571 Physiologie und verwandte Themen
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- Latrophilin (2)
- Adhesion-GPCR (1)
- Bruchpilot (1)
- Cirl (1)
- Complexin (1)
- DREAM complex (1)
- Drosophila (1)
- Drosophila melanogaster (1)
- G-Protein gekoppelte Rezeptor (1)
- GPCR (1)
Platelets are continuously produced from megakaryocytes (MK) in the bone marrow by a cytoskeleton-driven process of which the molecular regulation is not fully understood.
As revealed in this thesis, MK/ platelet-specific Profilin1 (Pfn1) deficiency results in micro- thrombocytopenia, a hallmark of the Wiskott-Aldrich syndrome (WAS) in humans, due to accelerated platelet turnover and premature platelet release into the bone marrow. Both Pfn1-deficient mouse platelets and platelets isolated from WAS patients contained abnormally organized and hyper-stable microtubules. These results reveal an unexpected function of Pfn1 as a regulator of microtubule organization and point to a previously unrecognized mechanism underlying the platelet formation defect in WAS patients.
In contrast, Twinfilin2a (Twf2a) was established as a central regulator of platelet reactivity and turnover. Twf2a-deficient mice revealed an age-dependent macrothrombocytopenia that could be explained by a markedly decreased platelet half-life, likely due to the pronounced hyper-reactivity of \(Twf2a^{-/-}\) platelets. The latter was characterized by sustained integrin acti- vation and thrombin generation in vitro that translated into accelerated thrombus formation in vivo. To further elucidate mechanisms of integrin activation, Rap1-GTP-interacting adaptor molecule (RIAM)-null mice were generated. Despite the proposed critical role of RIAM for platelet integrin activation, no alterations in this process could be found and it was concluded that RIAM is dispensable for the activation of β1 and β3 integrins, at least in platelets. These findings change the current mechanistic understanding of platelet integrin activation.
Outside-in signaling by integrins and other surface receptors was supposed to regulate MK migration, but also the temporal and spatial formation of proplatelet protrusions. In this the- sis, phospholipase D (PLD) was revealed as critical regulator of actin dynamics and podo- some formation in MKs. Hence, the unaltered platelet counts and production in \(Pld1/2^{-/-}\) mice and the absence of a premature platelet release in the bone marrow of \(Itga2^{-/-}\) mice question the role of podosomes in platelet production and raise the need to reconsider the proposed inhibitory signaling by α2β1 integrins on proplatelet formation.
Non-muscle myosin IIA (NMMIIA) has been implicated as a downstream effector of the in- hibitory signals transmitted via α2β1 integrins. Besides Rho-GTPase signaling, also \(Mg^{2+}\) and transient receptor potential melastatin-like 7 (TRPM7) channel α-kinase are known regulators of NMMIIA activity. In this thesis, TRPM7 was identified as major regulator of \(Mg^{2+}\) homeostasis in MKs and platelets. Furthermore, decreased \([Mg^{2+}]_i\) led to deregulated NMMIIA activity and altered cytoskeletal dynamics that impaired thrombopoiesis and resulted in macrothrombocytopenia in humans and mice.
During my PhD I studied two principal biological aspects employing Drosophila melanogaster. Therefore, this study is divided into Part I and II.
Part I: Bruchpilot and Complexin interact to regulate synaptic vesicle tethering to the
active zone cytomatrix
At the presynaptic active zone (AZ) synaptic vesicles (SVs) are often physically linked to an electron-dense cytomatrix – a process referred to as “SV tethering”. This process serves to concentrate SVs in close proximity to their release sites before contacting the SNARE complex for subsequent fusion (Hallermann and Silver, 2013). In Drosophila, the AZ protein Bruchpilot (BRP) is part of the proteinous cytomatrix at which SVs accumulate (Kittel et al., 2006b; Wagh et al., 2006; Fouquet et al., 2009). Intriguingly, truncation of only 1% of the C-terminal region of BRP results in a severe defect in SV tethering to this AZ scaffold (hence named brpnude; Hallermann et al., 2010b).
