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The brain vascular system is composed of specialized endothelial cells, which regulate the movement of ions, molecules and cells from the blood lumen to the central nervous system (CNS). Endothelial cells in the brain form the blood-brain barrier (BBB) that is essential to maintain the brain homeostasis and protect the CNS from pathogens and toxins for a proper neurological function. Endothelium together with other cellular components such as pericytes, astrocytes and the basement membrane, forms the neurovascular unit (NVU), the structural unit of the BBB. Breakdown of the BBB occurs in various neurological disorders, leading to edema and neuronal damage. Therapeutic strategies focusing on factors that regulate the permeability of the BBB may help to improve neurological disorders and facilitate drug delivery to the brain.
Angiopoietins (Ang) are potential candidates for therapeutic targeting the BBB due to their role in regulating the vascular permeability in periphery. They are key growth factors that control angiogenesis and vessel maturation. Ang-1 and Ang-2 possess similar binding affinities to the Tie2 receptor tyrosine kinase, which is almost exclusively expressed on endothelial cells. Ang-1 is expressed in smooth muscle cells and pericytes, and binds in a paracrine manner to Tie2. This results in phosphorylation of the receptor and induction of downstream signaling pathways leading to vessel maturation via pericyte recruitment and blood vessel stabilization. Ang-2, on the other hand, is stored in Weibel Palade bodies in endothelial cells and is released upon inflammatory or angiogenic stimuli. Therefore, in mature, stabilized blood vessels, Ang-2 expression is low. Increased level of Ang-2 is only observed during development or in pathology such as ischemia, cancer and inflammation. When Ang-2 is released, it acts in an autocrine manner and interferes with Tie2 phosphorylation in a context-dependent way. Antagonizing the receptor results in de-stabilization of the vessels, often accompanied by reduced numbers of pericytes leading to myeloid cell infiltration. In conjunction with the vascular endothelial growth factor (VEGF), Ang-2 contributes to blood vessel sprouting, whereupon in absence of VEGF it promotes vessel regression. ...
Im Kindes- und Jugendalter gehoert das Rhabdomyosarkom zu den haeufigsten Weichteilsarkomen. Bisher belaeuft sich das Therapieverfahren auf chirurgische Entfernung, gefolgt von Chemotherapie, bzw. bei nicht-operablen Faellen auf Radiotherapie und Chemotherapie, jedoch haben sich die Ueberlebenschancen fuer Patienten mit einer Erkrankung in metastasiertem oder rezidiviertem Stadium trotz intensiver Forschung ueber mehrere Jahrzehnte hinweg kaum gebessert und bleiben bei unter 30%. Neue therapeutische Strategien versuchen das Immunsystem des Patienten zu modulieren und dieses gezielter oder aggressiver gegen Tumorzellen zu machen. Nebst direkter Injektion von Zytokinen oder Antikoerpern bietet die adoptive Immunzelltherapie einen vielversprechenden Ansatz. In der vorliegenden Arbeit lag der Fokus auf Natuerlichen Killer- (NK) Zellen, da diese ein hohes zytotoxisches Potential gegenueber Tumorzellen aufweisen. Eine der groessten Herausforderungen der NK-Zellforschung ist die Breitstellung ausreichender Mengen an NK-Zellen mit optimaler antitumoraler Funktion fuer den klinischen Einsatz. Viele aktuell erprobte NK-Zellexpansionsstrategien basieren auf der Verwendung von Hilfs- oder Feeder-Zellen (Versorgerzellen), die jedoch vor der Applikation in Patienten aus dem finalen Produkt entfernt werden muessen. In der vorliegenden Arbeit sollten Feeder-zellfreie NK-Zellexpansionsprotokolle unter Verwendung von Gammakettenzytokinen getestet werden.
Interleukin (IL-) 15 erwies sich dabei vor allem fuer die Vermehrung der NK-Zellen als besonders foerderlich. Im Vergleich dazu fielen die Expansionsraten mit IL-2 oder IL-21 geringer aus. Interessanterweise wurde der expansionsfoerdernde Effekt von IL-15 durch dauerhafte Anwesenheit von IL-21 im Kulturmedium gehemmt. Ein kurzer, dreitaegiger IL-21-Boost am Ende der Expansionsphase wirkte sich wiederum positiv auf die NK-Zellexpansionsraten aus. Zudem zeigte sich durch IL-21 ein vermehrtes Auftreten von NK-Zellen des reiferen CD16posCD56dim Phaenotyps, der die zytotoxische Funktion vermittelt. Bei Degranulationsuntersuchungen wurden eine IL-21-induzierte Exozytoseaktivitaet und die vermehrte Ausschuettung von Perforin und Granzym B, welche Apoptose in den Zielzellen ausloesen, beobachtet. Vor allem der dreitaegige Boost mit IL-21 bewirkte eine gesteigerte Zytotoxizitaet gegenueber Tumorzellen, insbesondere gegenueber Rhabdomyosarkomzellen.
