37 research outputs found

    eSPC: An online data-analysis platform for molecular biophysics

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    All biological processes rely on the formation of protein–ligand, protein–peptide and protein–protein complexes. Studying the affinity, kinetics and thermodynamics of binding between these pairs is critical for understanding basic cellular mechanisms. Many different technologies have been designed for probing interactions between biomolecules, each based on measuring different signals (fluorescence, heat, thermophoresis, scattering and interference, among others). Evaluation of the data from binding experiments and their fitting is an essential step towards the quantification of binding affinities. Here, user-friendly online tools to analyze biophysical data from steady-state fluorescence spectroscopy, microscale thermophoresis and differential scanning fluorimetry experiments are presented. The modules of the data-analysis platform (https://spc.embl-hamburg.de/) contain classical thermodynamic models and clear user guidelines for the determination of equilibrium dissociation constants (Kd) and thermal unfolding parameters such as melting temperatures (Tm).Fil: Burastero, Osvaldo. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Departamento de Química Biológica; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales; ArgentinaFil: Niebling, Stephan. Centre For Structural Systems Biology; Alemania. European Molecular Biology Laboratory Hamburg; AlemaniaFil: Defelipe, Lucas Alfredo. Centre For Structural Systems Biology; Alemania. European Molecular Biology Laboratory Hamburg; Alemania. Consejo Nacional de Investigaciones Científicas y Técnicas; ArgentinaFil: Günther, Christian. Centre For Structural Systems Biology; Alemania. European Molecular Biology Laboratory Hamburg; AlemaniaFil: Struve, Angelica. Centre For Structural Systems Biology; Alemania. European Molecular Biology Laboratory Hamburg; AlemaniaFil: Garcia Alai, Maria M.. Centre For Structural Systems Biology; Alemania. European Molecular Biology Laboratory Hamburg; Alemani

    On the (un)coupling of the chromophore, tongue interactions, and overall conformation in a bacterial phytochrome

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    Phytochromes are photoreceptors in plants, fungi, and various microorganisms and cycle between metastable red light-absorbing (Pr) and far-red light-absorbing (Pfr) states. Their light responses are thought to follow a conserved structural mechanism that is triggered by isomerization of the chromophore. Downstream structural changes involve refolding of the so-called tongue extension of the phytochrome-specific GAF-related (PHY) domain of the photoreceptor. The tongue is connected to the chromophore by conserved DIP and PRXSF motifs and a conserved tyrosine, but the role of these residues in signal transduction is not clear. Here, we examine the tongue interactions and their interplay with the chromophore by substituting the conserved tyrosine (Tyr(263)) in the phytochrome from the extremophile bacterium Deinococcus radiodurans with phenylalanine. Using optical and FTIR spectroscopy, X-ray solution scattering, and crystallography of chromophore-binding domain (CBD) and CBD-PHY fragments, we show that the absence of the Tyr(263) hydroxyl destabilizes the -sheet conformation of the tongue. This allowed the phytochrome to adopt an -helical tongue conformation regardless of the chromophore state, hence distorting the activity state of the protein. Our crystal structures further revealed that water interactions are missing in the Y263F mutant, correlating with a decrease of the photoconversion yield and underpinning the functional role of Tyr(263) in phytochrome conformational changes. We propose a model in which isomerization of the chromophore, refolding of the tongue, and globular conformational changes are represented as weakly coupled equilibria. The results also suggest that the phytochromes have several redundant signaling routes.Peer reviewe

    FoldAffinity: Binding affinities from nDSF experiments

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    Differential scanning fluorimetry (DSF) using the inherent fluorescence of proteins (nDSF) is a popular technique to evaluate thermal protein stability in different conditions (e.g. buffer, pH). In many cases, ligand binding increases thermal stability of a protein and often this can be detected as a clear shift in nDSF experiments. Here, we evaluate binding affinity quantification based on thermal shifts. We present four protein systems with different binding affinity ligands, ranging from nM to high μM. Our study suggests that binding affinities determined by isothermal analysis are in better agreement with those from established biophysical techniques (ITC and MST) compared to apparent Kds obtained from melting temperatures. In addition, we describe a method to optionally fit the heat capacity change upon unfolding (Δ Cp) during the isothermal analysis. This publication includes the release of a web server for easy and accessible application of isothermal analysis to nDSF data.Fil: Niebling, Stephan. Centre for Structural Systems Biology; Alemania. European Molecular Biology Laboratory; AlemaniaFil: Burastero, Osvaldo. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales; Argentina. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Departamento de Química Biológica; Argentina. European Molecular Biology Laboratory; AlemaniaFil: Bürgi, Jérôme. European Molecular Biology Laboratory; AlemaniaFil: Günther, Christian. European Molecular Biology Laboratory; AlemaniaFil: Defelipe, Lucas Alfredo. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina. European Molecular Biology Laboratory; AlemaniaFil: Sander, Simon. Universitat Hamburg; AlemaniaFil: Gattkowski, Ellen. Universitat Hamburg; AlemaniaFil: Anjanappa, Raghavendra. Universitat Bremen. School of Engineering and Science Jacobs; AlemaniaFil: Wilmanns, Matthias. European Molecular Biology Laboratory; Alemania. Universitat Hamburg; AlemaniaFil: Springer, Sebastian. Universitat Bremen. School of Engineering and Science Jacobs; AlemaniaFil: Tidow, Henning. Universitat Hamburg; AlemaniaFil: García Alai, María. European Molecular Biology Laboratory; Alemania. Centre for Structural Systems Biology; Alemani