Consistent with these findings, cell-specific overexpression of a C-terminal BRP fragment, named mBRPC-tip (corresponds to 1% absent in brpnude; m = mobile) phenocopied the brpnude mutant in behavioral and functional experiments. These data indicate that mBRPC-tip suffices to saturate putative SV binding sites, which induced a functional tethering deficit at motoneuronal AZs. However, the molecular identity of the BRP complement to tether SVs to the presynaptic AZ scaffold remains unknown. Moreover, within larval motoneurons membrane-attached C-terminal portions of BRP were sufficient to tether SVs to sites outside of the AZ. Based on this finding a genetic screen was designed to identify BRP interactors in vivo. This screen identified Complexin (CPX), which is known to inhibit spontaneous SV fusion and to enhance stimulus evoked SV release (Huntwork and Littleton, 2007; Cho et al., 2010; Martin et al., 2011). However, so far CPX has not been associated with a function upstream of priming/docking and release of SVs. This work provides morphological and functional evidence, which suggests that CPX promotes recruitment of SVs to the AZ and thereby curtails synaptic short-term depression. Together, the presented findings indicate a functional interaction between BRP and CPX at Drosophila AZs.
Part II: The Adhesion-GPCR Latrophilin/CIRL shapes mechanosensation
The calcium independent receptor of α-latrotoxin (CIRL), also named Latrophilin, represents a prototypic Adhesion class G-protein coupled-receptor (aGPCR). Initially, Latrophilin was identified based on its capacity to bind the α-component of latrotoxin (α-LTX; Davletov et al., 1996; Krasnoperov et al., 1996), which triggers massive exocytotic activity from neurons of the peripheral nervous system (Scheer et al., 1984; Umbach et al., 1998; Orlova et al., 2000). As a result Latrophilin is considered to play a role in synaptic transmission. Later on, Latrophilins have been associated with other biological processes including tissue polarity (Langenhan et al., 2009), fertility (Prömel et al., 2012) and synaptogenesis (Silva et al., 2011). However, thus far its subcellular localization and the identity of endogenous ligands, two aspects crucial for the comprehension of Latrophilin’s in vivo function, remain enigmatic.
Drosophila contains only one latrophilin homolog, named dCirl, whose function has not been investigated thus far.
This study demonstrates abundant dCirl expression throughout the nervous system of Drosophila larvae. dCirlKO animals are viable and display no defects in development and neuronal differentiation. However, dCirl appears to influence the dimension of the postsynaptic sub-synaptic reticulum (SSR), which was accompanied by an increase in the postsynaptic Discs-large abundance (DLG). In contrast, morphological and functional properties of presynaptic motoneurons were not compromised by the removal of dCirl. Instead, dCirl is required for the perception of mechanical challenges (acoustic-, tactile- and proprioceptive stimuli) through specialized mechanosensory devices, chordotonal organs (Eberl, 1999). The data indicate that dCirl modulates the sensitivity of chordotonal neurons towards mechanical stimulation and thereby adjusts their input-output relation. Genetic interaction analyses suggest that adaption of the molecular mechanotransduction machinery by dCirl may underlie this process. Together, these results uncover an unexpected function of Latrophilin/dCIRL in mechanosensation and imply general modulatory roles of aGPCR in mechanoception.
