13 research outputs found

    Lateral diffusion of the variant surface glycoprotein in trypanosomes and artificial membranes

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    Die Diffusion von Membranproteinen spielt bei einer Vielzahl von zellbiologischen Prozessen eine zentrale Rolle. So hat die Beweglichkeit von Glykosyl-Phosphatidyl-Inositol-(GPI-) verankerten Proteinen zum Beispiel eine tragende Funktion bei der Alzheimer Krankheit, der Creutzfeldt-Jacob Krankheit und der Afrikanischen Schlafkrankheit. Der Erreger der Afrikanischen Schlafkrankheit, Trypanosoma brucei spec., prĂ€sentiert auf seiner ZelloberflĂ€che einen dichten Mantel aus identischen GPI-verankerten Proteinen. Diese sogenannten Variant Surface Glycoproteins (VSGs) stellen den zentralen PathogenitĂ€tsfaktor der Trypanosomen im Blutstrom des Wirtes dar und ermöglichen dem Parasiten die Antigene Variation. WĂ€hrend der Antigenen Variation wird der VSGMantel durch einen immunologisch distinkten Mantel ersetzt. HierfĂŒr ist die Diffusion der VSG essentiell. In der vorliegenden Arbeit wird die Diffusion des VSG in lebenden Trypanosomen und in artifiziellen Membranen systematisch untersucht. Auf diese Weise werden der Einfluss der lateralen Proteindichte, der N-Glykosylierung und der ProteingrĂ¶ĂŸe auf die Diffusion der GPI-verankerten Proteine charakterisiert. Die MobilitĂ€t des VSG auf lebenden Trypanosomen ist an der Grenze zu einem Diffusionsschwellenwert, dieser wird allerdings nicht ĂŒberschritten. Die MobilitĂ€t des VSG in der NĂ€he des Diffusionsschwellenwertes wird durch die N-Glykosylierung der VSG ermöglicht. Außerdem kann gezeigt werden, dass die GrĂ¶ĂŸe der Proteine einen entscheidenden Einfluss auf den Diffusionskoeffizienten der GPI-verankerten Proteine ausĂŒbt. Zusammengefasst zeigen die Ergebnisse der vorliegenden Arbeit deutlich, dass der VSG-Mantel der Trypanosomen ein, an seine Anforderungen, hoch-adaptiertes System darstellt. WĂŒrde entweder die laterale Dichte, die N-Glykosylierung oder die GrĂ¶ĂŸe der Proteine beeintrĂ€chtigt werden, so wĂ€re die Funktion der Antigenen Variation gestört und die PathogenitĂ€t des Parasiten gefĂ€hrdet. Da die lokale Verteilung von GPI-verankerten Proteinen in biologischen Membranen ein wichtiges funktionelles Konzept darstellt, ist der Einfluss der untersuchten Faktoren nicht nur fĂŒr den VSG-Mantel relevant, sondern kann auch fĂŒr das generelle VerstĂ€ndnis der Dynamik von Proteinen in zellulĂ€ren Membranen dienen.The lateral diffusion of membrane anchored proteins plays a crucial role in many cell biological processes. The mobility of glycosylphosphatidylinositol- (GPI-) anchored proteins holds a pivotal function in many diseases such as, Creutzfeld-Jacob, Alzheimer and the African sleeping sickness. The cell surface of the pathogen causing African sleeping sickness, Trypanosoma brucei sp., is covered by a dense layer of identical GPI-anchored proteins. These variant surface glycoproteins (VSGs) are the major pathogenicity factor of the parasites in the circulation of the host and permit antigenic variation. During antigenic variation the VSG-coat has to be replaced by an immunologically distinct coat. For this purpose, the diffusion of VSG is essential. In the present study, the diffusion of VSG is analysed in living trypanosomes and in artificial membranes. By this, the impact of the lateral protein density, the Nglycosylation and the protein size on the lateral diffusion are studied systematically. The diffusion of VSG in the surface coat of the trypanosome is at the edge of a molecular crowding threshold. Importantly, this crowding threshold is not exceeded. N-glycosylation enables the diffusion of the VSG at the edge of the crowding threshold. Further, the diffusion coefficient of GPI-anchored proteins is strongly affected by the size of the proteins. In conclusion, the present study shows, that the VSG-coat of the trypanosomes is a system, which is highly adapted to its requirements. Any interference with either, the lateral density, the N-glycosylation or the VSG-size would hamper the pathogenicity of the parasite. The local distribution of GPI-anchored proteins is an essential component of biological membranes, thus the results of the present work will have an impact not only on the VSG-coat, but also give further understanding on the dynamics of proteins in crowded spaces

    High bandwidth approaches in nanopore and ion channel recordings - A tutorial review.