    Assessing the Ability of Spectroscopic Methods to Determine the Difference in the Folding Propensities of Highly Similar beta-Hairpins

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    We have evaluated the ability of nuclear magnetic resonance (NMR) and circular dichroism (CD) spectroscopies to describe the difference in the folding propensities of two structurally highly similar cyclic β-hairpins, comparing the outcome to that of molecular dynamics simulations. NAMFIS-type NMR ensemble analysis and CD spectroscopy were observed to accurately describe the consequence of altering a single interaction site, whereas a single-site <sup>13</sup>C NMR chemical shift melting curve-based technique was not

    Deamidation drives molecular aging of the SARS-CoV-2 spike protein receptor-binding motif

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    The spike protein is the main protein component of the SARS-CoV-2 virion surface. The spike receptor-binding motif mediates recognition of the human angiotensin-converting enzyme 2 (hACE2) receptor, a critical step in infection, and is the preferential target for spikeneutralizing antibodies. Post-translational modifications of the spike receptor-binding motif have been shown to modulate viral infectivity and host immune response, but these modifications are still being explored. Here we studied asparagine deamidation of the spike protein, a spontaneous event that leads to the appearance of aspartic and isoaspartic residues, which affect both the protein backbone and its charge. We used computational prediction and biochemical experiments to identify five deamidation hotspots in the SARS-CoV-2 spike protein. Asparagine residues 481 and 501 in the receptor-binding motif deamidate with a half-life of 16.5 and 123 days at 37°C, respectively. Deamidation is significantly slowed at 4°C, indicating a strong dependence of spike protein molecular aging on environmental conditions. Deamidation of the spike receptor-binding motif decreases the equilibrium constant for binding to the hACE2 receptor more than 3.5-fold, yet its high conservation pattern suggests some positive effect on viral fitness. We propose a model for deamidation of the full SARS-CoV-2 virion illustrating how deamidation of the spike receptor-binding motif could lead to the accumulation on the virion surface of a nonnegligible chemically diverse spike population in a timescale of days. Our findings provide a potential mechanism for molecular aging of the spike protein with significant consequences for understanding virus infectivity and vaccine development.Fil: Lorenzo Lopez, Juan Ramiro. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Tandil. Centro de Investigación Veterinaria de Tandil. Universidad Nacional del Centro de la Provincia de Buenos Aires. Centro de Investigación Veterinaria de Tandil. Provincia de Buenos Aires. Gobernación. Comision de Investigaciones Científicas. Centro de Investigación Veterinaria de Tandil; ArgentinaFil: Defelipe, Lucas Alfredo. European Molecular Biology Laboratory; Alemania. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales; ArgentinaFil: Aliperti Car, Lucio. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales; ArgentinaFil: Niebling, Stephan. European Molecular Biology Laboratory; Alemania. Centre for Structural Systems Biology; AlemaniaFil: Custódio, Tânia F.. European Molecular Biology Laboratory; Alemania. Centre for Structural Systems Biology; AlemaniaFil: Löw, Christian. European Molecular Biology Laboratory; Alemania. Centre for Structural Systems Biology; AlemaniaFil: Schwarz, Jennifer J.. European Molecular Biology Laboratory; AlemaniaFil: Remans, Kim. European Molecular Biology Laboratory; AlemaniaFil: Craig, Patricio Oliver. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Departamento de Química Biológica; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; ArgentinaFil: Otero, Lisandro Horacio. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Parque Centenario. Instituto de Investigaciones Bioquímicas de Buenos Aires. Fundación Instituto Leloir. Instituto de Investigaciones Bioquímicas de Buenos Aires; ArgentinaFil: Klinke, Sebastian. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Parque Centenario. Instituto de Investigaciones Bioquímicas de Buenos Aires. Fundación Instituto Leloir. Instituto de Investigaciones Bioquímicas de Buenos Aires; ArgentinaFil: García Alai, María. European Molecular Biology Laboratory; Alemania. Centre for Structural Systems Biology; AlemaniaFil: Sánchez Miguel, Ignacio Enrique. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Ciudad Universitaria. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales. Instituto de Química Biológica de la Facultad de Ciencias Exactas y Naturales; ArgentinaFil: Alonso, Leonardo Gabriel. Consejo Nacional de Investigaciones Científicas y Técnicas. Oficina de Coordinación Administrativa Houssay. Instituto de Nanobiotecnología. Universidad de Buenos Aires. Facultad de Farmacia y Bioquímica. Instituto de Nanobiotecnología; Argentin