Pollenschläuche sind ein Modellsystem zur Untersuchung pflanzlicher Wachstumsprozesse. Zellwachstum in Pollenschläuchen zeichnet sich durch den gerichteten Transport und Fusion von Vesikeln mit der apikalen Zellmembran des Pollenschlauchs aus. Der Vesikeltransport erfolgt entlang des Pollenschlauchs durch Aktin-Filamente bis an die Organell- und Zytoskelett-freie apikale Zone, wo sich die Vesikel sammeln und in oszillierenden Wachstumsschüben mit der apikalen Zellmembran fusionieren (Yang et al., 1998; Zonia et al., 2001, Gu et al., 2005; Chen et al., 2003; Gu et al., 2005; de Graaf et al., 2005; Lee et al., 2008; Cheung et al., 2010; Quin und Yang et al., 2011). Die polaren Wachstumsprozesse des Pollenschlauches sind an ein Ionenflussmuster gekoppelt, welches durch den Einsatz der Vibrating Probe-Technik zeitlich aufgelöst werden konnten. Es konnte ein zeitversetzter oszillierender Einstrom von Calcium, Kalium und Protonen sowie der zeitgleich mit den Wachstumsschüben auftretende oszillierende Ausstrom von Chlorid aus der Pollenschlauchspitze nachgewiesen werden (Kühtreiber und Jaffe et al., 1990; Holdaway-Clarke et al., 1997; Feijo et al., 1999, Messerli et al., 1999, Zonia et al., 2001). Die Inhibierung des Chloridausstroms resultiert in einem sofortigen Wachstumsstopp und verdeutlicht die Notwendigkeit des Anionenausstroms für das polare Zellwachstum in Pollenschläuchen (Breygina et al., 2009).
Durch die in dieser Arbeit durchgeführten Experimente konnten die an dem Anionenausstrom beteiligten Anionenkanäle, sowie deren Ca2+-abhängigen regulatorischen Komponenten identifiziert und mit Hilfe der TEVC-Technik elektrophysiologisch an intakten Arabidopsis thaliana-Pollenschläuchen charakterisiert werden. Weiterhin konnte die physiologische Rolle der für den Anionenausstrom verantwortlichen Kanäle auf das polare Zellwachstum in Arabidopsis thaliana Pollenschläuchen nachgewiesen werden.
Durch Transkriptionsanalysen wurde die Expression des S-Typ-Anionenkanals SLAH3 sowie der R-Typ-Anionenkanäle ALMT12, ALMT13 und ALMT14 in Arabidopsis thaliana Pollenschläuchen belegt und deren transkriptionelle Regulation durch die Anionenkonzentration und Komposition des Keimungsmediums nachgewiesen werden. Eine elektrophysiologische Charakterisierung an intakten Arabidopsis thaliana Pollenschläuchen konnte sowohl einen Anstieg der SLAH3 vermittelten S-Typ-Ströme, als auch ALMT12-, ALMT13- und ALMT14 vermittelte R Typ-Anionenströme bei steigenden Anionenkonzentrationen im Keimungsmedium nachweisen. Die Charakterisierung der Verlustmutanten von SLAH3, ALMT12, ALMT13 und ALMT14 resultierte in einer Abnahme des Anionenausstroms und einer Reduktion des Längenwachstums der getesteten Mutanten. Es konnten ebenfalls die regulatorischen Komponenten der Signalkette zur Anionenkanalaktivierung identifiziert werden. Die Aktivierung von SLAH3 und ALMT12 durch die Calcium-abhängigen Kinasen CPK2, CPK20 und CPK6 aus Arabidopsis thaliana Pollenschläuchen konnte mittels einer Kombination von elektrophysiologischen- und molekularbiologischen Techniken nachgewiesen werden. Somit wurden nicht nur die für den Anionenausstrom verantwortlichen Anionenkanäle identifiziert, sondern auch die Signalkette zu deren Aktivierung durch spitzenlokalisierte Calcium-abhängige Kinasen aufgeklärt werden. Diese Signalkaskade führt ebenfalls durch die artifizielle Erhöhung der zytoplasmatischen Calciumkonzentration durch das Calcium-Ionophor A23187 zu einem Anstieg des S Typ- und R Typ Anionenkanalaktivität in Arabidopsis thaliana-Pollenschläuchen.
