TY - THES A1 - Götz, Ralph T1 - Super-resolution microscopy of plasma membrane receptors and intracellular pathogens T1 - Hochauflösende Mikroskopie von Plasmamembran Rezeptoren und intrazellulären Pathogenen N2 - Humans tend to believe in what they can see with their own eyes. Hence, visualization methods like microscopy have always been extremely popular since their invention in the 17th century. With the advent of super-resolution microscopy, the diffraction limit of ~200 - 250 nm could be overcome to enable more detailed insights into biological samples. Especially the single molecule localization microscopy method dSTORM offers the possibility of quantitative bioimaging. Hereby, the repetitive photoswitching of organic dyes in the presence of thiols is exploited to enable a lateral resolution of 20 nm. Another, recently introduced super-resolution method is expansion microscopy (ExM) which physically expands the sample to increase the resolution by the expansion factor from four to even twenty. To enable this, the sample is embedded into a hydrogel, homogenized using an unspecific proteinase and expanded in distilled water. Within this thesis, both methods were used to shed light on plasma membrane receptor distributions and different bacterial and fungal pathogens. In the first part of this thesis dSTORM was used to elucidate the “Receptome”, the entirety of all membrane receptors, of the cell line Jurkat T-cells and primary T-cells. Within this project we could successfully visualize and quantify the distribution of the plasma membrane receptors CD2, CD3, CD4, CD5, CD7, CD11a, CD20, CD28, CD45, CD69 and CD105 with receptor densities ranging from 0.8 cluster/µm² in case of CD20 and 81.4 cluster/µm² for the highly abundant CD45 in activated primary T-cells at the basal membrane. Hereby, we could also demonstrate a homogeneous distribution of most receptors, while only few were clustered. In the case of CD3-clusters were detected in Jurkat T-cells and in primary activated T-cells, but not in naïve ones, demonstrating the activation of this receptor. This was followed by the application of dSTORM to three different clinical projects involving the receptors CD38, BCMA and CD20 which are immunotherapeutic targets by monoclonal antibodies and CAR T-cells. In the first two projects dSTORM was applied to determine the receptor upregulation upon exposure of various drugs to MM1.S cells or primary multiple myeloma patient cells. This increase in membrane receptor expression can subsequently enhance the efficacy of therapies directed against these receptors. Within the CD20-project, the superior sensitivity of dSTORM compared to flow cytometry could be demonstrated. Hereby, a substantially higher fraction of CD20-positive patient cells was detected by dSTORM than by flow cytometry. In addition, we could show that by dSTORM CD20-positive evaluated cells were eradicated by immunotherapeutic CAR T-cell treatment. These studies were followed by whole cell super-resolution imaging using both LLS-3D dSTORM and 10x ExM to exclude any artifacts caused by interactions with the glass surface. In 10x ExM signal amplification via biotinylated primary antibodies and streptavidin ATTO 643 was essential to detect even single antibodies directed against the heterodimer CD11a with standard confocal microscopes. Albeit probably not quantitative due to the process of gelation, digestion and expansion during the ExM protocol, even some putative dimers of the receptor CD2 could be visualized using 10x ExM-SIM, similar to dSTORM experiments. Within the second part of this thesis, expansion microscopy was established in bacterial and fungal pathogens. ExM enabled not only an isotropic fourfold expansion of Chlamydia trachomatis, but also allowed the discrimination between the two developmental forms by the chlamydial size after expansion into reticulate and elementary