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Nowadays, the encapsulation of therapeutic compounds in so-called carrier systems is a very smart method to achieve protection as well as an improvement of their temporal and spatial distribution. After the successful transport to the point of care, the delivery has to be released under controlled conditions. To monitor the triggered release from the carrier, we investigated different fluorescent probes regarding their response to the pH-induced collapse of pH-sensitive liposomes (pHSLip), which occurs when the environmental pH falls below a critical value. Depending on the probe, the fluorescence decay time as well as fluorescence anisotropy can be used equally as key parameters for monitoring the collapse. Especially the application of a fluorescein labeled fatty acid (fPA) enabled the monitoring of the pHSLips collapse and the pH of its microenvironment simultaneously without interference. Varying the pH in the range of 3 < pH < 9, anisotropy data revealed the critical pH value at which the collapse of the pHSLips occurs. Complementary methods, e.g., fluorescence correlation spectroscopy and dynamic light scattering, supported the analysis based on the decay time and anisotropy. Additional experiments with varying incubation times yielded information on the kinetics of the liposomal collapse.
We study the diffusion of a tracer particle, which moves in continuum space between a lattice of excluded volume, immobile non-inert obstacles. In particular, we analyse how the strength of the tracer–obstacle interactions and the volume occupancy of the crowders alter the diffusive motion of the tracer. From the details of partitioning of the tracer diffusion modes between trapping states when bound to obstacles and bulk diffusion, we examine the degree of localisation of the tracer in the lattice of crowders. We study the properties of the tracer diffusion in terms of the ensemble and time averaged mean squared displacements, the trapping time distributions, the amplitude variation of the time averaged mean squared displacements, and the non-Gaussianity parameter of the diffusing tracer. We conclude that tracer–obstacle adsorption and binding triggers a transient anomalous diffusion. From a very narrow spread of recorded individual time averaged trajectories we exclude continuous type random walk processes as the underlying physical model of the tracer diffusion in our system. For moderate tracer–crowder attraction the motion is found to be fully ergodic, while at stronger attraction strength a transient disparity between ensemble and time averaged mean squared displacements occurs. We also put our results into perspective with findings from experimental single-particle tracking and simulations of the diffusion of tagged tracers in dense crowded suspensions. Our results have implications for the diffusion, transport, and spreading of chemical components in highly crowded environments inside living cells and other structured liquids.
Hantaviruses (HVs) are a group of zoonotic viruses that infect human beings primarily through aerosol transmission of rodent excreta and urine samplings. HVs are classified geographically into: Old World HVs (OWHVs) that are found in Europe and Asia, and New World HVs (NWHVs) that are observed in the Americas. These different strains can cause severe hantavirus diseases with pronounced renal syndrome or severe cardiopulmonary system distress. HVs can be extremely lethal, with NWHV infections reaching up to 40 % mortality rate. HVs are known to generate epidemic outbreaks in many parts of the world including Germany, which has seen periodic HV infections over the past decade. HV has a trisegmented genome. The small segment (S) encodes the nucleocapsid protein (NP), the middle segment (M) encodes the glycoproteins (GPs) Gn and Gc which forms up to tetramers and primarily monomers \& dimers upon independent expression respectively and large segment (L) encodes RNA dependent RNA polymerase (RdRp). Interactions between these viral proteins are crucial in providing mechanistic insights into HV virion development. Despite best efforts, there continues to be lack of quantification of these associations in living cells. This is required in developing the mechanistic models for HV viral assembly. This dissertation focuses on three key questions pertaining to the initial steps of virion formation that primarily involves the GPs and NP.
The research investigations in this work were completed using Fluorescence Correlation Spectroscopy (FCS) approaches. FCS is frequently used in assessing the biophysical features of bio-molecules including protein concentration and diffusion dynamics and circumvents the requirement of protein overexpression. FCS was primarily applied in this thesis to evaluate protein multimerization, at single cell resolution.
