal and spatial association between caveolin-1 and tubular epithelial damage (desquamation, apoptosis, necrosis). An in vitro model of ischaemic ARF was also studied, where cultured renal tubular epithelial cells or arterial endothelial cells were subjected to injury initiators modelled on ischaemia-reperfusion (hypoxia, serum deprivation, free radical damage or hypoxia-hyperoxia). Expression of caveolin proteins was investigated using immunohistochemistry, immunoelectron microscopy, and immunoblots of whole cell, membrane or cytosol protein extracts. In vivo, healthy kidney had abundant caveolin-1 in vascular endothelial cells and also some expression in membrane surfaces of distal tubular epithelium. In the kidneys of ARF animals, punctate cytoplasmic localization of caveolin-1 was identified, with high intensity expression in injured proximal tubules that were losing basement membrane adhesion or were apoptotic, 24 h to 4 days after ischaemia-reperfusion. Western immunoblots indicated a marked increase in caveolin-1 expression in the cortex where some proximal tubular injury was located. In vitro, the main treatment-induced change in both cell types was translocation of caveolin-1 from the original plasma membrane site into membrane-associated sites in the cytoplasm. Overall, expression levels did not alter for whole cell extracts and the protein remained membrane-bound, as indicated by cell fractionation analyses. Caveolin-1 was also found to localize intensely within apoptotic cells. The results are indicative of a role for caveolin-1 in ARF-induced renal injury. Whether it functions for cell repair or death remains to be elucidated. Copyright (C) 2003 John Wiley Sons, Ltd.
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Caveolae are involved in physical compartmentalization between different groups of signaling events. Its main component, CAV1, modulates different pathways in cellular physiology. The emerging evidence pointing to the role of CAV1 in cancer led us to study whether different alleles of this gene are associated with colorectal cancer (CRC). Since one of the most characterized enzymes regulated by CAV1 is eNOS, we decided to include both genes in this study. We analyzed five SNPs in 360 unrelated CRC patients and 550 controls from the general population. Two of these SNPs were located within eNOS and three within the CAV1 gene. Although haplotype distribution was not associated with CRC, haplotype TiA (CAV1) was associated with familiar forms of CRC (p<0.05). This was especially evident in CRC antecedents and nuclear forms of CRC. If both CG (eNOS) and TiA (CAV1) haplotypes were taken together, this association increased in significance. Thus, we propose that CAV1, either alone or together with eNOS alleles, might modify CRC heritability.
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We report that caveolin-1, one of the major structural protein of caveolae, interacts with TCP-1, a hetero-oligomeric chaperone complex present in all eukaryotic cells that contributes mainly to the folding of actin and tubulin. The caveolin-TCP-1 interaction entails the first 32 amino acids of the N-terminal segment of caveolin. Our data show that caveolin-1 expression is needed for the induction of TCP-1 actin folding function in response to insulin stimulation. Caveolin-1 phosphorylation at tyrosine residue 14 induces the dissociation of caveolin-1 from TCP-1 and activates actin folding. We show that the mechanism by which caveolin-1 modulates TCP-1 activity is indirect and involves the cytoskeleton linker filamin. Filamin is known to bind caveolin-1 and to function as a negative regulator of insulin-mediated signaling. Our data support the notion that the caveolin-filamin interaction contributes to restore insulin-mediated phosphorylation of caveolin, thus allowing the release of active TCP-1.
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AIMS: A fundamental phenomenon in inflammation is the loss of endothelial barrier function, in which the opening of endothelial cell junctions plays a central role. However, the molecular mechanisms that ultimately open the cell junctions are largely unknown.¦METHODS AND RESULTS: Impedance spectroscopy, biochemistry, and morphology were used to investigate the role of caveolin-1 in the regulation of thrombin-induced opening of cell junctions in cultured human and mouse endothelial cells. Here, we demonstrate that the vascular endothelial (VE) cadherin/catenin complex targets caveolin-1 to endothelial cell junctions. Association of caveolin-1 with VE-cadherin/catenin complexes is essential for the barrier function decrease in response to the pro-inflammatory mediator thrombin, which causes a reorganization of the complex in a rope ladder-like pattern accompanied by a loss of junction-associated actin filaments. Mechanistically, we show that in response to thrombin stimulation the protease-activated receptor 1 (PAR-1) causes phosphorylation of caveolin-1, which increasingly associates with β- and γ-catenin. Consequently, the association of β- and γ-catenin with VE-cadherin is weakened, thus allowing junction reorganization and a decrease in barrier function. Thrombin-induced opening of cell junctions is lost in caveolin-1-knockout endothelial cells and after expression of a Y/F-caveolin-1 mutant but is completely reconstituted after expression of wild-type caveolin-1.¦CONCLUSION: Our results highlight the pivotal role of caveolin-1 in VE-cadherin-mediated cell adhesion via catenins and, in turn, in barrier function regulation.