Auf dieser Grundlage bot es sich an fuer die NK-Zellexpansion ein Zwei-Phasen-Protokoll anzuwenden, bestehend aus einer initialen Proliferationsphase mit IL-15 und einem anschliessendem IL-21-Boost, durch den die antitumorale Funktionalitaet der NK-Zellen gesteigert wurde. Dieses IL-15+21boost-Protokoll wurde mit anderen Kombinationen aus den Gammakettenzytokinen IL-2, IL-15 und IL-21 verglichen und stellte sich hinsichtlich der NK-Zellexpansionsraten, der Degranulationskapazitaet und der damit verbundenen Zytotoxizitaet als den anderen Protokollen ueberlegen heraus.
Zytokinexpandierte NK-Zellen zeigten eine hoehere Rezeptorexpression an ihren Oberflaechen als unstimulierte Zellen. Die Expansion mit dem IL-15+21boost-Protokoll bewirkte die hoechste Dichte des Todesrezeptors TRAIL, jedoch auch der inhibitorischen KIR2D-Rezeptorfamilie. Fuer andere Oberflaechenmarker ergab sich jeweils eine mittlere Expressionsdichte verglichen mit dem IL-15- bzw. dem IL-15+21-Expansionsprotokoll. Die Sekretion von proinflammatorischen Zytokinen wie Interferon-gamma (IFN-g) und Tumor-Nekrose-Faktor-alpha (TNF-a) wurde zudem verstaerkt durch IL-21 angeregt, aber ebenso die Sekretion des immunsupprimierenden IL-10.
Weiter wurden die zytoinexpandierten NK-Zellen zur UEberpruefung ihrer in vivo Funktionalitaet anhand eines praeklinischen Xenograftmodells unter Verwendung von NOD SCID IL-2-Rgamma-/- (NSG) Maeusen und der Technologie der in-vivo-Biolumineszenzbildgebung getestet. Dabei konnte beobachtet werden, dass die NK-Zellen das Wachstum luciferaseexprimierender humaner Rhabdomyosarkome verlangsamten. Die Wirksamkeit der IL-15+21boost-expandierten NK-Zellen zeigte sich vor allem in einem kombinierten Ansatz, bei dem die Tumore zunaechst mit ionisierender Strahlung behandelt wurden und residuale Rhabdomyosarkomzellen anschliessend durch den adoptiven Transfer von humanen NK-Zellen in ihrem Wachstum gehemmt waren, solange die NK-Zelltherapie andauerte. Somit stellte sich die Kombination aus Bestrahlung und NK-Zelltransfer als wirksamer im Einsatz gegen Rhabdomyosarkome heraus als die alleinige Behandlung der Tumore durch Radiotherapie.
Zusammengefasst konnte in dieser Arbeit ein NK-Zellexpansionsprotokoll entwickelt werden, dass durch den ausschliesslichen Einsatz von Gammakettenzytokinen zu einem funktionalen NK-Zellprodukt fuehrte, welches auch in vivo lytische Aktivitaet gegenueber Rhabdomyosarkomzellen aufwies.
The role of small leucine-rich proteoglycans, biglycan and decorin, in podocytopathy and albuminuria
(2011)
Biglycan is a member of the small leucine-rich proteoglycan (SLRP) family and is involved in the assembly of extracellular matrix components. In macrophages soluble biglycan acts as an endogenous ligand of the innate immunity receptors TLR2 and TLR4. Data addressing the role of biglycan in renal pathology are surprisingly limited. In a normal kidney, biglycan is expressed mainly in the tubulointerstitium; however, in the course of various renal diseases its expression may be altered. The biological role and mechanisms of biglycan action in the pathology of renal diseases, especially those affecting glomeruli, remain poorly understood.
Albuminuria is the first detectable clinical abnormality in diabetic nephropathy. In this study we detected increased biglycan mRNA expression in glomeruli of renal biopsies of patients with incipient diabetic nephropathy, with predominant localization in podocytes. This novel finding raised the question about the role and mechanisms of biglycan action in diabetic podocyte injury and whether the mechanisms of biglycan signaling causing podocyte injury and albuminuria could be extrapolated to other glomerular diseases.
