TY - JOUR A1 - Bobone, Sara A1 - Hilsch, Malte A1 - Storm, Julian A1 - Dunsing, Valentin A1 - Herrmann, Andreas A1 - Chiantia, Salvatore T1 - Phosphatidylserine Lateral Organization Influences the Interaction of Influenza Virus Matrix Protein 1 with Lipid Membranes JF - Journal of virology N2 - Influenza A virus matrix protein 1 (M1) is an essential component involved in the structural stability of the virus and in the budding of new virions from infected cells. A deeper understanding of the molecular basis of virion formation and the budding process is required in order to devise new therapeutic approaches. We performed a detailed investigation of the interaction between M1 and phosphatidylserine (PS) (i.e., its main binding target at the plasma membrane [PM]), as well as the distribution of PS itself, both in model membranes and in living cells. To this end, we used a combination of techniques, including Forster resonance energy transfer (FRET), confocal microscopy imaging, raster image correlation spectroscopy, and number and brightness (N&B) analysis. Our results show that PS can cluster in segregated regions in the plane of the lipid bilayer, both in model bilayers constituted of PS and phosphatidylcholine and in living cells. The viral protein M1 interacts specifically with PS-enriched domains, and such interaction in turn affects its oligomerization process. Furthermore, M1 can stabilize PS domains, as observed in model membranes. For living cells, the presence of PS clusters is suggested by N&B experiments monitoring the clustering of the PS sensor lactadherin. Also, colocalization between M1 and a fluorescent PS probe suggest that, in infected cells, the matrix protein can specifically bind to the regions of PM in which PS is clustered. Taken together, our observations provide novel evidence regarding the role of PS-rich domains in tuning M1-lipid and M1-M1 interactions at the PM of infected cells. IMPORTANCE Influenza virus particles assemble at the plasma membranes (PM) of infected cells. This process is orchestrated by the matrix protein M1, which interacts with membrane lipids while binding to the other proteins and genetic material of the virus. Despite its importance, the initial step in virus assembly (i.e., M1-lipid interaction) is still not well understood. In this work, we show that phosphatidylserine can form lipid domains in physical models of the inner leaflet of the PM. Furthermore, the spatial organization of PS in the plane of the bilayer modulates M1-M1 interactions. Finally, we show that PS domains appear to be present in the PM of living cells and that M1 seems to display a high affinity for them. KW - influenza KW - assembly KW - confocal microscopy KW - fluorescence image analysis KW - lipid rafts KW - matrix protein KW - model membranes KW - phosphatidylserine KW - plasma membrane Y1 - 2017 U6 - https://doi.org/10.1128/JVI.00267-17 SN - 0022-538X SN - 1098-5514 VL - 91 PB - American Society for Microbiology CY - Washington ER - TY - JOUR A1 - Dahmani, Ismail A1 - Ludwig, Kai A1 - Chiantia, Salvatore T1 - Influenza A matrix protein M1 induces lipid membrane deformation via protein multimerization JF - Bioscience Reports N2 - The matrix protein M1 of the Influenza A virus (IAV) is supposed to mediate viral assembly and budding at the plasma membrane (PM) of infected cells. In order for a new viral particle to form, the PM lipid bilayer has to bend into a vesicle toward the extracellular side. Studies in cellular models have proposed that different viral proteins might be responsible for inducing membrane curvature in this context (including M1), but a clear consensus has not been reached. In the present study, we use a combination of fluorescence microscopy, cryogenic transmission electron microscopy (cryo-TEM), cryo-electron tomography (cryo-ET) and scanning fluorescence correlation spectroscopy (sFCS) to investigate M1-induced membrane deformation in biophysical models of the PM. Our results indicate that M1 is indeed able to cause membrane curvature in lipid bilayers containing negatively charged lipids, in the absence of other viral components. Furthermore, we prove that protein binding is not sufficient to induce membrane restructuring. Rather, it appears that stable M1–M1 interactions and multimer formation are required in order to alter the bilayer three-dimensional structure, through the formation of a protein scaffold. Finally, our results suggest that, in a physiological context,M1-induced membrane deformation might be modulated by the initial bilayer curvature and the lateral organization of membrane components (i.e. the presence of lipid domains). KW - confocal microscopy KW - influenza KW - lipid membranes KW - membranes KW - protein-protein interactions KW - viral matrix proteins Y1 - 2019 U6 - https://doi.org/10.1042/BSR20191024 SN - 0144-8463 SN - 1573-4935 VL - 39 IS - 8 PB - Portland Press CY - Colchester ER - TY - THES A1 - Stephan, Mareike Sophia T1 - A bacterial mimetic system to study bacterial inactivation and infection N2 - The emerging threat of antibiotic-resistant bacteria has become a global challenge in the last decades, leading to a rising demand for alternative treatments for bacterial infections. One approach is to target the bacterial cell envelope, making understanding its biophysical properties crucial. Specifically, bacteriophages use the bacterial envelope as an entry point to initiate infection, and they are considered important building blocks of new antibiotic strategies against drug-resistant bacteria.. Depending on the structure of the cell wall, bacteria are classified as Gram-negative and Gram-positive. Gram-negative bacteria are equipped with a complex cell envelope composed of two lipid membranes enclosing a rigid peptidoglycan layer. The synthesis machinery