TY - JOUR A1 - Mrestani, Achmed A1 - Lichter, Katharina A1 - Sirén, Anna-Leena A1 - Heckmann, Manfred A1 - Paul, Mila M. A1 - Pauli, Martin T1 - Single-molecule localization microscopy of presynaptic active zones in Drosophila melanogaster after rapid cryofixation JF - International Journal of Molecular Sciences N2 - Single-molecule localization microscopy (SMLM) greatly advances structural studies of diverse biological tissues. For example, presynaptic active zone (AZ) nanotopology is resolved in increasing detail. Immunofluorescence imaging of AZ proteins usually relies on epitope preservation using aldehyde-based immunocompetent fixation. Cryofixation techniques, such as high-pressure freezing (HPF) and freeze substitution (FS), are widely used for ultrastructural studies of presynaptic architecture in electron microscopy (EM). HPF/FS demonstrated nearer-to-native preservation of AZ ultrastructure, e.g., by facilitating single filamentous structures. Here, we present a protocol combining the advantages of HPF/FS and direct stochastic optical reconstruction microscopy (dSTORM) to quantify nanotopology of the AZ scaffold protein Bruchpilot (Brp) at neuromuscular junctions (NMJs) of Drosophila melanogaster. Using this standardized model, we tested for preservation of Brp clusters in different FS protocols compared to classical aldehyde fixation. In HPF/FS samples, presynaptic boutons were structurally well preserved with ~22% smaller Brp clusters that allowed quantification of subcluster topology. In summary, we established a standardized near-to-native preparation and immunohistochemistry protocol for SMLM analyses of AZ protein clusters in a defined model synapse. Our protocol could be adapted to study protein arrangements at single-molecule resolution in other intact tissue preparations. KW - active zone KW - nanotopology KW - neuromuscular junction KW - high-pressure freezing/freeze substitution KW - PFA in ethanol KW - dSTORM KW - Drosophila melanogaster Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304904 SN - 1422-0067 VL - 24 IS - 3 ER - TY - JOUR A1 - Lichter, Katharina A1 - Paul, Mila Marie A1 - Pauli, Martin A1 - Schoch, Susanne A1 - Kollmannsberger, Philip A1 - Stigloher, Christian A1 - Heckmann, Manfred A1 - Sirén, Anna-Leena T1 - Ultrastructural analysis of wild-type and RIM1α knockout active zones in a large cortical synapse JF - Cell Reports N2 - 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. KW - active zone KW - acute brain slices KW - CA3 KW - electron tomography KW - high-pressure freezing KW - hippocampal mossy fiber bouton KW - RIM1α KW - SV pool KW - synaptic ultrastructure KW - presynaptic Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300913 VL - 40 IS - 12 ER - TY - JOUR A1 - Dannhäuser, Sven A1 - Mrestani, Achmed A1 - Gundelach, Florian A1 - Pauli, Martin A1 - Komma, Fabian A1 - Kollmannsberger, Philip A1 - Sauer, Markus A1 - Heckmann, Manfred A1 - Paul, Mila M. T1 - Endogenous tagging of Unc-13 reveals nanoscale reorganization at active zones during presynaptic homeostatic potentiation JF - Frontiers in Cellular Neuroscience N2 - 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. KW - active zone KW - Unc-13 KW - MiMIC KW - presynaptic homeostasis KW - nanoarchitecture KW - localization microscopy KW - STORM KW - HDBSCAN Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-299440 SN - 1662-5102 VL - 16 ER - TY - JOUR A1 - Heckmann, Manfred A1 - Pauli, Martin T1 - Visualizing presynaptic active zones and synaptic vesicles JF - Frontiers in Synaptic Neuroscience N2 - The presynaptic active zone (AZ) of chemical synapses is a highly dynamic compartment where synaptic vesicle fusion and neurotransmitter release take place. During evolution the AZ was optimized for speed, accuracy, and reliability of chemical synaptic transmission in combination with miniaturization and plasticity. Single-molecule localization microscopy (SMLM) offers nanometer spatial resolution as well as information about copy number, localization, and orientation of proteins of interest in AZs. This type of imaging allows quantifications of activity dependent AZ reorganizations, e.g., in