@phdthesis{Jauch2010, author = {Jauch, Mandy}, title = {Die Serin/Arginin Proteinkinase 79D (SRPK79D) von Drosophila melanogaster und ihre Rolle bei der Bildung Aktiver Zonen von Synapsen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-53974}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Synapsen als Stellen der Kommunikation zwischen Neuronen besitzen spezialisierte Bereiche - Aktive Zonen (AZs) genannt -, die aus einem hoch komplexen Netzwerk von Proteinen aufgebaut sind und die Maschinerie f{\"u}r den Prozess der Neurotransmitter-Aussch{\"u}ttung und das Vesikel-Recycling beinhalten. In Drosophila ist das Protein Bruchpilot (BRP) ein wichtiger Baustein f{\"u}r die T-f{\"o}rmigen B{\"a}nder („T-Bars") der pr{\"a}synaptischen Aktiven Zonen. BRP ist notwendig f{\"u}r eine intakte Struktur der Aktiven Zone und eine normale Exocytose von Neurotransmitter-Vesikeln. Auf der Suche nach Mutationen, welche die Verteilung von Bruchpilot im Gewebe beeintr{\"a}chtigen, wurde eine P-Element-Insertion im Gen CG11489 an der Position 79D identifiziert, welches eine Kinase kodiert, die einen hohen Grad an Homologie zur Familie der SR Proteinkinasen (SRPKs) von S{\"a}ugern aufweist. Die Mitglieder dieser Familie zeichnen sich durch eine evolution{\"a}r hoch konservierte zweigeteilte Kinasedom{\"a}ne aus, die durch eine nicht konservierte Spacer-Sequenz unterbrochen ist. SRPKs phosphorylieren SR-Proteine, die zu einer evolution{\"a}r hoch konservierten Familie Serin/Arginin-reicher Spleißfaktoren geh{\"o}ren und konstitutive sowie alternative Spleißprozesse steuern und damit auf post-transkriptioneller Ebene die Genexpression regulieren. Mutation des Srpk79D-Gens durch die P-Element-Insertion (Srpk79DP1) oder eine Deletion im Gen (Srpk79DVN Nullmutante) f{\"u}hrt zu auff{\"a}lligen BRP-Akkumulationen in larvalen und adulten Nerven. In der vorliegenden Arbeit wird gezeigt, dass diese BRP-Akkumulationen auf Ultrastruktur-Ebene ausgedehnten axonalen Agglomeraten elektronendichter B{\"a}nder entsprechen und von klaren Vesikeln umgeben sind. Charakterisierung durch Immuno-Elektronenmikroskopie ergab, dass diese Strukturen BRP-immunoreaktiv sind. Um die Bildung BRP-enthaltender Agglomerate in Axonen zu verhindern und damit eine intakte Gehirnfunktion zu gew{\"a}hrleisten, scheint die SRPK79D nur auf niedrigem Niveau exprimiert zu werden, da die endogene Kinase mit verschiedenen Antik{\"o}rpern nicht nachweisbar war. Wie in anderen Arbeiten gezeigt werden konnte, ist die Expression der PB-, PC- oder PF-Isoform der vier m{\"o}glichen SRPK79D-Varianten, die durch alternativen Transkriptionsstart in Exon eins beziehungsweise drei und alternatives Spleißen von Exon sieben zustande kommen, zur Rettung des Ph{\"a}notyps der BRP-Akkumulation im Srpk79DVN Nullmutanten-Hintergrund ausreichend. Zur Charakterisierung der Rescue-Eigenschaften der SRPK79D-PE-Isoform wurde mit der Klonierung der cDNA in einen UAS-Vektor begonnen. Offenbar beruht die Bildung der axonalen BRP-Agglomerate nicht auf einer {\"U}berexpression von BRP in den betroffenen Neuronen, denn auch bei reduzierter Expression des BRP-Proteins im Srpk79DVN Nullmutanten-Hintergrund entstehen die BRP-Agglomerate. In K{\"o}pfen der Srpk79DVN Nullmutante ist die Gesamtmenge an Bruchpilot-Protein im Vergleich zum Wildtyp nicht deutlich ver{\"a}ndert. Auch die auf Protein-Ebene untersuchte Expression der verschiedenen Isoformen der pr{\"a}synaptischen Proteine Synapsin, Sap47 und CSP weicht in der Srpk79DVN Nullmutante nicht wesentlich von der Wildtyp-Situation ab, sodass sich keine Hinweise auf ver{\"a}ndertes Spleißen der entsprechenden pr{\"a}-mRNAs ergeben. Jedes der sieben bekannten SR-Proteine von Drosophila ist ein potentielles Zielprotein der SRPK79D. Knock-down-Experimente f{\"u}r die drei hier untersuchten SR-Proteine SC35, X16/9G8 und B52/SRp55 im gesamten Nervensystem durch RNA-Interferenz zeigten allerdings keinen Effekt auf die Verteilung von BRP im Gewebe. Hinsichtlich der Flugf{\"a}higkeit der Tiere hat die Srpk79DVN Nullmutation keinen additiven Effekt zum Knock-down des BRP-Proteins, denn die Doppelmutanten zeigten bei der Bestimmung des Anteils an flugunf{\"a}higen Tieren vergleichbare Werte wie die Einzelmutanten, die entweder die