9 research outputs found

    Defining the Basis of Cyanine Phototruncation Enables a New Approach to Single-Molecule Localization Microscopy

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    The light-promoted conversion of extensively used cyanine dyes to blue-shifted emissive products has been observed in various contexts. However, both the underlying mechanism and the species involved in this photoconversion reaction have remained elusive. Here we report that irradiation of heptamethine cyanines provides pentamethine cyanines, which, in turn, are photoconverted to trimethine cyanines. We detail an examination of the mechanism and substrate scope of this remarkable twocarbon phototruncation reaction. Supported by computational analysis, we propose that this reaction involves a singlet oxygeninitiated multistep sequence involving a key hydroperoxycyclobutanol intermediate. Building on this mechanistic framework, we identify conditions to improve the yield of photoconversion by over an order of magnitude. We then demonstrate that cyanine phototruncation can be applied to super-resolution single-molecule localization microscopy, leading to improved spatial resolution with shorter imaging times. We anticipate these insights will help transform a common, but previously mechanistically ill-defined, chemical transformation into a valuable optical tool

    Cooperation of local motions in the Hsp90 molecular chaperone ATPase mechanism

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    The Hsp90 chaperone is a central node of protein homeostasis activating a large number of diverse client proteins. Hsp90 functions as a molecular clamp that closes and opens in response to the binding and hydrolysis of ATP. Crystallographic studies define distinct conformational states of the mechanistic core implying structural changes that have not yet been observed in solution. Here, we engineered one-nanometer fluorescence probes based on photo-induced electron transfer into yeast Hsp90 to observe these motions. We found that the ATPase activity of the chaperone was reflected in the kinetics of specific structural rearrangements at remote positions that acted cooperatively. Nanosecond single-molecule fluorescence fluctuation analysis uncovered that critical structural elements that undergo rearrangement are mobile on a sub-millisecond time scale. We identified a two-step mechanism for lid closure over the nucleotide-binding pocket. The activating co-chaperone Aha1 mobilizes the lid of apo Hsp90, suggesting an early role in the catalytic cycle

    Bioorthogonal tetrazine-dyes for live-cell labeling and super-resolution fluorescence microscopy