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To investigate whether caveolin-1 (cav-1) may modulate inducible nitric oxide synthase (iNOS) function in intact cells, the human intestinal carcinoma cell lines HT29 and DLD1 that have low endogenous cav-1 levels were transfected with cav-1 cDNA. In nontransfected cells, iNOS mRNA and protein levels were increased by the addition of a mix of cytokines. Ectopic expression of cav-1 in both cell lines correlated with significantly decreased iNOS activity and protein levels. This effect was linked to a posttranscriptional mechanism involving enhanced iNOS protein degradation by the proteasome pathway, because (i) induction of iNOS mRNA by cytokines was not affected and (ii) iNOS protein levels increased in the presence of the proteasome inhibitors N-acetyl-Leu-Leu-Norleucinal and lactacystin. In addition, a small amount of iNOS was found to cofractionate with cav-1 in Triton X-100-insoluble membrane fractions where also iNOS degradation was apparent. As has been described for endothelial and neuronal NOS isoenzymes, direct binding between cav-1 and human iNOS was detected in vitro. Taken together, these results suggest that cav-1 promotes iNOS presence in detergent-insoluble membrane fractions and degradation there via the proteasome pathway.
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Reactive oxygen species are now widely recognized as important players contributing both to cell homeostasis and the development of disease. In this respect nitric oxide (NO) is no exception. The discussion here will center on regulation of the inducible form of nitric oxide synthase (iNOS) for two reasons. First, only iNOS produces micromolar NO concentrations, amounts that are high by comparison with the picomolar to nanomolar concentrations resulting from Ca2(+)-controlled NO production by endothelial eNOS or neuronal nNOS. Second, iNOS is not constitutively expressed in cells and regulation of this isoenzyme, in contrast to endothelial eNOS or neuronal nNOS, is widely considered to occur at the transcriptional level only. In particular, we were interested in the possibility that caveolin-1, a protein that functions as a tumor suppressor in colon carcinoma cells (Bender et al., 2002; this issue), might regulate iNOS activity. Our results provide evidence for the existence of a post-transcriptional mechanism controlling iNOS protein levels that involves caveolin-1-dependent sequestration of iNOS within a detergent-insoluble compartment. Interestingly, despite the high degree of conservation of the caveolin-1 scaffolding domain binding motif within all NOS enzymes, the interaction detected between caveolin-1 and iNOS in vitro is crucially dependent on presence of a caveolin-1 sequence element immediately adjacent to the scaffolding domain. A model is presented summarizing the salient aspects of these results. These observations are important in the context of tumor biology, since down-regulation of caveolin-1 is predicted to promote uncontrolled iNOS activity, genotoxic damage and thereby facilitate tumor development in humans.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Der Transferrin-Zyklus ist ein wichtiges Modell für denintrazellulären Transport, daher sollten in der vorliegendenArbeit einzelne, immer noch unverstandene Prozesse desvesikulären, intrazellulären Transportes durch dieCharakterisierung einen in vitro-Transportassay untersuchtwerden. Der Ansatz eines in vitro-Systems wurde deshalbgewählt, um mit Experimenten in denen einzelne Faktoren undbestimmte Konditionen untersucht werden sollten, diese unterdefinierten, reproduzierbaren Konditionen durchzuführen, diein einem in vivo-System kaum zu gewährleisten sind. Ohne denEinfluss von störenden, weil unkontrollierten Faktoren,wie es bei in vivo-Systemen der Fall ist, konnte imvorliegende Ansatz der Transport zu immunisoliertenRecycling-Endosomen (die Isolierung erfolgte hierbei mitanti-Rab11-Antikörpern, einem Marker fürRecycling-Endosomen) unter bestimmten Bedingungen untersuchtwerden. Dabei wurde als Marker Acridinium-markiertesTransferrin gewählt, welches in Zellen internalisiert wurde.Die Spezifität des Transportes in dem zellfreien System warhierbei sehr hoch, wie Kontrollexperimente inImmunisolierungsansätzen ohne Rab11-Antikörper zeigten. ImRahmen einer ersten Charakterisierung des Transportassayswurden essentielle, für den in vivo-Transport essentielleParameter auch in den in vitro-Experimenten