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  • 1
    UID:
    b3kat_BV041343038
    Format: XV, 143 S. , Ill., graph. Darst.
    Note: Enth. Artikel aus verschiedenen Zeitschr. , Berlin, Techn. Univ., Kumul. Diss., 2013
    Additional Edition: Erscheint auch als Online-Ausgabe urn:nbn:de:kobv:83-opus4-41942
    Language: English
    Keywords: Hochschulschrift
    URL: Volltext  (kostenfrei)
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  • 2
    UID:
    edochu_18452_28655
    Format: 1 Online-Ressource (20 Seiten)
    Content: Rhodopsins had long been considered non-fluorescent until a peculiar voltage-sensitive fluorescence was reported for archaerhodopsin-3 (Arch3) derivatives. These proteins named QuasArs have been used for imaging membrane voltage changes in cell cultures and small animals. However due to the low fluorescence intensity, these constructs require use of much higher light intensity than other optogenetic tools. To develop the next generation of sensors, it is indispensable to first understand the molecular basis of the fluorescence and its modulation by the membrane voltage. Based on spectroscopic studies of fluorescent Arch3 derivatives, we propose a unique photo-reaction scheme with extended excited-state lifetimes and inefficient photoisomerization. Molecular dynamics simulations of Arch3, of the Arch3 fluorescent derivative Archon1, and of several its mutants have revealed different voltage-dependent changes of the hydrogen-bonding networks including the protonated retinal Schiff-base and adjacent residues. Experimental observations suggest that under negative voltage, these changes modulate retinal Schiff base deprotonation and promote a decrease in the populations of fluorescent species. Finally, we identified molecular constraints that further improve fluorescence quantum yield and voltage sensitivity.
    Content: Peer Reviewed
    In: [London] : Nature Publishing Group UK, 13,1
    Language: English
    URL: Volltext  (kostenfrei)
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