the context of presynaptic homeostatic potentiation. In combination with high-pressure freezing and optogenetic or electrical stimulation AZs can be imaged with millisecond temporal resolution during synaptic activity. Therefore SMLM allows the determination of key parameters in the complex spatial environment of AZs, necessary for next generation simulations of chemical synapses with realistic protein arrangements. KW - active zone KW - depression KW - facilitation KW - plasticity KW - potentiation KW - synapse Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-274687 SN - 1663-3563 VL - 14 ER - TY - JOUR A1 - Mrestani, Achmed A1 - Pauli, Martin A1 - Kollmannsberger, Philip A1 - Repp, Felix A1 - Kittel, Robert J. A1 - Eilers, Jens A1 - Doose, Sören A1 - Sauer, Markus A1 - Sirén, Anna-Leena A1 - Heckmann, Manfred A1 - Paul, Mila M. T1 - Active zone compaction correlates with presynaptic homeostatic potentiation JF - Cell Reports N2 - 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. KW - active zone KW - Bruchpilot KW - RIM-binding protein KW - compaction KW - homeostasis KW - presynaptic plasticity KW - super-resolution microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-265497 VL - 37 IS - 1 ER - TY - JOUR A1 - Pauli, Martin A1 - Paul, Mila M. A1 - Proppert, Sven A1 - Mrestani, Achmed A1 - Sharifi, Marzieh A1 - Repp, Felix A1 - Kürzinger, Lydia A1 - Kollmannsberger, Philip A1 - Sauer, Markus A1 - Heckmann, Manfred A1 - Sirén, Anna-Leena T1 - Targeted volumetric single-molecule localization microscopy of defined presynaptic structures in brain sections JF - Communications Biology N2 - 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. KW - mossy fiber synapses KW - CA3 pyrimidal cells KW - CA2+ channels KW - active zone KW - hippocampal KW - release KW - plasticity KW - proteins KW - platform KW - reveals Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259830 VL - 4 ER - TY - JOUR A1 - Paul, Mila M. A1 - Pauli, Martin A1 - Ehmann, Nadine A1 - Hallermann, Stefan A1 - Sauer, Markus A1 - Kittel, Robert J. A1 - Heckmann, Manfred T1 - Bruchpilot and Synaptotagmin collaborate to drive rapid glutamate release and active zone differentiation JF - Frontiers in Cellular Neuroscience N2 - 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. KW - neuromuscular junction KW - Bruchpilot KW - synaptic delay KW - dSTORM KW - synaptotagmin KW - presynaptic differentiation KW - neurotransmitter release KW - active zone KW - synaptic transmission KW - fluorescent probes Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148988 VL - 9 IS - 29 ER - TY - THES A1 - Pauli, Martin T1 - Bildgebung Aktiver Zonen : Lichtmikroskopische Methoden zur Darstellung präsynaptischer AktiverZonen in lebendem und fixiertem Gewebe T1 - Imaging active zones : Approaches for visualizing active zones with light microscopy in living and fixed tissue N2 - Ziel dieser Arbeit war es, strukturelle Veränderungen präsynaptischer Aktiver Zonen als mögliches Korrelat synaptischer Plastizität zu detektieren. Damit soll die Hypothese getestet werden, dass strukturelle Plastizität Aktiver Zonen eine zentrale Rolle bei der Informationsverarbeitung im Gehirn und bei Lern- und Gedächtnisprozessen spielt. Dazu war es notwendig Methoden zu etablieren, die die strukturelle Analyse Aktiver Zonen und deren Veränderung in vitalem Gewebe ermöglichen. Um die Untersuchungen in einem Gewebe mit plastischen Eigenschaften durchzuführen, wurden Methoden zur Herstellung organotypischer hippocampaler Hirnschnittkulturen etabliert, da hippokampale Moosfasersynapsen ausgeprägte präsynaptische Plastizität aufweisen (Bliss und Collingridge, 1993). Durch Einzelzellelektroporation wurde es möglich, individuelle Neurone mit Transgenen zur Markierung der gesamten Zelle (DsRed) und synaptischer Substrukturen wie Aktive Zonen (z.B.: GFP-CAST, einem Fluorophor-markierten AZ-Protein) zu transfizieren. Mit konfokaler Bildgebung transfizierter Zellen konnten strukturierte Anreicherungen von GFP-CAST in Moosfaserboutons dargestellt werden. Konfokale Bildgebung von Doppelimmunfluoreszenzfärbungen zur detaillierten Analyse der Proteinlokalisation zeigte ein