of the Gram-negative cell envelope is the target of antimicrobial agents, including new physical sanitizing procedures addressing the outer membrane (OM). It is therefore very important to study the biophysical properties of the Gram-negative bacterial cell envelope. The high complexity of the Gram-negative OM sets the demand for a model system in which the contribution of individual components can be evaluated separately. In this respect, giant unilamellar vesicles (GUVs) are promising membrane systems to study membrane properties while controlling parameters such as membrane composition and surrounding medium conditions. The aim of this work was to develop methods and approaches for the preparation and characterization of a GUV-based membrane model that mimics the OM of the Gram-negative cell envelope. A major component of the OM is the lipopolysaccharide (LPS) on the outside of the OM heterobilayer. The vesicle model was designed to contain LPS in the outer leaflet and lipids in the inner leaflet. Furthermore, the interaction of the prepared LPS-GUVs with bacteriophages was tested. LPS containing GUVs were prepared by adapting the inverted emulsion technique to meet the challenging properties of LPS, namely their high self-aggregation rate in aqueous solutions. Notably, an additional emulsification step together with the adaption of solution conditions was employed to asymmetrically incorporate LPS containing long polysaccharide chains into the artificial membranes. GUV membrane asymmetry was verified with a fluorescence quenching assay. Since the necessary precautions for handling the quenching agent sodium dithionite are often underestimated and poorly described, important parameters were tested and identified to obtain a stable and reproducible assay. In the context of varied LPS incorporation, a microscopy-based technique was introduced to determine the LPS content on individual GUVs and to directly compare vesicle properties and LPS coverage. Diffusion coefficient measurements in the obtained GUVs showed that increasing LPS concentrations in the membranes resulted in decreased diffusivity. Employing LPS-GUVs we could demonstrate that a Salmonella bacteriophage bound with high specificity to its LPS receptor when presented at the GUV surface, and that the number of bound bacteriophages scaled with the amount of presented LPS receptor. In addition to binding, the bacteriophages were able to eject their DNA into the vesicle lumen. LPS-GUVs thus provide a starting platform for bottom-up approaches for the generation of more complex membranes, in which the effects of individual components on the membrane properties and the interaction with antimicrobial agents such as bacteriophages could be explored. N2 - Die wachsende Bedrohung durch antibiotikaresistente Bakterien ist in den letzten Jahrzehnten zu einer globalen Herausforderung geworden, was zu einer steigenden Nachfrage nach alternativen Behandlungsmethoden für bakterielle Infektionen geführt hat. Ein Ansatz besteht darin, die bakterielle Zellhülle anzugreifen, weshalb das Verständnis ihrer biophysikalischen Eigenschaften entscheidend ist. Insbesondere Bakteriophagen, Viren, die Bakterien infizieren, nutzen die Bakterienhülle als ersten Angriffspunkt für die Infektion und gelten als wichtige Bausteine für neue Antibiotikastrategien gegen arzneimittelresistente Bakterien. Je nach Struktur der Zellwand werden Bakterien in gramnegative und grampositive Bakterien eingeteilt. Gramnegative Bakterien sind mit einer komplexen Zellhülle ausgestattet. Daher ist es sehr wichtig, ihre biophysikalischen Eigenschaften zu untersuchen. Die hohe Komplexität der äußeren Zellhülle, auch äußere Membran genannt, erfordert ein Modellsystem, in dem der Beitrag jeder einzelnen Komponente separat bewertet werden kann. In dieser Hinsicht sind Vesikel-basierte Modellsysteme sehr vielversprechend, da sie wichtige Eigenschaften der äußeren Membran simulieren können, aber in ihrer Komplexität stark reduziert und kontrollierbar sind. Ziel dieser Arbeit war es, Methoden und Ansätze für die Herstellung und Charakterisierung eines Vesikel-basierten Modells zu entwickeln, das die äußere Membran der gramnegativen bakteriellen Zellhülle nachahmt. Ein Hauptbestandteil der äußeren Membran ist Lipopolysaccharid (LPS), das asymmetrisch auf der Außenseite der äußeren Membran vorhanden ist. Das Vesikelmodell wurde so konzipiert, dass es außen LPS und innen Phospholipide enthält. Die Herstellung des beschriebenen Modellsystems erforderte einige Anpassungen, da die Hüllkomponente LPS eine hohe Tendenz zur Bildung von Selbstaggregaten aufweist. Durch die Einführung eines zusätzlichen Schrittes in das Standardprotokoll konnten Vesikel mit LPS-Inkorporation erzeugt werden. Es wurde sowohl die Menge als auch die asymmetrische Verteilung des LPS-Einbaus bestimmt. Mit Hilfe von Bakteriophagen sollte die biologische Wirkung des Modellsystems getestet werden. Es wurde gezeigt, dass Bakteriophagen, die spezifisch LPS erkennen und binden, nach Zugabe zum Modellsystem die Vesikel binden und ihr genetisches Material in das Vesikel-Innere injizieren. Die hier beschriebenen LPS-haltigen Vesikel können als Ausgangsplattform für Bottom-up-Ansätze zur Herstellung komplexerer Membranen verwendet werden. Mit diesen komplexeren, aber kontrollierbaren Systemen lassen sich die Auswirkungen einzelner Komponenten der bakteriellen Zellhülle auf die Eigenschaften der Zellhülle sowie ihre Wechselwirkung mit antimikrobiellen Wirkstoffen wie Bakteriophagen untersuchen. KW - Bakterien KW - Bakteriophagen KW - Zellmembran KW - Vesikel KW - Konfokale Mikroskopie KW - Lipopolysaccharid KW - gramnegativ KW - bacteria KW - bacteriophage KW - cell membrane KW - vesicle KW - confocal microscopy KW - lipopolysaccharide KW - gram-negative Y1 - 2023 ER -