    Massive X-ray screening reveals two allosteric drug binding sites of SARS-CoV-2 main protease

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    The coronavirus disease (COVID-19) caused by SARS-CoV-2 is creating tremendous health problems and economical challenges for mankind. To date, no effective drug is available to directly treat the disease and prevent virus spreading. In a search for a drug against COVID-19, we have performed a massive X-ray crystallographic screen of repurposing drug libraries containing 5953 individual compounds against the SARS-CoV-2 main protease (Mpro), which is a potent drug target as it is essential for the virus replication. In contrast to commonly applied X-ray fragment screening experiments with molecules of low complexity, our screen tested already approved drugs and drugs in clinical trials. From the three-dimensional protein structures, we identified 37 compounds binding to Mpro. In subsequent cell-based viral reduction assays, one peptidomimetic and five non-peptidic compounds showed antiviral activity at non-toxic concentrations. Interestingly, two compounds bind outside the active site to the native dimer interface in close proximity to the S1 binding pocket. Another compound binds in a cleft between the catalytic and dimerization domain of Mpro. Neither binding site is related to the enzymatic active site and both represent attractive targets for drug development against SARS-CoV-2. This X-ray screening approach thus has the potential to help deliver an approved drug on an accelerated time-scale for this and future pandemics

    X-ray screening identifies active site and allosteric inhibitors of SARS-CoV-2 main protease

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    The coronavirus disease (COVID-19) caused by SARS-CoV-2 is creating tremendous human suffering. To date, no effective drug is available to directly treat the disease. In a search for a drug against COVID-19, we have performed a high-throughput X-ray crystallographic screen of two repurposing drug libraries against the SARS-CoV-2 main protease (M^(pro)), which is essential for viral replication. In contrast to commonly applied X-ray fragment screening experiments with molecules of low complexity, our screen tested already approved drugs and drugs in clinical trials. From the three-dimensional protein structures, we identified 37 compounds that bind to M^(pro). In subsequent cell-based viral reduction assays, one peptidomimetic and six non-peptidic compounds showed antiviral activity at non-toxic concentrations. We identified two allosteric binding sites representing attractive targets for drug development against SARS-CoV-2

    Schwingungsspektroskopische Untersuchungen zur molekularen Erkennung von Tetrapeptiden durch künstliche Rezeptoren

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    Die vorliegende Dissertation beschäftigt sich mit der schwingungsspektroskopischen Charakterisierung der molekularen Erkennung von Tetrapeptiden durch künstliche Rezeptoren. Die Peptidrezeptoren zeichnen sich durch hohe Bindungskonstanten in Wasser und ausgeprägte Selektivitäten gegenüber bestimmten Tetrapeptiden aus. In der vorliegenden Arbeit wurde untersucht, wie über schwingungsspektroskopische Techniken in Kombination mit multivariaten und computerchemischen Methoden sowohl Bindungskonstanten als auch strukturelle Informationen über den Peptid-Rezeptor-Komplex gewonnen werden können. Dabei wurden die Infrarot-Spektroskopie zur globalen Abfrage des Gesamtkomplexes und die UV-Resonanz-Raman-Spektroskopie zur selektiven Abfrage der Bindungstasche des Rezeptors eingesetzt. Zur Auswertung der schwingungsspektroskopischen Bindungsstudien wurde eine Matrixfaktorisierung eingesetzt, die es erlaubt, das Reinspektrum des Komplexes (Infrarot-Spektroskopie) bzw. der komplexierten Bindungstasche (Resonanz-Raman-Spektroskopie) zu bestimmen. Darüber hinaus können über die Matrixfaktorisierung Komplexkonzentrationen ermittelt werden, die wiederum die Bestimmung von Bindungskonstanten erlauben. Im zweiten Teil der Arbeit wurden computerchemische Methoden verwendet, um die im ersten Teil der Arbeit beobachteten spektralen Änderungen unter Komplexierung erklären zu können. Zunächst wurden über Kraftfeld-Konformationssuchen energiearme Komplexstrukturen ermittelt, um danach mit Dichtefunktionaltheorie Schwingungsspektren zu berechnen. Zusätzliche Kraftfeld- und Dichtefunktionalrechnungen wurden durchgeführt, um den Einfluss von expliziten Wassermolekülen auf die berechneten Schwingungsspektren zu untersuchen. Im Zuge dieser Arbeit konnte gezeigt werden, wie über schwingungsspektroskopische Bindungsstudien die molekulare Erkennung von Peptiden durch künstliche Rezeptoren markierungsfrei untersucht werden kann. Die in dieser Arbeit vorgestellte Kombination von schwingungsspektroskopischen Methoden mit computerchemischen Rechnungen erlaubt die Übertragung dieses Vorgehens auf andere Systeme, wie z.B. biologische Rezeptoren
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