The first question addressed which GP spike formation model proposed by Hepojoki et al.(2010) appropriately describes the evidence in living cells. A novel in cellulo assay was developed to evaluate the amount of fluorescently labelled and unlabeled GPs upon co-expression. The results clearly showed that Gn and Gc initially formed a heterodimeric Gn:Gc subunit. This sub-unit then multimerizes with congruent Gn:Gc subunits to generate the final GP spike. Based on these interactions, models describing the formation of GP complex (with multiple GP spike subunits) were additionally developed.
HV GP assembly primarily takes place in the Golgi apparatus (GA) of infected cells. Interestingly, NWHV GPs are hypothesized to assemble at the plasma membrane (PM). This led to the second research question in this thesis, in which a systematic comparison between OWHV and NWHV GPs was conducted to validate this hypothesis. Surprisingly, GP localization at the PM was congruently observed with OWHV and NWHV GPs. Similar results were also discerned with OWHV and NWHV GP localization in the absence of cytoskeletal factors that regulate HV trafficking in cells.
The final question focused on quantifying the NP-GP interactions and understanding their influence of NP and GP multimerization. Gc mutlimers were detected in the presence of NP and complimented by the presence of localized regions of high NP-Gc interactions in the perinuclear region of living cells. Gc-CT domain was shown to influence NP-Gc associations. Gn, on the other hand, formed up to tetrameric complexes, independent from the presence of NP.
The results in this dissertation sheds light on the initial steps of HV virion formation by quantifying homo and heterotypic interactions involving NP and GPs, which otherwise are very difficult to perform. Finally, the in cellulo methodologies implemented in this work can be potentially extended to understand other key interactions involved in HV virus assembly.
Um Prozesse in biologischen Systemen auf molekularer Ebene zu untersuchen, haben sich vor allem fluoreszenzspektroskopische Methoden bewährt. Die Möglichkeit, einzelne Moleküle zu beobachten, hat zu einem deutlichen Fortschritt im Verständnis von elementaren biochemischen Prozessen geführt. Zu einer der bekanntesten Methoden der Einzelmolekülspektroskopie zählt die Fluoreszenz-Korrelations-Spektroskopie (FCS), mit deren Hilfe intramolekulare und diffusionsgesteuerte Prozesse in einem Zeitbereich von µs bis ms untersucht werden können. Durch die Verwendung von sog. Fluoreszenzsonden können Informationen über deren molekulare Mikroumgebung erhalten werden. Insbesondere für die konfokale Mikroskopie und die Einzelmolekülspektroskopie werden Fluoreszenzfarbstoffe mit einer hohen Photostabilität und hohen Fluoreszenzquantenausbeute benötigt. Aufgrund ihrer hohen Fluoreszenzquantenausbeute und der Möglichkeit, maßgeschneiderte“ Farbstoffe in einem breiten Spektralbereich für die Absorption und Fluoreszenz zu entwickeln, sind Cyaninfarbstoffe von besonderem Interesse für bioanalytische Anwendungen. Als Fluoreszenzmarker finden diese Farbstoffe insbesondere in der klinischen Diagnostik und den Lebenswissenschaften Verwendung. Die in dieser Arbeit verwendeten Farbstoffe DY-635 und DY-647 sind zwei typische Vertreter dieser Farbstoffklasse. Durch Modifizierung können die Farbstoffe kovalent an biologisch relevante Moleküle gebunden werden. Aufgrund ihres Absorptionsmaximums oberhalb von 630nm werden sie insbesondere in der Bioanalytik eingesetzt. In der vorliegenden Arbeit wurden die spektroskopischen Eigenschaften der Cyaninfarbstoffe DY-635 und DY-647 in biomimetischen und biologischen Modellsystemen untersucht. Zur Charakterisierung wurden dabei neben der Absorptionsspektroskopie insbesondere fluoreszenzspektroskopische Methoden verwendet. Dazu zählen die zeitkorrelierte Einzelphotonenzählung zur Ermittlung des Fluoreszenzabklingverhaltens, Fluoreszenz-Korrelations-Spektroskopie (FCS) zur Beobachtung von Diffusions- und photophysikalischen Desaktivierungsprozessen und die zeitaufgelöste Fluoreszenzanisotropie zur Untersuchung der Rotationsdynamik und Beweglichkeit der Farbstoffe im jeweiligen Modellsystem. Das Biotin-Streptavidin-System wurde als Modellsystem für die Untersuchung von Protein-Ligand-Wechselwirkungen verwendet, da der Bindungsmechanismus weitgehend aufgeklärt ist. Nach Bindung der Farbstoffe an