A plant cyclic nonapeptide of orbitide type: an electron density study
Author:
Luger Peter1, Dittrich Birger2, Schmidt Heinz-Jürgen3
Affiliation:
1. Institut für Chemie und Biochemie, Anorganische Chemie, Freie Universität Berlin , Fabeckstraße 36a, D-14195 Berlin , Germany 2. Mathematisch-Naturwissenschaftliche Fakultät , Universität Zürich , Winterthurerstrasse 190, CH-8057 Zürich , Switzerland 3. Hochschule für Technik und Wirtschaft , FB 1, Wilhelminenhofstraße 75A, 12459 Berlin , Germany
Abstract
Abstract
The electron density distribution (EDD) of a plant cyclic nonapeptide of orbitide type was studied. Crystal X-ray diffraction data was obtained from the Cambridge Structural Database (CSD) and refitted using scattering factors of the invariom library, thereby providing aspherical electron density. Bond topological, atomic properties and molecular surfaces (electrostatic potential and Hirshfeld surfaces) were derived. The partial double bond character of the peptide bond was confirmed by the ellipticity ε = 0.25. For eight N–H⋯O hydrogen bonds, atomic charges of contributing atoms differ depending on the type of the accepting oxygen atom. Atomic charge differences between negative main and positive side chains of this nonapeptide result in characteristic features of the electrostatic potential, which shows a positive isosurface around the molecule leading to repulsive interactions in the solid state structure. Weak intermolecular interactions are indicated by insignificant ED concentrations on the Hirshfeld surface except for weak signals at sites of intermolecular N–H⋯O and C–H⋯O hydrogen bonds.
Publisher
Walter de Gruyter GmbH
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