bodies. Hereafter, a new α-NH2-ω-N3-C6-ceramide was introduced enabling an efficient fixation and for the first time the use of lipids in both, 4x and 10x ExM, termed sphingolipid ExM. This compound was used to investigate the ceramide uptake and incorporation into the cell membrane of Chlamydia trachomatis and Simkania negevensis. For Chlamydia trachomatis the combined resolution power of 10x ExM and SIM even allowed the visualization of both bacterial membranes within a distance of ~30 nm. Finally, ExM was applied to the three different fungi Ustilago maydis, Fusarium oxysporum and Aspergillus fumigatus after enzymatic removal of the fungal cell wall. In case of Ustilago maydis sporidia this digestion could be applied to both, living cells resulting in protoplasts and to fixed cells, preserving the fungal morphology. This new protocol could be demonstrated for immunostainings and fluorescent proteins of the three different fungi. N2 - Menschen neigen schon immer dazu, vor allem das zu glauben, was sie mit eigenen Augen sehen können, weswegen mikroskopische Methoden seit ihrer Erfindung im 17. Jahrhundert schon immer sehr beliebt waren. Mit der Einführung der hochauflösenden Mikroskopie konnte das Auflösungslimit von ~200 - 250 nm durchbrochen werden, was genauere Einblicke in biologische Proben ermöglichte. Insbesondere die Einzelmolekül-Lokalisations-Mikroskopie Methode dSTORM bietet hierbei die Möglichkeit der quantitativen Bildgebung. Sie nutzt das wiederholte Schalten organischer Farbstoffe in Anwesenheit von Thiolen, was eine Auflösung von bis zu 20 nm möglich macht. Eine weitere kürzlich entwickelte hochauflösende Mikroskopiemethode ist die Expansionsmikroskopie (ExM), in welcher die Probe isotrop vier- bis sogar zwanzigfach vergrößert wird, womit sich auch die Auflösung um diesen Faktor vergrößert. Um dies zu ermöglichen, wird die Probe in ein Hydrogel eingebettet, mittels einer unspezifischen Proteinase homogenisiert und in destilliertem Wasser expandiert. Innerhalb dieser Arbeit wurden beide Methoden genutzt, um sowohl die Verteilung von Plasmamembran Rezeptoren als auch unterschiedliche bakterielle und pilzliche Pathogene zu beleuchten Im ersten Teil dieser Arbeit wurde dSTORM genutzt, um das „Rezeptom“, die Gesamtheit aller Membranrezeptoren, sowohl von Jurkat T-Zellen als auch von primären Patientenzellen zu entschlüsseln. In dieser Arbeit konnten die Rezeptoren CD2, CD3, CD4, CD5, CD7, CD11a, CD20, CD28, CD45, CD69 und CD105 erfolgreich visualisiert und quantifiziert werden, welche Dichten von 0,8 Cluster pro µm² im Falle von CD20 und 81,4 Cluster pro µm² für den stark exprimierten Rezeptor CD45 in aktivierten primären T-Zellen auf der basalen Membran aufwiesen. Hierbei konnten wir für einen Großteil der Rezeptoren eine homogene Verteilung nachweisen, wohingegen nur wenige andere Rezeptoren Cluster zeigten. Für CD3 konnten sowohl in Jurkat T-Zellen als auch in aktivierten primären Zellen Cluster detektiert werden, was auf deren Aktivierung hinweist, wohingegen CD3 in naiven Zellen homogen verteilt war. Im Weiteren wurde dSTORM im Rahmen von drei klinischen Fragestellungen angewandt, in welche die Rezeptoren CD38, BCMA und CD20 involviert waren, die in Immuntherapien mit monoklonalen Antikörpern oder auch CAR T-Zellen adressiert werden. In den beiden erstgenannten Projekten wurde dSTORM genutzt, um die Erhöhung der Rezeptoren-Expression nach Zugabe verschiedener Medikamente sowohl in der Zelllinie MM1.S als auch in primären Zellen von Patienten mit multiplen Myelomen zu bestimmen. Durch das CD20-Projekt hingegen wurde die überlegene Sensitivität von dSTORM gegenüber der Durchflusszytometrie unter Beweis gestellt. Hier konnte verglichen mit der Durchflusszytometrie eine deutlich höhere CD20-positive Fraktion in Patientenzellen detektiert werden, welche nach Behandlung mit CD20 CAR T-Zellen eliminiert wurde. Hierauf folgte hochauflösende Bildgebung