To investigate the role of biglycan in the cause of diabetic podocyte injury and albuminuria we used the murine model of STZ-induced diabetic nephropathy and wild type (Bgn+/0) and biglycan deficient (Bgn-/0) mice. We observed that biglycan was expressed on mRNA and protein levels in podocytes of diabetic Bgn+/0 mice and that diabetic Bgn+/0 mice also had significantly higher albuminuria compared to non-diabetic mice 6 and 12 weeks after disease induction. Biglycan deficiency was shown to be an important factor in albuminuria development. Namely, we observed that diabetic Bgn-/0 mice had significantly lower levels of urinary albumin compared to diabetic Bgn+/0 mice. We showed that less severe podocyte loss in the urine of diabetic Bgn-/0 mice was associated with significantly higher nephrin and podocin glomerular expression compared to diabetic Bgn+/0 mice. Our data suggested that biglycan deficiency was protective against podocyte loss into urine and might be beneficial against development of albuminuria in diabetes.
Biglycan contributed to podocyte actin rearrangement due to increased phosphorylation of Rac1 in vitro. Furthermore, biglycan induced caspase-3 activity and production of reactive oxygen species (ROS), thus enhancing apoptosis in cultured podocytes. Biglycan-induced ROS generation was TLR2/TLR4-dependent. Overexpression of soluble biglycan in wild type mice induced albuminuria under normal conditions and significantly increased albuminuria under pathological conditions (murine model of LPS-induced albuminuria). Inhibition of Rac1 activity in vivo decreased the albuminuria induced by biglycan overexpression. In patients with glomerular diseases, biglycan was detected in urine and was associated with nephrin appearance in the urine of these patients and with increased albuminuria. Collectively, our results elucidate a novel mechanism for biglycan-induced TLR2- and TLR4-dependent, Rac1- and ROS-mediated podocytopathy leading to podocyturia, albuminuria development and progression of glomerular diseases. Interfering with biglycan actions and blocking its signaling via TLR2 and TLR4 might be a potential therapeutic strategy against these diseases. To achieve this goal, the specific mechanisms for binding of biglycan to TLR2 and TLR4 must be elucidated and effective ways of preventing this binding must be developed. Nevertheless, biglycan remains the “danger signal” that activates innate immune receptors in non-immune cells and triggers the deleterious mechanisms leading to aggravation of renal injury.
Juvenile Neuronal Ceroid Lipofuscinosis (JNCL) is a rare inherited childhood neurodegenerative disease that is caused by a mutation in the gene CLN3. The function of the protein produced by the gene has remained elusive, and therefore the disease mechanism of JNCL is as of yet unknown. The disease is fatal, and no cure is currently available. We believe that simvastatin shows promise as a possible treatment. Simvastatin is well tolerated in children, and as currently no other viable, less invasive treatment for JNCL exists, at least pilot-scale clinical trials for this new off-label use of simvastatin are warranted.
The protein CLN3 has been indicated to have several different subcellular localizations and functions, but conclusive evidence about its role in cellular metabolism is lacking. It is also unclear why the mutation causes the distinct phenotype of the JNCL disease. In order to bring lucidity to the issue, we set out to identify metabolic pathways related to the phenotype of JNCL by using Multi-Epitope Ligand Cartography (MELC) and the related field of toponomics. Toponomic methods are required to process the massive amount of data generated by the MELC runs in order to extract information from them.
Our disease model of choice was the CLN3Δex7/8 knock-in mouse. To separate cause from effect, we compared embryonal wild type and mutant mouse brains to their adult counterparts. The first analyses revealed progressively abnormal Combinatorial Molecular Patterns (CMPs, an unit of toponomic data) related to cholera toxin/ganglioside 1 (Ctx/GM1), which is a membrane microdomain marker.
Cholesterol is an essential part of microdomains, so we utilized filipin staining to see if there were actual changes in cholesterol concentration and localization between healthy and diseased animals. After the disturbance in cholesterol metabolism was verified, we investigated the metabolic pathway that synthesizes cholesterol, the mevalonate pathway. Simvastatin is a drug that specifically down-regulates the mevalonate pathway. Fish oil affects lipid homeostasis and has some effects similar to those of simvastatin, and both of these drugs have previously been studied for their effects on neurodegenerative diseases. After treatment of mice with these drugs, highperformance liquid chromatography (HPLC) measurements on the brain homogenate showed a decrease in levels of farnesyl pyrophosphate (FPP) and geranyl-geranyl pyrophosphate (GGPP), products of the mevalonate pathway, confirming the effect of these drugs on the brains of the animals. Analyses of motor function of the mice further supported the notion that simvastatin had a positive effect on the condition of the diseased animals.