Nullmutation im Srpk79D-Gen trugen, oder BRP reduziert exprimierten. Vermutlich sind Bruchpilot und die SR Proteinkinase 79D somit Teil desselben Signalwegs. Durch Doppelf{\"a}rbungen mit Antik{\"o}rpern gegen BRP und CAPA-Peptide wurde abschließend entdeckt, dass Bruchpilot auch im Median- und Transvers-Nervensystem (MeN/TVN) von Drosophila zu finden ist, welche die Neuroh{\"a}mal-Organe beherbergen. Aufgabe dieser Organe ist die Speicherung und Aussch{\"u}ttung von Neuropeptid-Hormonen. Daher ist zu vermuten, dass das BRP-Protein neben Funktionen bei der Neurotransmitter-Exocytose m{\"o}glicherweise eine Rolle bei der Aussch{\"u}ttung von Neuropeptiden spielt. Anders als in den Axonen der larvalen Segmental- und Intersegmentalnerven der Srpk79DVN Nullmutante, die charakteristische BRP-Agglomerate aufweisen, hat die Mutation des Srpk79D-Gens in den Axonen der Va-Neurone, die das MeN/TVN-System bilden, keinen sichtbaren Effekt auf die Verteilung von Brp, denn das Muster bei F{\"a}rbung gegen BRP weist keine deutlichen Ver{\"a}nderungen zum Wildtyp auf.}, subject = {Taufliege}, language = {de} } @article{PaulPauliEhmannetal.2015, author = {Paul, Mila M. and Pauli, Martin and Ehmann, Nadine and Hallermann, Stefan and Sauer, Markus and Kittel, Robert J. and Heckmann, Manfred}, title = {Bruchpilot and Synaptotagmin collaborate to drive rapid glutamate release and active zone differentiation}, series = {Frontiers in Cellular Neuroscience}, volume = {9}, journal = {Frontiers in Cellular Neuroscience}, number = {29}, doi = {10.3389/fncel.2015.00029}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-148988}, year = {2015}, abstract = {The active zone (AZ) protein Bruchpilot (Brp) is essential for rapid glutamate release at Drosophila melanogaster neuromuscular junctions (NMJs). Quantal time course and measurements of action potential-waveform suggest that presynaptic fusion mechanisms are altered in brp null mutants (brp\(^{69}\)). This could account for their increased evoked excitatory postsynaptic current (EPSC) delay and rise time (by about 1 ms). To test the mechanism of release protraction at brp\(^{69}\) AZs, we performed knock-down of Synaptotagmin-1 (Syt) via RNAi (syt\(^{KD}\)) in wildtype (wt), brp\(^{69}\) and rab3 null mutants (rab3\(^{rup}\)), where Brp is concentrated at a small number of AZs. At wt and rab3\(^{rup}\) synapses, syt\(^{KD}\) lowered EPSC amplitude while increasing rise time and delay, consistent with the role of Syt as a release sensor. In contrast, syt\(^{KD}\) did not alter EPSC amplitude at brp\(^{69}\) synapses, but shortened delay and rise time. In fact, following syt\(^{KD}\), these kinetic properties were strikingly similar in wt and brp\(^{69}\), which supports the notion that Syt protracts release at brp\(^{69}\) synapses. To gain insight into this surprising role of Syt at brp\(^{69}\) AZs, we analyzed the structural and functional differentiation of synaptic boutons at the NMJ. At tonic type Ib motor neurons, distal boutons contain more AZs, more Brp proteins per AZ and show elevated and accelerated glutamate release compared to proximal boutons. The functional differentiation between proximal and distal boutons is Brp-dependent and reduced after syt\(^{KD}\). Notably, syt\(^{KD}\) boutons are smaller, contain fewer Brp positive AZs and these are of similar number in proximal and distal boutons. In addition, super-resolution imaging via dSTORM revealed that syt\(^{KD}\) increases the number and alters the spatial distribution of Brp molecules at AZs, while the gradient of Brp proteins per AZ is diminished. In summary, these data demonstrate that normal structural and functional differentiation of Drosophila AZs requires concerted action of Brp and Syt.}, language = {en} } @article{EhmannSauerKittel2015, author = {Ehmann, Nadine and Sauer, Markus and Kittel, Robert J.