untersucht.Hierbei wurde zum einen der Faktor Temperatur gewählt, daTransport in Zellen bei 4°C in der Regel zum Erliegen kommt.Dies konnte auch in dem vorgestellten System gezeigt werden.Ein weiterer, essentieller Faktor ist Energie in Form vonATP. ATP-Depletion wurde in den Experimenten durch Hinzugabeeines ATP-erschöpfenden Systems erzielt. Auch hier zeigteder Transport von Ac-Tfn zu Recycling-Endosomen eine starkeInhibierung. Mit Hilfe des so charakterisierten Assayskonnten anschließend weitere Experimente durchgeführtwerden, die den Einfluss von bestimmten Reagenzien undKonditionen auf den Transport untersuchten. So zeigte derTransport in Zeitverlaufsexperimenten einen Anstieg desTransportes bis 30 Minuten, bei 30 Minuten wurde ein Maximumerreicht. Nach Erreichen dieses Maximums war nachfolgendeine leichte Abnahme des Transfers von Ac-Tfn zu denRecycling-Endosomen zu beobachten. Da Rab-Proteine alsSchlüsselregulatoren für den intrazellulären, vesikulärenTransport gelten, und die Immunisolierungen mitanti-Rab11-Antikörpern durchgeführt wurden, wurde somit auchder Einfluss dieser GTPasen auf das Transportsystemuntersucht. Zugegebenes GDI, welches in der Lage istRab-Proteine in GDP-gebundener Form von spezifischenMembranen zu extrahieren, und daher ein gut untersuchterInhibitor von Rab-Funktionen ist, konnte auch in diesemTransportassay den Transport von Transferrin inhibieren. Einweiterer Aspekt war die Rolle des Cytoskelettes imintrazellulären Transport. Da in früheren Untersuchungen(Trischler et al., 1999) Aktin auf Recycling-Endosomengefunden wurde, erfolgte in diesen Arbeiten eineKonzentration auf die Rolle des Aktin in diesenTransportprozessen. Durch die Zugabe von Cytochalasin D, daseinen Aufbau von Aktingerüsten verhindert, wurde derTransport ebenfalls inhibiert. Durchaffinitätschromatographische Aufreinigungen konnte einestarke Interaktion von Aktin an immobilisiertes Rab11gezeigt werden. Die eluierten Fraktionen, die neben Aktinnoch weitere, jedoch unbekannte Proteine enthielten, konntenin dem in vitro-Fusionsassay eingesetzt werden und führtendort zu einer Stimulation des Transportes. Neben demgefundenen Aktin, könnten somit noch weitere, unbekannteProteine in dem Proteingemisch wichtige Funktionen imintrazellulären, vesikulären Transport übernehmen. EineIdentifizierung dieser Proteine ist dabei für weiterführendeArbeiten essentiell.Caveolin-1, Markerprotein für die Caveolae-Membrandomänewird überraschenderweise von verschiedenen Zellensekretiert. Da Caveolin-1 normalerweise ein integralesMembranprotein ist, wird von einer Sekretion alsLipoproteinpartikel ausgegangen. Die Rolle diesessekretierten Partikels ist unbekannt, wobei einige Autoreneine Funktion als autokrinen/ parakrinen Faktor vorschlagen(Tahir et al., 2001). In der vorliegenden Arbeit solltendiese Partikel daher aufgereinigt und erstmalscharakterisiert werden. Die Partikel wurden aus transienttransfizierten LNCaP-Zellen gewonnen, die Cav-1 in dasserumfreie Medium abgaben. In einer erstenGrößenuntersuchung durch FPLC konnte ein Molekulargewichtzwischen 2.000.000 Da und 660.000 Da bestimmt werden. DieseResultate konnten durch den Ansatz der nativenBlau-Gelelektrophorese bestätigt werden. In einem weiterenAnsatz, der die Dichte der Partikel charakterisieren sollte,wurde in zwei unterschiedlichen Ansätzen (CsCl-, sowieOptiprep Dichtezentrifuagtion) eine ähnliche Dichte desPartikels wie HDL ermittelt. Um eine stärkere Aufreinigungder Partikel zu erzielen, wurde eine Aufreinigung mit Hilfevon Ni-NTA-Agarose durchgeführt. Dies war möglich, denn diebei der Transfektion verwendete C-DNA trug einen His6-tag.Die so aufgereingten Partikel verloren auch nach derNi-NTA-Chromatographie nicht ihre biochemischenEigenschaften, wie in überprüfenden CsCl-Gradienten zu sehenwar. Die Partikel konnten anschließend zum ersten Mal inelektronenmikroskopischen Aufnahmen (Negativkontrastierung)visualisiert werden. Ein weiteres Ziel dieser Arbeit war es,zu untersuchen ob auf Cav-1 Lipoproteinpartikeln nochweitere Proteine zu finden waren. Durch eine kombinierteAufreinigung über Ni-NTA Chromatographie undCsCl-Dichtezentrifugation und im Vergleich mit demAusgangsmaterial konnten in der Silberfärbung Proteinbandenerkannt werden, die wie Cav-1 in den Fraktionen angereichertvorlagen. Eine massenspektroskopische Identifikation einerder Banden ergab, dass es sich hierbei um nm 23(Nukleosid-diphosphat-kinase) handelte, einem Protein dasebenfalls von verschiedenen Tumoren sekretiert wird.