CMP analyses from the simvastatin treated mice showed a rescue of the Ctx/GM1 CMPs, suggesting at least a partial restoration of membrane microdomain homeostasis. Filipin staining revealed reversion of the apparent cholesterol depletion in the adult mutant mouse hippocampus by simvastatin. Interestingly, an additional effect of the treatment was found: simvastatin also affected glutamate receptor homeostasis, especially as regarding to N-methyl-D-aspartate (NMDA) and alphaamino-3-hydroxyl-5-methyl-4-isoxazole-propionate (AMPA) receptors. This finding suggested that excitotoxicity could be a part of the disease process, and pointed towards glutamate receptors as possible therapy targets. This is in line with previous studies that have shown that attenuation of AMPA receptors and L voltage-dependent channels improve the phenotype of a JNCL mouse and cell model, respectively.
Simvastatin mediates many of its effects via downregulation of the mevalonate pathway products, such as isoprenoids and cholesterol. However, simvastatin also has multiple pleiotropic effects that include suppression of excitotoxicity and granting neuroprotection. It is apparent that simvastatin treatment has a positive effect on JNCL mice, but if its effects are mediated via cholesterol (and membrane microdomains), isoprenoids (and isoprenylated proteins) or via a fully cholesterol independent mechanism remains to be solved.
In this study we have shown that with the MELC method and toponomics it is possible to approach rare diseases with confounded disease mechanisms with a hypothesis-free approach, to identify possible drug targets, and to monitor the effects of the drugs on treated individuals. This should open up a new avenue in the research of the many diseases that so far have avoided all attempts at discerning their nature.
CAP (c-Cbl assoziiertes Protein) ist ein Adapterprotein, welches zusammen mit ArgBP2 und Vinexin die SoHo-Protein-Familie bildet. Es besitzt in seinem N-terminalen Bereich eine SoHo-Domäne und im C-Terminus drei SH3-Domänen, über welche es mit einer Vielzahl von Proteinen interagieren kann. CAP spielt bei verschiedenen Signaltransduktionsvorgängen und der Reorganisation des Aktinzytoskelettes eine Rolle. So wurde ihm eine Funktion im PI3-Kinase-unabhängigen Insulinsignalweg zugeschrieben. In Zell-Zell-Kontakten ist CAP zusammen mit Nectin und Afadin Bestandteil des NAPSystems, welches parallel zu Cadherin-Catenin-Adhäsionen existiert. In Fokalkontakten bindet CAP an FAK, Paxillin und Vinculin, welche wichtig für die Regulation der Zell-Matrix-Adhäsionen sind. In der vorliegenden Arbeit sollte die Funktion von CAP bei der Assoziation mit dem Aktinzytoskelett näher untersucht werden. Es wurde gezeigt, daß die Kolokalisation von CAP mit Vinculin und Aktin dynamisch und vom Ausbreitungsgrad der Zelle und dem Expressionsniveau des Proteins abhängig ist. Ohne funktionelle SH3-Domänen lokalisiert CAP nicht mehr in Fokalkontakten, kann aber bei Überexpression noch eine Ausbildung von Streßfasern induzieren. Die Funktionalität der zweiten und der dritten SH3-Domäne von CAP ist für die Zelladhäsion von Epithelzellen von Bedeutung, da Konstrukte, die in konservierten Aminosäuren der Domänen mutiert worden sind, eine verringerte Zellausbreitung aufweisen. CAP wurde zudem als ein Interaktionspartner und Substrat der Tyrosinkinasen c-Abl und c-Src charakterisiert. Die Assoziation mit den Kinasen wird dabei vor allem über den C-Terminus von CAP vermittelt, und CAP kann direkt mit der Src-Kinase interagieren. CAP wird von c-Abl überwiegend an Tyrosin 360, und von c-Src bevorzugt an Tyrosin 326 phosphoryliert. Diese Tyrosine liegen innerhalb bekannter Konsensus-Motive der Kinasen. Phosphorylierungsdefiziente CAP-Konstrukte sind noch dazu in der Lage, mit Vinculin und Aktin zu kolokalisieren. Tyrosin 326 hat jedoch einen Einfluß auf die Zellausbreitung auf Fibronektin, da ein in dieser Aminosäure mutiertes Konstrukt einen Defekt hierbei aufweist. Den genauen Mechanismus, über welchen CAP seinen Einfluß auf die Zell-Matrix-Adhäsion ausübt, ist noch ungeklärt. Durch die hier erstmals aufgezeigte Phosphorylierung des Adapterproteins erweitern sich dessen Interaktionsmöglichkeiten durch mögliche Bindungen an SH2-Domänen-enthaltende Proteine. CAP könnte als Bindeglied zwischen c-Abl und c-Src und weiteren zytoskelettalen Komponenten dazu beitragen, die Kinasen an Fokalkontakten zu verankern und ihnen neue Substrate zuzuführen. Die Interaktion mit CAP könnte dabei die Aktivität der Kinasen erhöhen. Weiterführende Studien werden die in diesem Signalweg nachgeschalteten Komponenten untersuchen und auch eine putative Rolle der Phosphorylierung von CAP in den bereits bekannten zellulären Zusammenhängen wie dem Insulinsignalweg näher beleuchten.