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    Transport processes through ion-channel proteins, protein pores, or solid-state nanopores are traditionally recorded with commercial patch-clamp amplifiers. The bandwidth of these systems is typically limited to 10 kHz by signal-to-noise-ratio (SNR) considerations associated with these measurement platforms. At high bandwidth, the input-referred current noise in these systems dominates, determined by the input-referred voltage noise of the transimpedance amplifier applied across the capacitance at the input of the amplifier. This capacitance arises from several sources: the parasitic capacitance of the amplifier itself; the capacitance of the lipid bilayer harboring the ion channel protein (or the membrane used to form the solid-state nanopore); and the capacitance from the interconnections between the electronics and the membrane. Here, we review state-of-the-art applications of high-bandwidth conductance recordings of both ion channels and solid-state nanopores. These approaches involve tightly integrating measurement electronics fabricated in complementary metal-oxide semiconductors (CMOS) technology with lipid bilayer or solid-state membranes. SNR improvements associated with this tight integration push the limits of measurement bandwidths, in some cases in excess of 10 MHz. Recent case studies demonstrate the utility of these approaches for DNA sequencing and ion-channel recordings. In the latter case, studies with extended bandwidth have shown the potential for providing new insights into structure-function relations of these ion-channel proteins as the temporal resolutions of functional recordings matches time scales achievable with state-of-the-art molecular dynamics simulations

    N-glycosylation enables high lateral mobility of GPI-anchored proteins at a molecular crowding threshold

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    The protein density in biological membranes can be extraordinarily high, but the impact of molecular crowding on the diffusion of membrane proteins has not been studied systematically in a natural system. The diversity of the membrane proteome of most cells may preclude systematic studies. African trypanosomes, however, feature a uniform surface coat that is dominated by a single type of variant surface glycoprotein (VSG). Here we study the density-dependence of the diffusion of different glycosylphosphatidylinositol-anchored VSG-types on living cells and in artificial membranes. Our results suggest that a specific molecular crowding threshold (MCT) limits diffusion and hence affects protein function. Obstacles in the form of heterologous proteins compromise the diffusion coefficient and the MCT. The trypanosome VSG-coat operates very close to its MCT. Importantly, our experiments show that N-linked glycans act as molecular insulators that reduce retarding intermolecular interactions allowing membrane proteins to function correctly even when densely packed

    Single-channel recordings of RyR1 at microsecond resolution in CMOS-suspended membranes

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    Single-channel recordings are widely used to explore functional properties of ion channels. Typically, such recordings are performed at bandwidths of less than 10 kHz because of signal-to-noise considerations, limiting the temporal resolution available for studying fast gating dynamics to greater than 100 ”s. Here we present experimental methods that directly integrate suspended lipid bilayers with high-bandwidth, low-noise transimpedance amplifiers based on complementary metal-oxide-semiconductor (CMOS) integrated circuits (IC) technology to achieve bandwidths in excess of 500 kHz and microsecond temporal resolution. We use this CMOS-integrated bilayer system to study the type 1 ryanodine receptor (RyR1), a Ca2+-activated intracellular Ca2+-release channel located on the sarcoplasmic reticulum. We are able to distinguish multiple closed states not evident with lower bandwidth recordings, suggesting the presence of an additional Ca2+ binding site, distinct from the site responsible for activation. An extended beta distribution analysis of our high-bandwidth data can be used to infer closed state flicker events as fast as 35 ns. These events are in the range of single-file ion translocations

    Perturbation of the host cell Ca2+ homeostasis and ER-mitochondria contact sites by the SARS-CoV-2 structural proteins E and M