diffraktionsbedingtes Auflösungsdefizit, das auch durch die Anwendung von STED-Mikroskopie nicht zufriedenstellend gelöst werden konnte. Um eine präzise Karte synaptischer Proteine zu erstellen, wurde hochauflösende Mikroskopie (dSTORM) mit einer lateralen räumlichen Auflösung von 20 nm etabliert. Dabei erwiesen sich die ausgeprägte Plastizität, die hohe Dichte an Aktiven Zonen und die variable Gestalt der Boutons im hippokampalen Präparat als problematisch. Aus diesem Grund wurde die elektronenmikroskopisch gut charakterisierte neuromuskuläre Endplatte mit ihrer symmetrischen molekularen Struktur als Präparat für dSTORM verwendet. An der Endplatte konnte die molekulare Organisation der Aktiven-Zonen-Proteine Piccolo und Bassoon dargestellt werden. Zudem konnten erstmals die Mündungen postsynaptischer Falten lichtmikroskopisch aufgelöst werden. So gelang es Werkzeuge zu etablieren, die mit lichtmikroskopischen Methoden die Darstellung der Architektur Aktiver Zonen mit molekularer Auflösung ermöglichen. Die Herausforderung wird es sein, diese neue Dimension in funktionellem Kontext zu nutzen. Die experimentellen Grundlagen dazu wurden durch eine spezielle Badkammer und die Etablierung von Rollertubekulturen bereits gelegt. Dabei ermöglicht dSTORM die Adressierung quantitativer Fragestellungen bis hin zur Bestimmung der Molekülanzahl. N2 - The aim of this work was to visualize structural changes of presynaptic active zones (AZ) as a putative correlate of synaptic plasticity in the brain, thereby testing the hypothesis, that structural plasticity is a key player in information processing, learning and memory. Therefore it was necessary to establish methods that allowed the structural analysis of active zones and their changes in living tissue. To do these investigations in a tissue with plastic characteristics, organotypic hippocampal slice cultures have been established, due to distinct presynaptic plasticity of hippocampal mossy fibre boutons (Bliss and Collingridge, 1993). With single cell electroporation it became possible to mark transgenetically individual neurons (DsRed) and synaptic substructures like active zones (GFP-CAST, a fluorophor labelled AZ- Protein). By imaging transfected neuron using confocal light microscopy, discrete accumulations of GFP-CAST were found in mossy fibre boutons. Aiming to analyse protein localisation in detail, confocal imaging of double-immunofluorescence staining revealed a diffraction based lack of lateral resolution, that couldn’t be solved satisfactory by the application of STED microscopy. To generate a precise map of synaptic protein distribution, superresolution light microscopy (dSTORM) was established with a lateral resolution of 20 nm. Pronounced structural plasticity, high active zone density and complex structure of hippocampal mossy fibre boutons turned out to be a drawback of this preparation. Therefore mammalian neuromuscular endplates that are well characterised by electron microscopy and display a highly symmetrical shape were introduced as a preparation for dSTORM. At the endplate dSTORM revealed a differential distribution of active zone proteins Piccolo and Bassoon. Moreover, for the first time it was possible to resolve the aparture of postsynaptic folds by light microscopy. These results show that it was possible to establish tools based on superresolution light microscopy, that are capable of exploring active zone ultrastructure on a molecular level. It will be future tasks to use these novel techniques in a functional context. Based on experimental advances shown in this work like specialised recording chambers for slicecultures or the use of rollertube cultures, dSTORM will allow to address questions concerning synaptic function and plasticity, down to counting single molecules. KW - Hippokampus KW - organotypische Schnittkultur KW - Aktive Zone KW - synaptische Plastizität KW - dSTORM KW - Hippokampus KW - organotypische Schnittkultur KW - Aktive Zone KW - synaptische Plastizität KW - dSTORM KW - hippocampus KW - organotypic slice cultur KW - synaptic plasticity KW - active zone KW - dSTORM Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-77630 ER -