ganzer Zellen sowohl mit LLS-3D dSTORM als auch 10x ExM, um Interaktionen mit der Glasoberfläche ausschließen zu können. Bei 10x ExM wurde eine Signalamplifikation mittels Biotin und Streptavidin ATTO 643 benötigt, wonach sogar einzelne Antikörper, welche gegen den Heterodimer CD11a gerichtet waren, an einem herkömmlichen konfokalen Mikroskop detektiert werden konnten. Obwohl dies aufgrund der Prozesse von Gelierung, Verdau und Expansion während des ExM-Protokolls vermutlich nicht quantitativ ist, konnten sogar mutmaßliche Dimere des Rezeptors CD2 mit 10x ExM-SIM visualisiert werden, welche ähnlich in dSTORM Experimenten auftraten. Im zweiten Teil dieser Arbeit wurde die Expansionsmikroskopie für bakterielle und pilzliche Pathogene eingesetzt. ExM ermöglichte nicht nur eine isotrope vierfache Expansion von Chlamydia trachomatis, sondern auch die Unterscheidung der beiden Entwicklungsformen, der Retikulär- und Elementarkörperchen, aufgrund der Größe der einzelnen Chlamydien. Anschließend wurde ein neues α-NH2-ω-N3-C6-Ceramid eingeführt, was eine effiziente Fixierung und zum ersten Mal die Nutzung von Lipiden in 4x und 10x ExM ermöglichte, was wir Sphingolipid ExM nannten. Diese Verbindung wurde genutzt, um die Ceramid-Aufnahme und den -Einbau in die Zellmembran von Chlamydia trachomatis und Simkania negevensis zu untersuchen. Im Falle von Chlamydia trachomatis wurde die hohe Auflösung von 10x ExM mit SIM kombiniert, was die Visualisierung beider bakterieller Membranen in einem Abstand von ~30 nm ermöglichte. Hiernach wurde ExM bei den drei unterschiedlichen Pilzen Ustilago maydis, Fusarium oxysporum und Aspergillus fumigatus nach enzymatischen Verdau der pilzlichen Zellwand angewandt. Im Falle von Ustilago maydis Sporidien konnte der Verdau sowohl an lebenden Zellen, was in Protoplasten resultierte, als auch an fixierten Zellen verwendet werden, was die Morphologie erhielt. Mittels dieses neuen Protokolls konnten sowohl Immunfärbungen als auch fluoreszierende Proteine der drei genannten Pilze expandiert werden. KW - Mikroskopie KW - Microscopy KW - Super-resolution microscopy KW - Hochauflösende Mikroskopie Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-207165 ER - TY - JOUR A1 - Götz, Ralph A1 - Kunz, Tobias C. A1 - Fink, Julian A1 - Solger, Franziska A1 - Schlegel, Jan A1 - Seibel, Jürgen A1 - Kozjak-Pavlovic, Vera A1 - Rudel, Thomas A1 - Sauer, Markus T1 - Nanoscale imaging of bacterial infections by sphingolipid expansion microscopy JF - Nature Communications N2 - Expansion microscopy (ExM) enables super-resolution imaging of proteins and nucleic acids on conventional microscopes. However, imaging of details of the organization of lipid bilayers by light microscopy remains challenging. We introduce an unnatural short-chain azide- and amino-modified sphingolipid ceramide, which upon incorporation into membranes can be labeled by click chemistry and linked into hydrogels, followed by 4x to 10x expansion. Confocal and structured illumination microscopy (SIM) enable imaging of sphingolipids and their interactions with proteins in the plasma membrane and membrane of intracellular organelles with a spatial resolution of 10-20nm. As our functionalized sphingolipids accumulate efficiently in pathogens, we use sphingolipid ExM to investigate bacterial infections of human HeLa229 cells by Neisseria gonorrhoeae, Chlamydia trachomatis and Simkania negevensis with a resolution so far only provided by electron microscopy. In particular, sphingolipid ExM allows us to visualize the inner and outer membrane of intracellular bacteria and determine their distance to 27.6 +/- 7.7nm. Imaging of lipid bilayers using light microscopy is challenging. Here the authors label cells using a short chain click-compatible ceramide to visualize mammalian and bacterial membranes with expansion microscopy. KW - nanoscale imaging KW - bacterial infection KW - sphingolipid