Search results for "Bioorthogonal Chemistry"

showing 4 items of 14 documents

Bistetrazine-Cyanines as Double-Clicking Fluorogenic Two-Point Binder or Crosslinker Probes

2018

Fluorogenic probes can be used to minimize the background fluorescence of unreacted and nonspecifically adsorbed reagents. The preceding years have brought substantial developments in the design and synthesis of bioorthogonally applicable fluorogenic systems mainly based on the quenching effects of azide and tetrazine moieties. The modulation power exerted by these bioorthogonal motifs typically becomes less efficient on more conjugated systems; that is, on probes with redshifted emission wavelength. To reach efficient quenching, that is, fluorogenicity, even in the red range of the spectrum, we present the synthesis, fluorogenic, and conjugation characterization of bistetrazine-cyanine pro…

chemistry.chemical_classificationQuenching (fluorescence)010405 organic chemistryChemistryOrganic ChemistryPeptideGeneral ChemistryConjugated system010402 general chemistry01 natural sciencesFluorescenceCombinatorial chemistryCatalysis0104 chemical sciencesTetrazinechemistry.chemical_compoundCovalent bondAzideBioorthogonal chemistryChemistry - A European Journal
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Bridge-Clamp Bis(tetrazine)s with [N] 8 π-Stacking Interactions and Azido- s -Aryl Tetrazines: Two Classes of Doubly Clickable Tetrazines

2020

Click chemistry at a tetrazine core is useful for bioorthogonal labeling and crosslinking. Introduced here are two new classes of doubly clickable s-aryl tetrazines synthesized by Cu-catalyzed cross-coupling. Homocoupling of o-brominated s-aryl tetrazines leads to bis(tetrazine)s structurally characterized by tetrazine cores arranged face-to-face. [N]8 π-stacking interactions are essential to the conformation. Upon inverse electron demand Diels-Alder (iEDDA) cycloaddition, the bis(tetrazine)s produce a unique staple structure. The o-azidation of s-aryl tetrazines introduces a second proximal intermolecular clickable function that leads to double click chemistry opportunities. The stepwise i…

chemistry.chemical_classificationTrifluoromethylation010405 organic chemistryChemistryArylThio-General ChemistryGeneral Medicine010402 general chemistryCombinatorial chemistry01 natural sciencesBridge (interpersonal)CatalysisCycloaddition0104 chemical sciencesTetrazinechemistry.chemical_compoundPolymer chemistryClick chemistryNon-covalent interactions[CHIM]Chemical SciencesClickableBioorthogonal chemistry
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Bioorthogonal red and far-red fluorogenic probes for wash-free live-cell and super-resolution microscopy

2020

AbstractSmall-molecule fluorophores enable the observation of biomolecules in their native context with fluorescence microscopy. Specific labelling via bioorthogonal tetrazine chemistry confers minimal label size and rapid labelling kinetics. At the same time, fluorogenic tetrazine-dye conjugates exhibit efficient quenching of dyes prior to target binding. However, live-cell compatible long-wavelength fluorophores with strong fluorogenicity have been difficult to realize. Here, we report close proximity tetrazine-dye conjugates with minimal distance between tetrazine and fluorophore. Two synthetic routes give access to a series of cell permeable and impermeable dyes including highly fluorog…

chemistry.chemical_compoundFluorescence-lifetime imaging microscopyTetrazineFluorophoreQuenching (fluorescence)chemistrySuper-resolution microscopySTED microscopyContext (language use)Bioorthogonal chemistryCombinatorial chemistry
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Trans -Cyclooctene-Functionalized PeptoBrushes with Improved Reaction Kinetics of the Tetrazine Ligation for Pretargeted Nuclear Imaging

2020

Tumor targeting using agents with slow pharmacokinetics represents a major challenge in nuclear imaging and targeted radionuclide therapy as they most often result in low imaging contrast and high radiation dose to healthy tissue. To address this challenge, we developed a polymer-based targeting agent that can be used for pretargeted imaging and thus separates tumor accumulation from the imaging step in time. The developed targeting agent is based on polypeptide-graft-polypeptoid polymers (PeptoBrushes) functionalized with trans-cyclooctene (TCO). The complementary In-111-labeled imaging agent is a 1,2,4,5-tetrazine derivative, which can react with aforementioned TCO-modified PeptoBrushes i…

pretargeted imagingGeneral Physics and Astronomy02 engineering and technology010402 general chemistry01 natural sciencesArticlechemistry.chemical_compoundTetrazinetetrazine ligationCycloocteneGeneral Materials Sciencepolypeptide-graft-polypeptoidsPretargetingchemistry.chemical_classificationGeneral EngineeringPolymerEPR effectPeptoBrush021001 nanoscience & nanotechnologynanomedicineSmall moleculeCombinatorial chemistryImaging agent0104 chemical scienceschemistrySPECTNanomedicineBioorthogonal chemistry0210 nano-technologyACS Nano
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