}, title = {Super-resolution microscopy of the synaptic active zone}, series = {Frontiers in Cellular Neuroscience}, volume = {9}, journal = {Frontiers in Cellular Neuroscience}, number = {7}, doi = {10.3389/fncel.2015.00007}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-148997}, year = {2015}, abstract = {Brain function relies on accurate information transfer at chemical synapses. At the presynaptic active zone (AZ) a variety of specialized proteins are assembled to complex architectures, which set the basis for speed, precision and plasticity of synaptic transmission. Calcium channels are pivotal for the initiation of excitation-secretion coupling and, correspondingly, capture a central position at the AZ. Combining quantitative functional studies with modeling approaches has provided predictions of channel properties, numbers and even positions on the nanometer scale. However, elucidating the nanoscopic organization of the surrounding protein network requires direct ultrastructural access. Without this information, knowledge of molecular synaptic structure-function relationships remains incomplete. Recently, super-resolution microscopy (SRM) techniques have begun to enter the neurosciences. These approaches combine high spatial resolution with the molecular specificity of fluorescence microscopy. Here, we discuss how SRM can be used to obtain information on the organization of AZ proteins}, language = {en} } @phdthesis{Scholz2017, author = {Scholz, Nicole}, title = {Genetic analyses of sensory and motoneuron physiology in Drosophila melanogaster}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-123249}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {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 (Pr{\"o}mel 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.}, subject = {Drosophila}, language = {en} } @article{MrestaniPauliKollmannsbergeretal.2021, author = {Mrestani, Achmed and Pauli, Martin and Kollmannsberger, Philip and Repp, Felix and Kittel, Robert J. and Eilers, Jens and Doose, S{\"o}ren and Sauer, Markus and Sir{\´e}n, Anna-Leena and Heckmann, Manfred and Paul, Mila M.}, title = {Active zone compaction correlates with presynaptic homeostatic potentiation}, series = {Cell Reports}, volume = {37}, journal = {Cell Reports}, number = {1}, doi = {10.1016/j.celrep.2021.109770}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-265497}, pages = {109770}, year = {2021}, abstract = {Neurotransmitter release is stabilized by homeostatic plasticity. Presynaptic homeostatic potentiation (PHP) operates on timescales ranging from minute- to life-long adaptations and likely involves reorganization of presynaptic active zones (AZs). At Drosophila melanogaster neuromuscular junctions, earlier work ascribed AZ enlargement by incorporating more Bruchpilot (Brp) scaffold protein a role in PHP. We use localization microscopy (direct stochastic optical reconstruction microscopy [dSTORM]) and hierarchical density-based spatial clustering of applications with noise (HDBSCAN) to study AZ plasticity during PHP at the synaptic mesoscale. We find compaction of individual AZs in acute philanthotoxin-induced and chronic genetically induced PHP but unchanged copy numbers of AZ proteins. Compaction even occurs at the level of Brp subclusters, which move toward AZ centers, and in Rab3 interacting molecule (RIM)-binding protein (RBP) subclusters. Furthermore, correlative confocal and dSTORM imaging reveals how AZ compaction in PHP translates into apparent increases in AZ area and Brp protein content, as implied earlier.}, language = {en} } @article{PauliPaulProppertetal.2021, author = {Pauli, Martin and Paul, Mila M. and Proppert, Sven and Mrestani, Achmed and Sharifi, Marzieh and Repp, Felix and K{\"u}rzinger, Lydia and Kollmannsberger, Philip and Sauer, Markus and Heckmann, Manfred and Sir{\´e}n, Anna-Leena}, title = {Targeted volumetric single-molecule localization microscopy of defined presynaptic structures in brain sections}, series = {Communications Biology}, volume = {4}, journal = {Communications Biology}, doi = {10.1038/s42003-021-01939-z}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-259830}, pages = {407}, year = {2021}, abstract = {Revealing the molecular organization of anatomically precisely defined brain regions is necessary for refined understanding of synaptic plasticity. Although three-dimensional (3D) single-molecule localization microscopy can provide the required resolution, imaging more than a few micrometers deep into tissue remains challenging. To quantify presynaptic active zones (AZ) of entire, large, conditional detonator hippocampal