expansion microscopy Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-231248 VL - 11 ER - TY - JOUR A1 - Garitano-Trojaola, Andoni A1 - Sancho, Ana A1 - Götz, Ralph A1 - Eiring, Patrick A1 - Walz, Susanne A1 - Jetani, Hardikkumar A1 - Gil-Pulido, Jesus A1 - Da Via, Matteo Claudio A1 - Teufel, Eva A1 - Rhodes, Nadine A1 - Haertle, Larissa A1 - Arellano-Viera, Estibaliz A1 - Tibes, Raoul A1 - Rosenwald, Andreas A1 - Rasche, Leo A1 - Hudecek, Michael A1 - Sauer, Markus A1 - Groll, Jürgen A1 - Einsele, Hermann A1 - Kraus, Sabrina A1 - Kortüm, Martin K. T1 - Actin cytoskeleton deregulation confers midostaurin resistance in FLT3-mutant acute myeloid leukemia JF - Communications Biology N2 - The presence of FMS-like tyrosine kinase 3-internal tandem duplication (FLT3-ITD) is one of the most frequent mutations in acute myeloid leukemia (AML) and is associated with an unfavorable prognosis. FLT3 inhibitors, such as midostaurin, are used clinically but fail to entirely eradicate FLT3-ITD+AML. This study introduces a new perspective and highlights the impact of RAC1-dependent actin cytoskeleton remodeling on resistance to midostaurin in AML. RAC1 hyperactivation leads resistance via hyperphosphorylation of the positive regulator of actin polymerization N-WASP and antiapoptotic BCL-2. RAC1/N-WASP, through ARP2/3 complex activation, increases the number of actin filaments, cell stiffness and adhesion forces to mesenchymal stromal cells (MSCs) being identified as a biomarker of resistance. Midostaurin resistance can be overcome by a combination of midostaruin, the BCL-2 inhibitor venetoclax and the RAC1 inhibitor Eht1864 in midostaurin-resistant AML cell lines and primary samples, providing the first evidence of a potential new treatment approach to eradicate FLT3-ITD+AML. Garitano-Trojaola et al. used a combination of human acute myeloid leukemia (AML) cell lines and primary samples to show that RAC1-dependent actin cytoskeleton remodeling through BCL2 family plays a key role in resistance to the FLT3 inhibitor, Midostaurin in AML. They showed that by targeting RAC1 and BCL2, Midostaurin resistance was diminished, which potentially paves the way for an innovate treatment approach for FLT3 mutant AML. KW - actin KW - acute myeloid leukaemia Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260709 VL - 4 IS - 1 ER - TY - JOUR A1 - Götz, Ralph A1 - Panzer, Sabine A1 - Trinks, Nora A1 - Eilts, Janna A1 - Wagener, Johannes A1 - Turrà, David A1 - Di Pietro, Antonio A1 - Sauer, Markus A1 - Terpitz, Ulrich T1 - Expansion Microscopy for Cell Biology Analysis in Fungi JF - Frontiers in Microbiology N2 - Super-resolution microscopy has evolved as a powerful method for subdiffraction-resolution fluorescence imaging of cells and cellular organelles, but requires sophisticated and expensive installations. Expansion microscopy (ExM), which is based on the physical expansion of the cellular structure of interest, provides a cheap alternative to bypass the diffraction limit and enable super-resolution imaging on a conventional fluorescence microscope. While ExM has shown impressive results for the magnified visualization of proteins and RNAs in cells and tissues, it has not yet been applied in fungi, mainly due to their complex cell wall. Here we developed a method that enables reliable isotropic expansion of ascomycetes and basidiomycetes upon treatment with cell wall degrading enzymes. Confocal laser scanning microscopy (CLSM) and structured illumination microscopy (SIM) images of 4.5-fold expanded sporidia of Ustilago maydis expressing fluorescent fungal rhodopsins and hyphae of Fusarium oxysporum or Aspergillus fumigatus expressing either histone H1-mCherry together with Lifeact-sGFP or mRFP targeted to mitochondria, revealed details of subcellular structures with an estimated spatial resolution of around 30 nm. ExM is thus well suited for cell biology studies in