Reggie-1 (flotillin-2) and reggie-2 (flotillin-1) are membrane microdomain proteins which are associated with the membrane by means of acylation. They influence different cellular signaling processes, such as neuronal, T-cell and insulin signaling. Upon stimulation of the EGF receptor, reggie-1 becomes phosphorylated and undergoes tyrosine 163 dependent translocation from the plasma membrane to endosomal compartments. In addition, reggie-1 was shown to influence actindependent processes. Reggie-2 has been demonstrated to affect caveolin- and clathrin-independent endocytosis. Both proteins form homo- and hetero-oligomers, but the function of these oligomers has remained elusive. Moreover, it has not been clarified if functions of reggie-1 are also influenced by reggie-2 and vice versa. The first aim of the study was to further investigate the interplay and the heterooligomerization of reggie proteins and their functional effects. Both reggie proteins were individually depleted by means of siRNA. In different siRNA systems and various cell lines, reggie-1 depleted cells showed reduced protein amounts of reggie-1 and reggie-2, but reggie-2 knock down cells still expressed reggie-1 protein. The decrease of reggie-2 in reggie-1 depleted cells was only detected at protein but not at mRNA level. Furthermore, reggie-2 expression could be rescued by expression of siRNA resistant wild type reggie-1-EGFP constructs, but not by the soluble myristoylation mutant G2A. This mutant was also not able to associate with endogenous reggie-1 or reggie-2, which demonstrates that membrane association of reggie-1 is necessary for hetero-oligomerization. In addition, fluorescence microscopy studies and membrane fractionations showed that correct localization of overexpressed reggie-2 was dependent on co-overexpressed reggie-1. Thus, hetero-oligomerization is crucial for membrane association of reggie-2 and for its protein stability or protein expression. Moreover, the binding of reggie-2 to reggie-1 required tyrosine 163 of reggie-1 which was previously shown to be important for endosomal translocation of reggie-1. Since reggie-2 was implicated to function in clathrin- and caveolin-independent endocytosis pathways, the effect of reggie-2 depletion on reggie-1 endocytosis was investigated. Indeed, reggie-1 was dependent on reggie-2 for endosomal localization and EGF-induced endocytosis. By FRET-FLIM analysis it could be shown that reggie heterooligomers are dynamic in size or conformation upon EGF stimulation. Thus, it can be concluded that reggie proteins are interdependent in different aspects, such as protein stability or expression, membrane association and subcellular localization. In addition, these results demonstrate that the hetero-oligomers are dynamic and reggie proteins influence each other in terms of function. A further aim was the characterization of reggie-1 and reggie-2 function in actindependent processes, where so far only reggie-1 was known to play a role. Depletion of either of the proteins reduced cell migration, cell spreading and the number of focal adhesions in steady state cells. Thus, also reggie-2 affects actin-dependent processes. Further investigation of the focal adhesions during cell spreading revealed that depletion of reggie-1 displayed different effects as compared to reggie-2 knock down. Reggie-1 depleted cells had elongated cell-matrix-adhesions and showed reduced activation of FAK and ERK2. On the other hand, depletion of reggie-2 resulted in a restricted localization of focal adhesion at the periphery of the cell and decreased ERK2 phosphorylation, but it did not affect FAK autophosphorylation. Hence, reggie proteins influence the regulation of cell-matrix-adhesions differently. A link between reggie proteins and focal adhesions is the actin cross-linking protein -actinin. The interaction of -actinin with reggie-1 could be verified by means of co-immunoprecipitations and FRET-FLIM analysis. Reggie-1 binds -actinin especially in membrane ruffles and in other locations where actin remodeling takes place. Moreover, -actinin showed a different localization pattern during cell spreading in reggie-1 depleted cells, as compared to the control cells. These results provide further insights into the function of both reggie proteins. Their interplay and hetero-oligomerization was shown to be crucial for their role in endocytosis. In addition, both reggie proteins influence actin-dependent processes and differentially affect focal adhesion regulation.