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    Abstract Coronavirus disease (COVID-19) is a contagious respiratory disease caused by the SARS-CoV-2 virus. The clinical phenotypes are variable, ranging from spontaneous recovery to serious illness and death. On March 2020, a global COVID-19 pandemic was declared by the World Health Organization (WHO). As of February 2023, almost 670 million cases and 6,8 million deaths have been confirmed worldwide. Coronaviruses, including SARS-CoV-2, contain a single-stranded RNA genome enclosed in a viral capsid consisting of four structural proteins: the nucleocapsid (N) protein, in the ribonucleoprotein core, the spike (S) protein, the envelope (E) protein, and the membrane (M) protein, embedded in the surface envelope. In particular, the E protein is a poorly characterized viroporin with high identity amongst all the ÎČ-coronaviruses (SARS-CoV-2, SARS-CoV, MERS-CoV, HCoV-OC43) and a low mutation rate. Here, we focused our attention on the study of SARS-CoV-2 E and M proteins, and we found a general perturbation of the host cell calcium (Ca2+) homeostasis and a selective rearrangement of the interorganelle contact sites. In vitro and in vivo biochemical analyses revealed that the binding of specific nanobodies to soluble regions of SARS-CoV-2 E protein reversed the observed phenotypes, suggesting that the E protein might be an important therapeutic candidate not only for vaccine development, but also for the clinical management of COVID designing drug regimens that, so far, are very limited

    Pathophysiological Response to SARS-CoV-2 Infection Detected by Infrared Spectroscopy Enables Rapid and Robust Saliva Screening for COVID-19

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    Fourier transform infrared (FTIR) spectroscopy provides a (bio)chemical snapshot of the sample, and was recently used in proof-of-concept cohort studies for COVID-19 saliva screening. However, the biological basis of the proposed technology has not been established. To investigate underlying pathophysiology, we conducted controlled infection experiments on Vero E6 cells in vitro and K18-hACE2 mice in vivo. Potentially infectious culture supernatant or mouse oral lavage samples were treated with ethanol or 75% (v/v) Trizol for attenuated total reflectance (ATR)-FTIR spectroscopy and proteomics, or RT-PCR, respectively. Controlled infection with UV-inactivated SARS-CoV-2 elicited strong biochemical changes in culture supernatant/oral lavage despite a lack of viral replication, determined by RT-PCR or a cell culture infectious dose 50% assay. Nevertheless, SARS-CoV-2 infection induced additional FTIR signals over UV-inactivated SARS-CoV-2 infection in both cell and mouse models, which correspond to aggregated proteins and RNA. Proteomics of mouse oral lavage revealed increased secretion of kallikreins and immune modulatory proteins. Next, we collected saliva from a cohort of human participants (n = 104) and developed a predictive model for COVID-19 using partial least squares discriminant analysis. While high sensitivity of 93.48% was achieved through leave-one-out cross-validation, COVID-19 patients testing negative on follow-up on the day of saliva sampling using RT-PCR was poorly predicted in this model. Importantly, COVID-19 vaccination did not lead to the misclassification of COVID-19 negatives. Finally, meta-analysis revealed that SARS-CoV-2 induced increases in the amide II band in all arms of this study and in recently published cohort studies, indicative of altered β-sheet structures in secreted proteins. In conclusion, this study reveals a consistent secretory pathophysiological response to SARS-CoV-2, as well as a simple, robust method for COVID-19 saliva screening using ATR-FTIR

    Plasmon Mapping in Au@Ag Nanocube Assemblies

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    Surface plasmon modes in metallic nanostructures largely determine their optoelectronic properties. Such plasmon modes can be manipulated by changing the morphology of the nanoparticles or by bringing plasmonic nanoparticle building blocks close to each other within organized assemblies. We report the EELS mapping of such plasmon modes in pure Ag nanocubes, Au@Ag core–shell nanocubes, and arrays of Au@Ag nanocubes. We show that these arrays enable the creation of interesting plasmonic structures starting from elementary building blocks. Special attention will be dedicated to the plasmon modes in a triangular array formed by three nanocubes. Because of hybridization, a combination of such nanotriangles is shown to provide an antenna effect, resulting in strong electrical field enhancement at the narrow gap between the nanotriangles
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