fungi on conventional fluorescence microscopes. KW - Expansion microscopy KW - fluorescence microscopy KW - fungi KW - sporidia KW - hyphae Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-202569 SN - 1664-302X VL - 11 ER - TY - JOUR A1 - Kunz, Tobias C. A1 - Götz, Ralph A1 - Gao, Shiqiang A1 - Sauer, Markus A1 - Kozjak-Pavlovic, Vera T1 - Using Expansion Microscopy to Visualize and Characterize the Morphology of Mitochondrial Cristae JF - Frontiers in Cell and Developmental Biology N2 - Mitochondria are double membrane bound organelles indispensable for biological processes such as apoptosis, cell signaling, and the production of many important metabolites, which includes ATP that is generated during the process known as oxidative phosphorylation (OXPHOS). The inner membrane contains folds called cristae, which increase the membrane surface and thus the amount of membrane-bound proteins necessary for the OXPHOS. These folds have been of great interest not only because of their importance for energy conversion, but also because changes in morphology have been linked to a broad range of diseases from cancer, diabetes, neurodegenerative diseases, to aging and infection. With a distance between opposing cristae membranes often below 100 nm, conventional fluorescence imaging cannot provide a resolution sufficient for resolving these structures. For this reason, various highly specialized super-resolution methods including dSTORM, PALM, STED, and SIM have been applied for cristae visualization. Expansion Microscopy (ExM) offers the possibility to perform super-resolution microscopy on conventional confocal microscopes by embedding the sample into a swellable hydrogel that is isotropically expanded by a factor of 4–4.5, improving the resolution to 60–70 nm on conventional confocal microscopes, which can be further increased to ∼ 30 nm laterally using SIM. Here, we demonstrate that the expression of the mitochondrial creatine kinase MtCK linked to marker protein GFP (MtCK-GFP), which localizes to the space between the outer and the inner mitochondrial membrane, can be used as a cristae marker. Applying ExM on mitochondria labeled with this construct enables visualization of morphological changes of cristae and localization studies of mitochondrial proteins relative to cristae without the need for specialized setups. For the first time we present the combination of specific mitochondrial intermembrane space labeling and ExM as a tool for studying internal structure of mitochondria. KW - Expansion microscopy KW - mitochondria KW - cristae KW - structured illumination microscope KW - ultrastructure Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208296 SN - 2296-634X VL - 8 ER - TY - JOUR A1 - Kunz, Tobias C. A1 - Götz, Ralph A1 - Sauer, Markus A1 - Rudel, Thomas T1 - Detection of chlamydia developmental forms and secreted effectors by expansion microscopy JF - Frontiers in Cellular and Infection Microbiology N2 - Expansion microscopy (ExM) is a novel tool to improve the resolution of fluorescence-based microscopy that has not yet been used to visualize intracellular pathogens. Here we show the expansion of the intracellular pathogen Chlamydia trachomatis, enabling to differentiate its two distinct forms, catabolic active reticulate bodies (RB) and infectious elementary bodies (EB), on a conventional confocal microscope. We show that ExM enables the possibility to precisely locate chlamydial effector proteins, such as CPAF or Cdu1, within and outside of the chlamydial inclusion. Thus, we claim that ExM offers the possibility to address a broad range of questions and may be useful for further research on various intracellular pathogens. KW - expansion microscopy KW - chlamydia KW - secreted effectors KW - developmental forms KW - superresolution KW - imaging Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-195716 SN - 2235-2988 VL - 9 IS - 276 ER -