mossy fiber (MF) boutons with diameters as large as 10 mu m, we developed a method for targeted volumetric direct stochastic optical reconstruction microscopy (dSTORM). An optimized protocol for fast repeated axial scanning and efficient sequential labeling of the AZ scaffold Bassoon and membrane bound GFP with Alexa Fluor 647 enabled 3D-dSTORM imaging of 25 mu m thick mouse brain sections and assignment of AZs to specific neuronal substructures. Quantitative data analysis revealed large differences in Bassoon cluster size and density for distinct hippocampal regions with largest clusters in MF boutons. Pauli et al. develop targeted volumetric dSTORM in order to image large hippocampal mossy fiber boutons (MFBs) in brain slices. They can identify synaptic targets of individual MFBs and measured size and density of Bassoon clusters within individual untruncated MFBs at nanoscopic resolution.}, language = {en} } @article{LichterPaulPaulietal.2022, author = {Lichter, Katharina and Paul, Mila Marie and Pauli, Martin and Schoch, Susanne and Kollmannsberger, Philip and Stigloher, Christian and Heckmann, Manfred and Sir{\´e}n, Anna-Leena}, title = {Ultrastructural analysis of wild-type and RIM1α knockout active zones in a large cortical synapse}, series = {Cell Reports}, volume = {40}, journal = {Cell Reports}, number = {12}, doi = {10.1016/j.celrep.2022.111382}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-300913}, year = {2022}, abstract = {Rab3A-interacting molecule (RIM) is crucial for fast Ca\(^{2+}\)-triggered synaptic vesicle (SV) release in presynaptic active zones (AZs). We investigated hippocampal giant mossy fiber bouton (MFB) AZ architecture in 3D using electron tomography of rapid cryo-immobilized acute brain slices in RIM1α\(^{-/-}\) and wild-type mice. In RIM1α\(^{-/-}\), AZs are larger with increased synaptic cleft widths and a 3-fold reduced number of tightly docked SVs (0-2 nm). The distance of tightly docked SVs to the AZ center is increased from 110 to 195 nm, and the width of their electron-dense material between outer SV membrane and AZ membrane is reduced. Furthermore, the SV pool in RIM1α\(^{-/-}\) is more heterogeneous. Thus, RIM1α, besides its role in tight SV docking, is crucial for synaptic architecture and vesicle pool organization in MFBs.}, language = {en} } @article{DannhaeuserMrestaniGundelachetal.2022, author = {Dannh{\"a}user, Sven and Mrestani, Achmed and Gundelach, Florian and Pauli, Martin and Komma, Fabian and Kollmannsberger, Philip and Sauer, Markus and Heckmann, Manfred and Paul, Mila M.}, title = {Endogenous tagging of Unc-13 reveals nanoscale reorganization at active zones during presynaptic homeostatic potentiation}, series = {Frontiers in Cellular Neuroscience}, volume = {16}, journal = {Frontiers in Cellular Neuroscience}, issn = {1662-5102}, doi = {10.3389/fncel.2022.1074304}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-299440}, year = {2022}, abstract = {Introduction Neurotransmitter release at presynaptic active zones (AZs) requires concerted protein interactions within a dense 3D nano-hemisphere. Among the complex protein meshwork the (M)unc-13 family member Unc-13 of Drosophila melanogaster is essential for docking of synaptic vesicles and transmitter release. Methods We employ minos-mediated integration cassette (MiMIC)-based gene editing using GFSTF (EGFP-FlAsH-StrepII-TEV-3xFlag) to endogenously tag all annotated Drosophila Unc-13 isoforms enabling visualization of endogenous Unc-13 expression within the central and peripheral nervous system. Results and discussion Electrophysiological characterization using two-electrode voltage clamp (TEVC) reveals that evoked and spontaneous synaptic transmission remain unaffected in unc-13\(^{GFSTF}\) 3rd instar larvae and acute presynaptic homeostatic potentiation (PHP) can be induced at control levels. Furthermore, multi-color structured-illumination shows precise co-localization of Unc-13\(^{GFSTF}\), Bruchpilot, and GluRIIA-receptor subunits within the synaptic mesoscale. Localization microscopy in combination with HDBSCAN algorithms detect Unc-13\(^{GFSTF}\) subclusters that move toward the AZ center during PHP with unaltered Unc-13\(^{GFSTF}\) protein levels.}, language = {en} }