Cell-cell adhesion is an essential process during the development of multicellular organisms. It is based on various cellular junctions and ensures a tight contact between neighboring cells, enabling interactive exchanges necessary for morphological and functional differentiation and maintaining the homeostasis of healthy tissue organization. Two important types of cell-cell adhesions are the adherens junction (AJ) and the desmosome which link the actin cytoskeleton and intermediate filaments to cadherin-based adhesion sites. The core of these structures is composed of single-span transmembrane proteins of the cadherin superfamily which include, among other members, the classical cadherins, e.g. E-cadherin, as well as the desmosomal cadherins, e.g. desmoglein-3. The cytoplasmic domains of the desmosomal and classical cadherins enable interactions with proteins of the catenin family. Classical cadherins preferentially associate with β-catenin and p120-catenin, whereas desmosomal cadherins bind to γ-catenin and plakophilins. Intriguingly, γ-catenin, also known as plakoglobin, is so far the only protein known to be present both in the AJ and the desmosome.
In this study, we showed that the two homologous, membrane raft-associated proteins flotillin-1 and flotillin-2 associate with core proteins of the AJ and the desmosome in vitro and in vivo. In confluent human, non-malignant epithelial MCF10A cells and human skin cryosections, flotillin-2 colocalized with E-cadherin, desmoglein-3 and γ-catenin at cell-cell contact sites, whereas flotillin-1 showed barely any overlap with these proteins. In addition, we detected a colocalization of both flotillins with the actin-binding protein α-actinin in membrane ruffles in subconfluent and at cell-cell contact sites in confluent MCF10A cells as well as in human skin cryosections. The interaction with α-actinin was later shown to be flotillin-1 dependent by performing indirect GST pulldown experiments with purified α-actinin-1-GST in MCF10A cell lysates.
Since flotillin-2 strongly colocalized with cell-cell junctions, this suggested that flotillins might be found in complex with cell adhesion proteins. Thus, we performed coimmunoprecipitation experiments in murine skin lysates and various cell lines of epithelial origin, such as human breast cancer MCF7 cells, human keratinocyte HaCaT cells and primary mouse keratinocytes. These experiments demonstrated that flotillins, especially flotillin-2, coprecipitated with E-cadherin, desmosomal cadherins and γ-catenin in relation to the respective cell type and the maturation status of these cell-cell adhesion structures. However, since γ-catenin is so far the only protein known to be present in the AJ and the desmosome, we further assumed that the complex formation of flotillins with cell adhesion structures is mediated by γ-catenin. For this, we performed indirect GST pulldown experiments in MCF10A cell lysates with bacterially expressed, purified flotillin-1-GST, flotillin-2-GST and γ-catenin-GST and were able to verify the complex formation of adhesion proteins and flotillins in vitro. To further test if the interaction of γ-catenin and flotillins is a direct one, we used purified flotillin-1-GST or flotillin-2-GST and γ-catenin-MBP fusion proteins. Both flotillins directly interacted with γ-catenin in this in vitro assay. In addition, mapping of the interaction domains in γ-catenin by using GST fusion proteins carrying different parts of γ-catenin suggested that flotillins bind to a discontinuous γ-catenin binding domain which consists of a Major determinant around ARM domains 6-12, most likely with a major contribution of the ARM domain 7, and possibly including the NT part of γ-catenin.
To study the effect of flotillin depletion on cell-cell adhesion, we generated stable MCF10A cell lines in which flotillins were knocked down by means of lentiviral shRNAs. Staining of E-cadherin and γ-catenin in these cells showed that the localization at the cell-cell borders was significantly altered after flotillin-2 depletion, which pointed to a role for flotillin-2 in the formation of cell-cell adhesion structures in epithelial cells. Furthermore, isolation of detergent resistant membranes (DRMs) from these cells demonstrated that upon depletion of flotillin-2, a significant amount of E-cadherin and γ-catenin shifted into raft fractions. On the contrary, no change was detected in flotillin-1 knockdown cells. These observations point to a functional role of flotillin-2 in the regulation of raft association of cell-cell adhesion proteins. To gain more insight into the in vivo relevance of our findings, we next studied the function of flotillins in the skin of Flot2-/- knockout mice. Analysis of lysates prepared from the skin of one year old female animals revealed an increased expression of E-cadherin, desmoglein-1 and γ-catenin but not β-catenin, implicating that specific adhesion proteins are upregulated in flotillin-2 knockout skin.
Since flotillins are tightly associated with membrane microdomains we next studied the interaction of flotillin-2 with membrane cholesterol. Using the photoreactive cholesterol analog azocholestanol, we were able to show that flotillin-2 and cholesterol directly interacted. In addition, previous studies speculated that flotillin-2 interacts with cholesterol via two putative cholesterol recognition/interaction amino acid consensus (CRAC) motifs. Analysis of the flotillin-2 sequence revealed that flotillin-2 actually contains four putative CRAC motifs. However, using various flotillin-2 CRAC mutant GFP fusion proteins, we were able to show that none of the putative CRAC motifs is functional, which suggested that flotillin-2 interacts with membrane cholesterol, e.g., via posttranslational modifications, such as myristoylation and palmitoylation which were previously shown to be essential for membrane association of flotillin proteins.