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    Der genetische Code beschreibt die Ver- und Entschlüsselung der Erb-information für das universelle Prinzip der Proteinbiosynthese aus einzelnen Aminosäuren. Durch Erweiterung des genetischen Codes lassen sich unna-türliche Aminosäuren (uAA) mit einzigartigen biophysikalischen Eigenschaf-ten ortsspezifisch in Proteine einführen und ermöglichen die spezifische Ma-nipulation von Proteinen. Die Click-Reaktion zwischen der unnatürlichen Aminosäure TCO*-Lysin und Tetrazin besitzt eine außergewöhnliche Reaktionskinetik (≥800 M-1s-1) und ermöglicht eine spezifische und bioorthogonale Markierung von Bio- ¬molekülen unter physiologischen Bedingungen. Im Fokus dieser Arbeit stand zunächst die Markierung von Membran- ¬rezeptoren durch Click-Chemie in lebenden Zellen sowie die Untersuchung der Wechselwirkung 22 bekannter und neuartiger Tetrazin-Farbstoff- Konjugate. Darüber hinaus wurde die Anwendbarkeit von bioorthogonalen Click-Reaktionen für die hochauflösende Fluoreszenzmikroskopie untersucht. Durch Erweiterung des genetischen Codes in Proteine aus der Klasse der ionotropen Glutamatrezeptoren (iGluR), TNF-Rezeptoren oder Mikrotubu-li-assoziierten Proteinen (MAP) wurde ortspezifisch die unnatürliche Amino-säure TCO*-Lysin eingeführt und dadurch die Fluoreszenzmarkierung durch Tetrazin-Farbstoffe ermöglicht. Die direkte chemische Kopplung von TCO an Liganden wie Phalloidin und Docetaxel, welche spezifisch das Aktin-Zytoskelett bzw. Mikrotubuli-Filamente binden können, ermöglichte zudem die Click-Färbungen von fixierten und lebenden Zellen ohne genetische Ver-änderungen der Zielproteine. Des Weiteren wurden die spektroskopischen Eigenschaften von 22 Tetrazin-Farbstoffen, verteilt über den gesamten sichtbaren Wellenlängenbereich, untersucht. Ein charakteristisches Kennzeichen der Click-Reaktion mit Tet-razin-Farbstoffen ist dabei ihre Fluorogenität. Das Tetrazin fungiert nicht nur als reaktive Gruppe während der Click-Reaktion mit Alkenen, sondern führt in vielen Tetrazin-Farbstoff-Konjugaten zur Fluoreszenzlöschung. Während bei grün-absorbierenden Farbstoffe vor allem FRET-basierte Löschprozesse dominieren, konnte photoinduzierter Elektronentransfer (PET) vom angeregten Farbstoff zum Tetrazin als Hauptlöschmechanismus bei rot-absorbierenden Oxazin- und Rhodamin-Derivaten identifiziert werden. Die effiziente und spezifische Markierung aller untersuchten Tetrazin- Farbstoffe ermöglichte die Visualisierung von Aktin-Filamenten, Mikrotubuli und Membranrezeptoren sowohl durch konventionelle Fluoreszenzmikrosko-pie als auch durch hochauflösende Verfahren, wie z.B. dSTORM, auf Ein-zelmolekülebene. Die unterschiedliche Zellpermeabilität von Tetrazin-Farbstoffen kann dabei vorteilhaft für die spezifische intra- und extrazelluläre Markierung von Proteinen in fixierten und lebenden Zellen genutzt werden.The genetic code describes the encoding and decoding of genetic infor-mation for the universal principle of protein biosynthesis from individual amino acids. By expanding the genetic code, unnatural amino acids (uAA) with unique biophysical properties can be introduced site-specifically into pro-teins and enable the selective manipulation of proteins. The click reaction of the unnatural amino acid TCO*-lysine and tetrazine has an extraordinary reaction kinetic (≥800 M-1s-1) enabling the specific and bioorthogonal labeling of biomolecules under physiological conditions. The main focus of this work was the labeling of membrane receptors by click chemistry in living cells and the investigation of the interaction of 22 known and novel tetrazine dye conjugates. In addition, the applicability of bioorthogonal click reactions for high-resolution fluorescence microscopy was investigated. For this purpose, the unnatural amino acid TCO*-lysine was introduced site-specifically via genetic code expansion into proteins from the class of iono-tropic glutamate receptors (iGluR), TNF receptors or microtubule- associated proteins (MAP), thereby enabling fluorescence labeling with tetrazine dyes. The direct chemical coupling of TCO to ligands such as phalloidin and docetaxel, which can specifically bind the actin cytoskeleton or microtubule filaments, allowed click staining of fixed and living cells without genetic modifications of the target proteins. Furthermore, the spectroscopic properties of 22 tetrazine dyes spanning the entire visible wavelength range were investigated. A hallmark of the click reaction using tetrazine dyes is their fluorogenicity. Thus, the tetrazine not only functions as a reactive group during the click reaction with alkenes, but also leads to fluorescence quenching in many tetrazine-dye conjugates. While FRET-based quenching processes dominate in green-absorbing dyes, photoinduced electron transfer (PET) from excited dye to tetrazine has been identified as the main quenching mechanism in red-absorbing oxazine and rhodamine derivatives. The efficient and specific labeling of all investigated tetrazine dyes facilitates the visualization of actin filaments, microtubules and membrane receptors by conventional fluorescence microscopy as well as by super-resolution microscopy techniques, e.g. dSTORM, also at single molecule level. The different cell permeability of tetrazine dyes can be used advantageously for the specific intra- and extracellular labeling of proteins in fixed and living cells

    Defining the Basis of Cyanine Phototruncation Enables a New Approach to Single Molecule Localization Microscopy

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    The light-promoted conversion of extensively used cyanine dyes to blue-shifted emissive products has been observed in various contexts. However, both the underlying mechanism and the species involved in this photoconversion reaction have remained elusive. Here we report that irradiation of heptamethine cyanines provides pentamethine cyanines, which, in turn, are photoconverted to trimethine cyanines. We detail an examination of the mechanism and substrate scope of this remarkable two-carbon phototruncation reaction. Supported by computational analysis, we propose that this reaction involves a singlet oxygen-initiated multi-step sequence involving a key hydroperoxycyclobutanol intermediate. Building on this mechanistic framework, we identify conditions to improve the yield of photoconversion by over an order of magnitude. We then demonstrate that cyanine phototruncation can be applied to super-resolution single-molecule localization microscopy, leading to improved spatial resolution with shorter imaging times. We anticipate these insights will help transform a common, but previously mechanistically ill-defined, chemical transformation into a valuable optical tool.</p