Streptavidin wurde eine erhebliche Veränderung in den Absorptions- und Fluoreszenzeigenschaften beobachtet. Es wird angenommen, dass diese spektralen Veränderungen durch Wechselwirkung von benachbarten, an ein Streptavidintetramer gebundenen Farbstoffmolekülen und Bildung von H-Dimeren verursacht wird. Für das System Biotin-Streptavidin ist bekannt, dass während der Bindung des Liganden (Biotin) an das Protein eine Konformationsänderung auftritt. Anhand von zeitaufgelösten Fluoreszenzanisotropieuntersuchungen konnte in dieser Arbeit gezeigt werden, dass diese strukturellen Veränderungen zu einer starken Einschränkung der Beweglichkeit des Farbstoffes DY-635B führen. Liegt eine Mischung von ungebundenem und Streptavidin-gebundenem Farbstoff vor, können die Anisotropieabklingkurven nicht nach einem exponentiellen Verlauf angepasst werden. Es konnte im Rahmen dieser Arbeit gezeigt werden, dass in diesem Fall die Auswertung mit Hilfe des Assoziativen Anisotropiemodells möglich ist, welches eine Unterscheidung der Beiträge aus den zwei verschiedenen Mikroumgebungen ermöglicht. Als zweites Modellsystem dieser Arbeit wurden Mizellen des nichtionischen Tensids Tween-20 eingesetzt. Mizellen bilden eines der einfachsten Systeme, um die Mikroumgebung einer biologischen Membran nachzuahmen. Sind die Farbstoffe in den Mizellen eingelagert, so kommt es zu keiner Veränderung der Mizellgröße. Die ermittelten Werte des Diffusionskoeffizienten der mizellar eingelagerten Farbstoffe spiegeln demzufolge die Translationsbewegung der Tween-20-Mizellen wider. Die Beweglichkeit der Farbstoffe innerhalb der Tween-20-Mizellen wurde durch zeitaufgelöste Fluoreszenzanisotropiemessungen untersucht. Neben der „Wackelbewegung“, entsprechend dem wobble-in-a-cone-Modell, wird zusätzlich noch die laterale Diffusion der Farbstoffe entlang der Mizelloberfläche beschrieben.
Hantaviruses are emerging pathogens that occasionally cause deadly outbreaks in the human population. While the structure of the viral envelope has been characterized with high precision, protein-protein interactions leading to the formation of new virions in infected cells are not fully understood. We used quantitative fluorescence microscopy (i.e., number and brightness analysis and fluorescence fluctuation spectroscopy) to monitor the interactions that lead to oligomeric spike complex formation in the physiological context of living cells. To this aim, we quantified protein-protein interactions for the glycoproteins Gn and Gc from Puumala and Hantaan orthohantaviruses in several cellular models. The oligomerization of each protein was analyzed in relation to subcellular localization, concentration, and the concentration of its interaction partner. Our results indicate that, when expressed separately, Gn and Gc form, respectively, homo-tetrameric and homo-dimeric complexes, in a concentration-dependent manner. Site-directed mutations or deletion mutants showed the specificity of their homotypic interactions. When both glycoproteins were coexpressed, we observed in the Golgi apparatus clear indication of GnGc interactions and the formation of Gn-Gc multimeric protein complexes of different sizes, while using various labeling schemes to minimize the influence of the fluorescent tags. Such large glycoprotein multimers may be identified as multiple Gn viral spikes interconnected via Gc-Gc contacts. This observation provides the possible first evidence for the initial assembly steps of the viral envelope within this organelle, and does so directly in living cells. <br /> IMPORTANCE In this work, we investigate protein-protein interactions that drive the assembly of the hantavirus envelope. These emerging pathogens have the potential to cause deadly outbreaks in the human population. Therefore, it is important to improve our quantitative understanding of the viral assembly process in infected cells, from a molecular point of view. By applying advanced fluorescence microscopy methods, we monitored the formation of viral spike complexes in different cell types. Our data support a model for hantavirus assembly according to which viral spikes are formed via the clustering of hetero-dimers of the two viral glycoproteins Gn and Gc. Furthermore, the observation of large Gn-Gc hetero-multimers provide the possible first evidence for the initial assembly steps of the viral envelope, directly in the Golgi apparatus of living cells.