Untersuchung der Interaktion zwischen NCoA-Koaktivator-Proteinen in der Transkriptionsregulation
(2007)
Die Mitglieder der NCoA-Koaktivator-Familie fungieren als Koaktivatoren für verschiedene Transkriptionsfaktoren, wie z.B. nukleäre Hormonrezeptoren und STAT-Proteine. NCoA-Proteine rekrutieren sekundäre Koaktivatoren, die durch die Modifikation des Chromatins die Transkriptionsaktivierung ermöglichen. Vorhergehende Studien postulierten die Dimerisierung von NCoA-Proteinen über die aminoterminalen bHLH/PAS-Domänen und die Rekrutierung von Paaren von NCoA-Proteinen, konnten jedoch eine direkte Interaktion nicht nachweisen. In unserer Arbeitsgruppe konnte gezeigt werden, dass die PAS-B-Domäne von NCoA-1 ein LXXLL-Motiv in der Transaktivierungsdomäne von STAT6 binden kann. Im Rahmen dieser Arbeit sollte untersucht werden, ob eine Interaktion von Mitgliedern der NCoA-Proteinfamilie über die PAS-B-Domäne und eigene LXXLL-Motive vermittelt werden kann und welche physiologische Bedeutung die Interaktion von NCoA-Proteinen hat. Die Interaktion endogener NCoA-Proteine konnte in zwei verschiedenen Zelllinien nachgewiesen werden. Es konnte gezeigt werden, dass die PAS-B-Domänen aller drei NCoA-Familienmitglieder mit allen Volllängen-NCoA-Proteinen interagieren können und für eine solche Interaktion ausreichend sind. Dabei interagieren die PAS-B-Domänen spezifisch mit einer Region in der CBP-Interaktions-Domäne (CID/AD1) von NCoA-1, die zwei LXXLL-Motive und den vollständigen Bereich, der die Interaktion mit CBP vermittelt, enthält. Es zeigte sich, dass sich die Bindungsmotivspezifität der NCoA-1-PAS-B-Domäne von den Bindungsmotivspezifitäten der PAS-B-Domänen von NCoA-2 und NCoA-3 unterscheidet. Ebenso zeigten sich unterschiedliche Bindungsmotivspezifitäten für die Interaktion mit der CID/AD1 von NCoA-3, die nur mit der PAS-B-Domäne von NCoA-1 interagierte. Eine physiologische Bedeutung der charakterisierten PAS-B/CID/AD1-Interaktion auf die Bildung und Rekrutierung von Koaktivator-Komplexen wurde mittels Überexpressions-Experimenten untersucht, in denen dominant negative Effekte erwartet wurden. So führte die Überexpression der PAS-B-Domäne bzw. die Kompetition mit der CID/AD1 zur Inhibition der Interaktion von NCoA-1 mit dem Koaktivator CBP und dem Transkriptionsfaktor STAT6. Außerdem führte die stabile Überexpression der PAS-B-Domänen von NCoA-1 und NCoA-3 zu einer veränderten Expression des natürlichen endogenen Androgen-Rezeptor-Zielgenes PSA. Die in dieser Arbeit identifizierte Interaktion von NCoA-Proteinen stellt einen neuen und, zu den bisher bekannten Modellen der Koaktivator-Rekrutierung, ergänzenden Mechanismus dar. Dies gilt sowohl für eine postulierte inter- und intramolekulare Interaktion von NCoA-1 bei der STAT6-vermittelten Transkriptionsaktivierung, als auch für die durch nukleäre Hormonrezeptoren geforderte Rekrutierung von Paaren von NCoA-Proteinen. Zusammenfassend können die in dieser Arbeit erhaltenen Ergebnisse dabei helfen, das Verständnis der dynamischen Rekrutierung von Koaktivatoren bzw. Koaktivator-Komplexen und damit der Regulation der Genexpression, weiter zu verbessern.