    Single-molecule localization microscopy

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    International audienceSingle-molecule localization microscopy (SMLM) describes a family of powerful imaging techniques that dramatically improve spatial resolution over standard, diffraction-limited microscopy techniques and can image biological structures at the molecular scale. In SMLM, individual fluorescent molecules are computationally localized from diffraction-limited image sequences and the localizations are used to generate a super-resolution image or a time course of super-resolution images, or to define molecular trajectories. In this Primer, we introduce the basic principles of SMLM techniques before describing the main experimental considerations when performing SMLM, including fluorescent labelling, sample preparation, hardware requirements and image acquisition in fixed and live cells. We then explain how low-resolution image sequences are computationally processed to reconstruct super-resolution images and/or extract quantitative information, and highlight a selection of biological discoveries enabled by SMLM and closely related methods. We discuss some of the main limitations and potential artefacts of SMLM, as well as ways to alleviate them. Finally, we present an outlook on advanced techniques and promising new developments in the fast-evolving field of SMLM. We hope that this Primer will be a useful reference for both newcomers and practitioners of SMLM

    Genetic Code Expansion and Click-Chemistry Labeling to Visualize GABA-A Receptors by Super-Resolution Microscopy

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    Fluorescence labeling of difficult to access protein sites, e.g., in confined compartments, requires small fluorescent labels that can be covalently tethered at well-defined positions with high efficiency. Here, we report site-specific labeling of the extracellular domain of γ-aminobutyric acid type A (GABA-A) receptor subunits by genetic code expansion (GCE) with unnatural amino acids (ncAA) combined with bioorthogonal click-chemistry labeling with tetrazine dyes in HEK-293-T cells and primary cultured neurons. After optimization of GABA-A receptor expression and labeling efficiency, most effective variants were selected for super-resolution microscopy and functionality testing by whole-cell patch clamp. Our results show that GCE with ncAA and bioorthogonal click labeling with small tetrazine dyes represents a versatile method for highly efficient site-specific fluorescence labeling of proteins in a crowded environment, e.g., extracellular protein domains in confined compartments such as the synaptic cleft

    Targetable Conformationally Restricted Cyanines Enable Photon-Count Limited Applications

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    Cyanine dyes are exceptionally useful probes for a range of fluorescence-based applications. We recently demonstrated that appending a ring system to the pentamethine cyanine ring system improves the quantum yield and extends the fluorescence lifetime. Here, we report an optimized synthesis of persulfonated variants that enable efficient labeling of nucleic acids and proteins. We demonstrate that a bifunctional sulfonated tertiary amide significantly improves the optical properties of the resulting bioconjugates. These new conformationally restricted cyanines are compared to parent species in a range of contexts including their use on a DNA-nano-antenna, in single-molecule Förster resonance energy transfer (FRET) applications, far-red fluorescence lifetime imaging microscopy (FLIM), and single-molecule localization microscopy. These efforts define contexts in which eliminating cyanine isomerization provides meaningful benefits to imaging performance

    Targetable conformationally restricted cyanines enable photon-count-limited applications

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    Cyanine dyes are exceptionally useful probes for a range of fluorescence-based applications, but their photon output can be limited by trans-to-cis photoisomerization. We recently demonstrated that appending a ring system to the pentamethine cyanine ring system improves the quantum yield and extends the fluorescence lifetime. Here, we report an optimized synthesis of persulfonated variants that enable efficient labeling of nucleic acids and proteins. We demonstrate that a bifunctional sulfonated tertiary amide significantly improves the optical properties of the resulting bioconjugates. These new conformationally restricted cyanines are compared to the parent cyanine derivatives in a range of contexts. These include their use in the plasmonic hotspot of a DNA-nanoantenna, in single-molecule Förster-resonance energy transfer (FRET) applications, far-red fluorescence-lifetime imaging microscopy (FLIM), and single-molecule localization microscopy (SMLM). These efforts define contexts in which eliminating cyanine isomerization provides meaningful benefits to imaging performance
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