Eine intensivere Charakterisierung des entdeckten Calcium-vermittelten Anionenausstroms erfolgte am transgenen pLat52-Chlorid-Sensor bzw. an YC3.6 Tabak Pollenschläuchen durch die Kombination von TEVC-Technik und Fluoreszensmikroskopie. Dies ermöglichte die simultane Messung der zytoplasmatischen Calcium- bzw. Chloridkonzentration in Nicotiana tabacum Pollenschläuchen bei gleichzeitiger Ableitung der Ganzzellströme. Die elektrophysiologische und fluoreszenzmikroskopische Charakterisierung erbrachte erstmals den Nachweis für eine exklusive Lokalisation von hyperpolarisations-aktivierten Calciumkanälen in der Pollenschlauchspitze, welche sich durch die Verwendung der TEVC-Technik gezielt aktivieren ließen. Diese Aktivierung der spitzenlokalisierten Calciumkanäle induziert den Anionenausstrom durch den Anstieg der apikalen Calciumkonzentration. Die Inhibierung der Calciumkanäle durch den Calciumkanalblocker Lanthan führt zu einem vollständigen Verlust des Calciumeinstroms und des daraus resultierenden Anioneneinstroms. Durch die Inhibierung der Calciumkanäle kommt es gleichzeitig zu einer Akkumulation von Chlorid in der apikalen Zone, die zum Anschwellen der Pollenschlauchspitze führt. Die Inhibierung der Anionenkanäle durch Niflumsäure hat hingegen keinen Einfluss auf den spitzenlokalisierten Calciumeinstrom, sondern reduziert nur den gemessenen Anionenausstrom. Somit wird ein kausaler Zusammenhang zwischen der Erhöhung der apikalen Ca2+-Konzentration und einer Anionenkanalaktivierung weiter verdeutlicht. Durch die Anwendung der TEVC-Technik an intakten Pollenschläuchen konnten erstmals Aktionspotenzial ähnliche Depolarisierungstransienten, welche sich auf die apikale Zone des Pollenschlauchs beschränken und zeitgleich mit dem Anionenausstrom stattfinden, nachgewiesen werden.
Durch diese Arbeit kann erstmals ein Modell des Calcium-vermittelten oszillierenden Anionenausstroms aus der Pollenschlauchspitze aufgestellt werden. Dieses verknüpft die Regulation der beteiligten R-Typ-Anionenkanäle ALMT12, ALMT13 und ALMT14 und des S-Typ-Anionenkanals SLAH3 durch die Calcium-abhängigen Kinasen CPK2, CPK20 und CPK6 mit dem spitzenlokalisierten oszillierenden Calciumeinstrom. Das Modell verdeutlicht die physiologische Bedeutung des simultanen Ca2+-Ein- und Anionenausstroms für das polare Zellwachstum von Pollenschläuchen.
Latrophilin, alternatively named calcium-independent receptor of α-latrotoxin (CIRL), resembles a prototype of the adhesion class G-protein coupled receptors (GPCRs). Initially identified as a high-affinity receptor for α-latrotoxin, a component of the black widow spider, latrophilins are now associated with various distinct functions, such as synaptic exocytosis, tissue polarity and fertility (Tobaben et al., 2002; Langenhan et al., 2009; Promel et al., 2012). Despite these exploratory efforts the precise subcellular localisation as well as the endogenous ligand of CIRL still remains elusive. In this work genetic experiments, imaging approaches and behavioural studies have been used to unravel the localisation and physiological function of the latrophilin homolog dCirl in Drosophila melanogaster. Containing only one latrophilin homolog together with its genetic accessibility and well-established transgenic approaches, Drosophila seemed an ideally suited model organism. The present study showed that dCirl is widely expressed in the larval central nervous system including moto- and sensory neurons. Further, this work revealed that removal of the latrophilin homolog does not greatly affect synaptic transmission but it seems that aspects of the postsynaptic structural layout are controlled by dCIRL in the fruit fly. Additionally, dCirl expression at the transcriptional level was confirmed in larval and adult chordotonal organs, specialised mechanosensors implicated in proprioception (Eberl, 1999). Expression of dCIRL at the protein level could not yet been confirmed in moto- and sensory neurons likely due to low endogenous expression. However, behavioural studies using dCirl knockout mutant larvae indicated a putative mechanosensory function of dCIRL regarding touch sensitivity and locomotion behaviour.