The long sought molecular function of membrane raft-associated flotillin proteins is slowly becoming resolved, partially owing to the increasing knowledge about their interaction partners. Being ubiquitously expressed and evolutionarily highly conserved, flotillins carry out important cellular functions, one of which is the regulation of signal transduction pathways. This study shows that the signaling adaptor protein fibroblast growth factor receptor substrate 2 (FRS2) directly interacts both in vivo and in vitro with flotillin-1 (flot-1). FRS2 is an important docking protein of many receptor tyrosine kinases. It regulates downstream signaling by forming molecular complexes with other adaptor proteins and tyrosine phosphatases, and seems to be a critical mediator of sustained extracellular signal regulated kinase (ERK) activity. Flot-1 has also been implicated in the regulation of ERK activity upon EGF and FGF stimuli. Furthermore, flot-1 forms signalosomes with EGFR and the downstream components of the MAP kinase pathway. The newly discovered interaction between FRS2 and flot-1 was shown to be mediated by the phosphotyrosine binding (PTB) domain and, to a lesser extent, the C-terminus (CT) of FRS2 and by the C-terminus of flot-1. Flot-1 coprecipitated together with FRS2 from murine tissues and cell lysates, demonstrating that this interaction also takes place in vivo. Interestingly, flot-2, which shows a high homology to flot-1 and forms stable oligomeric complexes with it, does not appear to directly interact with FRS2. Novel insights into the functional role of the interaction between flot-1 and FRS2 were provided by the results showing that depletion of flot-1 affects the cellular localization of FRS2. In hepatocytes stably depleted of flot-1, FRS2 appeared to be more soluble. Furthermore, upon pervanadate stimulation of the cells, a small fraction of FRS2 was recruited into detergent resistant membranes, but the recruitment did not take place in the absence of flot-1. Triggered by the same stimulus, a fraction of FRS2 was translocated to the nucleus independently of flot-1. Overexpression of FRS2 has previously been shown to result in increased ERK activation. However, in cells depleted of flot-1, FRS2 was not able to compensate for the compromised ERK activation after EGF or FGF stimulation. This might imply that FRS2 and flot-1 are functionally interconnected and that FRS2 resides upstream of flot-1. Taken together, the results presented here indicate that this complex may be involved in the control of signaling downstream of receptor tyrosine kinases and is important for ensuring a proper signaling response. In the absence of flot-1, increased Tyr phosphorylation of FRS2 was observed. It is known that Tyr and Thr phosphorylation of FRS2 are reciprocally regulated. Since ERK is a known executor of the FRS2 Thr phosphorylation, and ERK activity was shown to be severely diminished upon flot-1 depletion, the increased Tyr phosphorylation of FRS2 was in agreement with this and might be a direct consequence of a decreased ERK activity upon flot-1 depletion. FRS2 owes its name to the major and the first described function of this protein as a substrate for FGFR. PTB domain of FRS2 was published to constitutively bind the juxtamembrane domain of FGFR. In this study, the PTB domain was mapped to be involved in the constitutive interaction with flot-1 and the competition was shown to exist between flot-1 and FGFR1 for binding to FRS2. Another novel interaction partner of FRS2 was discovered in the present study. Cbl-associated protein (CAP) is an adaptor protein with three SH3 domains and it plays a role during insulin signaling by recruiting the signaling complex to lipid rafts. CAP was previously shown to interact with flot-1 via the SoHo domain, and this interaction was found to be crucial for the lipid raft recruitment of other signaling components. Both the PTB domain and CT of FRS2 were found to mediate the interaction with CAP, whereas in CAP, the SoHo domain, together with the third SH3 domain, seems to bind to FRS2. SH3 domains mediate the assembly of specific protein complexes by binding to proline rich sequences, several of which are present in FRS2. Due to overlapping interaction domains, FRS2 and flot-1 competed for the binding to CAP. However, the interaction with neither CAP nor flot-1 was necessary for the observed nuclear translocation of FRS2. Since CAP is expressed as several tissue- and developmental stage-specific isoforms, a further aim of this study was to analyze the expression of its isoforms in mouse embryonic fibroblasts (MEFs). Many new isoforms were discovered here which have not been described in the literature so far. They all contain the SoHo domain and three SH3 domains, but differ among themselves by the presence and length of a proline-rich region that preceeds the SoHo domain and by a novel 20-amino acid (AA) stretch between the second and the third SH3 domain. The length of the proline-rich region turned out to be an important factor determining the strength of the interaction with FRS2. The interaction was found to be weakened by the increasing length of this region. The new isoforms possessing the 20-AA stretch are specifically expressed in murine muscular tissues, with the highest level in the heart. During adipogenesis, we observed a shift in the abundance of the isoforms, in that only the isoforms without the insertion were shown to be upregulated on mRNA level. However, during myogenesis, preferentially expressed isoforms were those with the insertion. The collected data implicate that isoforms with the 20-AA insertion might be more ubiquitous in nondifferentiated/embryonic cells and that the observed "isoform-switch" might be dependent on the cell fate and differentiation state.