Honey bee Odorant Binding Protein 14: Effects on Thermal Stability upon Odorant Binding revealed by FT-IR Spectroscopy and CD Measurements

Andreas Schwaighofer, Carolina Kotlowski, Can Araman, Nam Chu, Rosa Mastrogiacomo, Christian Becker, Paolo Pelosi, Wolfgang Knoll, Melanie Larisika, Christoph Nowak

    Publikation: Beitrag in FachzeitschriftArtikelBegutachtung

    Abstract

    In the present work, we study the effect of odorant binding on the thermal stability of honey bee (Apis mellifera L.) odorant-binding protein 14. Thermal denaturation of the protein in the absence and presence of different odorant molecules was monitored by Fourier transform infrared spectroscopy (FT-IR) and circular dichroism (CD). FT-IR spectra show characteristic bands for intermolecular aggregation through the formation of intermolecular β-sheets during the heating process. Transition temperatures in the FT-IR spectra were evaluated using moving-window 2D correlation maps and confirmed by CD measurements. The obtained results reveal an increase of the denaturation temperature of the protein when bound to an odorant molecule. We could also discriminate between high- and low-affinity odorants by determining transition temperatures, as demonstrated independently by the two applied methodologies. The increased thermal stability in the presence of ligands is attributed to a stabilizing effect of non-covalent interactions between odorant-binding protein 14 and the odorant molecule.
    OriginalspracheEnglisch
    Seitenumfang8
    FachzeitschriftEuropean Biophysics Journal
    DOIs
    PublikationsstatusVeröffentlicht - März 2014

    Research Field

    • Biosensor Technologies

    Schlagwörter

    • Odorant-binding protein
    • Apis mellifera
    • Infrared spectroscopy
    • Circular dichroism
    • Ligand binding
    • Moving window 2D spectroscopy

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