The second part of this thesis presents a strategy to examine interactions between several presynaptic proteins in living cells. The attempt described in this work is based on the discovery that GFP when split into two non-fluorescent fragments can form a fluorescent complex. The association of the fragments can be facilitated by fusing them to two proteins that interact with each other. Therefore, the split GFP method enables direct visualization of synaptic protein interactions in living cells. In initial experiments I could show that full length reporter protein fusions with n-Synaptobrevin (n-Syb), Synaptotagmin (Syt) and Syntaxin (Syx) allow expression in Drosophila and confirmed that fusion to either end of each synaptic protein did not impair expression or influence the viability of transgenic flies. Further, transgenes containing protein fusions of Syx, Syt, and n-Syb with split GFP fragments were established in previous studies (Gehring, 2010). The present work characterises the interaction of these protein fusions during different stages of synaptic vesicle turnover at active zones such as synaptic vesicle docking at the presynaptic membrane and vesicle fusion. These results suggest that the spGFP assay seems only partly suitable for resolving fast and transient protein-protein interactions at larval Drosophila active zones in vivo.
The Role of DREAM/MMB-mediated mitotic gene expression downstream of mutated K-Ras in lung cancer
(2017)
The evolutionary conserved Myb-MuvB (MMB) multiprotein complex has an essential role in transcriptional activation of mitotic genes. MMB target genes as well as the MMB associated transcription factor B-Myb and FoxM1 are highly expressed in a range of different cancer types. The elevated expression of these genes correlates with an advanced tumor state and a poor prognosis. This suggests that MMB could contribute to tumorigenesis by mediating overexpression of mitotic genes. Although MMB has been extensively characterized biochemically, the requirement for MMB to tumorigenesis in vivo remains largely unknown and has not been tested directly so far.
In this study, conditional knockout of the MMB core member Lin9 inhibits tumor formation in vivo in a mouse model of lung cancer driven by oncogenic K-Ras and loss of p53. The incomplete recombination observed within tumors points towards an enormous selection pressure against the complete loss of Lin9. RNA interference (RNAi)-mediated depletion of Lin9 or the MMB associated subunit B-Myb provides evidence that MMB is required for the expression of mitotic genes in lung cancer cells. Moreover, it was demonstrated that proliferation of lung cancer cells strongly depends on MMB. Furthermore, in this study, the relationship of MMB to the p53 tumor suppressor was investigated in a primary lung cancer cell line with restorable p53 function. Expression analysis revealed that mitotic genes are downregulated after p53 re-expression. Moreover, activation of p53 induces formation of the repressive DREAM complex and results in enrichment of DREAM at mitotic gene promoters. Conversely, MMB is displaced at these promoters.
Based on these findings the following model is proposed: In p53-negative cells, mitogenic stimuli foster the switch from DREAM to MMB. Thus, mitotic genes are overexpressed and may promote chromosomal instability and tumorigenesis.
This study provides evidence that MMB contributes to the upregulation of G2/M phase-specific genes in p53-negative cells and suggests that inhibition of MMB (or its target genes) might be a strategy for treatment of lung cancer.
The highly motile and versatile protozoan pathogen Trypanosoma brucei undergoes a complex life cycle in the tsetse fly. Here we introduce the host insect as an expedient model environment for microswimmer research, as it allows examination of microbial motion within a diversified, secluded and yet microscopically tractable space. During their week-long journey through the different microenvironments of the fly´s interior organs, the incessantly swimming trypanosomes cross various barriers and confined surroundings, with concurrently occurring major changes of parasite cell architecture. Multicolour light sheet fluorescence microscopy provided information about tsetse tissue topology with unprecedented resolution and allowed the first 3D analysis of the infection process. High-speed fluorescence microscopy illuminated the versatile behaviour of trypanosome developmental stages, ranging from solitary motion and near-wall swimming to collective motility in synchronised swarms and in confinement. We correlate the microenvironments and trypanosome morphologies to high-speed motility data, which paves the way for cross-disciplinary microswimmer research in a naturally evolved environment.