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Caveolin-1 (Cav-1), the essential structural constituent of caveolae, which are flask-shaped invaginations of the plasma membrane, has been found to play a key role in the modulation of cell proliferation and cancer development. It seems to act as an oncosuppressor or a promoter of growth, depending on the histotype, stage and grade of each tumour. The aim of this study was to analyze the effects of Caveolin-1 gene silencing on the proliferation of human lung cancer and osteosarcoma in vitro. Our data show that Cav-1 silencing blocks the growth in both metastatic lung cancer cell lines analyzed, suggesting a proliferation promoting action of the protein in these cells. A marked decrease of phospho-Akt, phospho-ERK, STAT3, cyclin D1, CDK4 and consequently of phospho-Rb expression was evident in the cells treated with Cav-1 siRNA. With regards to osteosarcoma, we demonstrated that the suppression of Cav-1 results in the blocking of MG-63 and in the slowing down of HOS proliferation, suggesting a role for Cav-1 as a promoter of tumour growth in these cell lines. A marked decrease of phospho-Akt, cyclin E, CDK2 and phospho-Rb and an increase of p21 expression levels were evident in the cells treated with Cav-1 siRNA. Our results suggest two new cell cycle inhibiting pathways, mediated by Cav-1 knock-down, and provide new insights into the molecular mechanisms underlying the tumour-promoting role of Cav-1 in lung cancer and osteosarcoma. In this work we also investigated the role of estrogens in lung cancer and the functional cross-talk between Cav-1 and estrogens/estrogen receptors in it. Our results show that 17β-estradiol induces proliferation either in RAL or in SCLC-R1 cells and that both cell lines are sensitive to 4-OHT antiproliferative effect. The sensitivity to estrogen stimulation seems to be gender- and/or histological type-independent in metastatic lung cancer in vitro.
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Peroxisome proliferator-activated receptor ? (PPAR?) is a transcription factor that promotes differentiation and cell survival in the stomach. PPAR? upregulates and interacts with caveolin-1 (Cav1), a scaffold protein of Ras/mitogen-activated protein kinases (MAPKs). The cytoplasmic-to-nuclear localization of PPAR? is altered in gastric cancer (GC) patients, suggesting a so-far-unknown role for Cav1 in spatial regulation of PPAR? signaling. We show here that loss of Cav1 accelerated proliferation of normal stomach and GC cells in vitro and in vivo. Downregulation of Cav1 increased Ras/MAPK-dependent phosphorylation of serine 84 in PPAR? and enhanced nuclear translocation and ligand-independent transcription of PPAR? target genes. In contrast, Cav1 overexpression sequestered PPAR? in the cytosol through interaction of the Cav1 scaffolding domain (CSD) with a conserved hydrophobic motif in helix 7 of PPAR?'s ligand-binding domain. Cav1 cooperated with the endogenous Ras/MAPK inhibitor docking protein 1 (Dok1) to promote the ligand-dependent transcriptional activity of PPAR? and to inhibit cell proliferation. Ligand-activated PPAR? also reduced tumor growth and upregulated the Ras/MAPK inhibitors Cav1 and Dok1 in a murine model of GC. These results suggest a novel mechanism of PPAR? regulation by which Ras/MAPK inhibitors act as scaffold proteins that sequester and sensitize PPAR? to ligands, limiting proliferation of gastric epithelial cells.
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A fundamental phenomenon in inflammation is the loss of endothelial barrier function, in which the opening of endothelial cell junctions plays a central role. However, the molecular mechanisms that ultimately open the cell junctions are largely unknown.