The pathogenesis of influenza A viruses (IAVs) is influenced by several factors, including IAV strain origin and reassortment, tissue tropism and host type. While such factors were mostly investigated in the context of virus entry, fusion and replication, little is known about the viral-induced changes to the host lipid membranes which might be relevant in the context of virion assembly. In this work, we applied several biophysical fluorescence microscope techniques (i.e., Förster energy resonance transfer, generalized polarization imaging and scanning fluorescence correlation spectroscopy) to quantify the effect of infection by two IAV strains of different origin on the plasma membrane (PM) of avian and human cell lines. We found that IAV infection affects the membrane charge of the inner leaflet of the PM. Moreover, we showed that IAV infection impacts lipid–lipid interactions by decreasing membrane fluidity and increasing lipid packing. Because of such alterations, diffusive dynamics of membrane-associated proteins are hindered. Taken together, our results indicate that the infection of avian and human cell lines with IAV strains of different origins had similar effects on the biophysical properties of the PM.
Alkylphospholipids are a novel class of antineoplastic drugs showing remarkable therapeutic potential. Among them, erufosine (EPC3) is a promising drug for the treatment of several types of tumors. While EPC3 is supposed to exert its function by interacting with lipid membranes, the exact molecular mechanisms involved are not known yet. In this work, we applied a combination of several fluorescence microscopy and analytical chemistry approaches (i.e., scanning fluorescence correlation spectroscopy, line-scan fluorescence correlation spectroscopy, generalized polarization imaging, as well as thin layer and gas chromatography) to quantify the effect of EPC3 in biophysical models of the plasma membrane, as well as in cancer cell lines. Our results indicate that EPC3 affects lipid–lipid interactions in cellular membranes by decreasing lipid packing and increasing membrane disorder and fluidity. As a consequence of these alterations in the lateral organization of lipid bilayers, the diffusive dynamics of membrane proteins are also significantly increased. Taken together, these findings suggest that the mechanism of action of EPC3 could be linked to its effects on fundamental biophysical properties of lipid membranes, as well as on lipid metabolism in cancer cells.
Alkylphospholipids are a novel class of antineoplastic drugs showing remarkable therapeutic potential. Among them, erufosine (EPC3) is a promising drug for the treatment of several types of tumors. While EPC3 is supposed to exert its function by interacting with lipid membranes, the exact molecular mechanisms involved are not known yet. In this work, we applied a combination of several fluorescence microscopy and analytical chemistry approaches (i.e., scanning fluorescence correlation spectroscopy, line-scan fluorescence correlation spectroscopy, generalized polarization imaging, as well as thin layer and gas chromatography) to quantify the effect of EPC3 in biophysical models of the plasma membrane, as well as in cancer cell lines. Our results indicate that EPC3 affects lipid–lipid interactions in cellular membranes by decreasing lipid packing and increasing membrane disorder and fluidity. As a consequence of these alterations in the lateral organization of lipid bilayers, the diffusive dynamics of membrane proteins are also significantly increased. Taken together, these findings suggest that the mechanism of action of EPC3 could be linked to its effects on fundamental biophysical properties of lipid membranes, as well as on lipid metabolism in cancer cells.