Theoretical studies on the hydrogen-bonding interactions between luteolin and water: a DFT approach

被引:0
|
作者
Yan-Zhen Zheng
Yu Zhou
Qin Liang
Da-Fu Chen
Rui Guo
机构
[1] Fujian Agriculture and Forestry University,College of Bee Science
[2] Tsinghua University,Key Laboratory of Bioorganic Phosphorous Chemistry and Chemical Biology (Ministry of Education), Department of Chemistry
来源
关键词
Flavonoids; Hydrogen-bond; Extraction; Density functional theory;
D O I
暂无
中图分类号
学科分类号
摘要
Flavonoids are among the most important bioactive compounds responsible for the medical properties of honey and propolis. Water is the solvent most commonly used to extract flavonoids from honey and propolis. Hydrogen-bonding interactions are of great importance in the extraction process. In this work, hydrogen-bonding interactions between a representative flavonoid, luteolin, and water were investigated by density functional theory (DFT) from a theoretical viewpoint. The following conclusions were drawn: first, the molecular structure of luteolin is non-planar. Second, nine optimized geometries for the luteolin–H2O complex were obtained. With the exception of the aromatic hydrogen atoms in the phenyl substituent, the other hydrogen and oxygen atoms formed hydrogen-bonds with H2O. Third, luteolin–H2O complexation is accompanied by charge rearrangement. The electron density and the second-order perturbation stabilization energy [E(2)] in the related anti-bonding orbital of the hydrogen-bond donors were increased, causing elongation and a red-shift of the X−H bond in X−H···Y. The stronger interaction makes the electron density and the E(2) increase more in the more stable geometries. The sum of the electron density is transferred from hydrogen-bond acceptors to donors. Fourth, the hydrogen-bonds in the luteolin−H2O complex are weak and basically electrostatic in nature. In addition, O−H···O hydrogen-bonds are stronger than C−H···O hydrogen-bonds in the luteolin–H2O complex.
引用
收藏
相关论文
共 50 条
  • [21] Theoretical studies on hydrogen-bonding complexes of melamine and cyclotrione
    Zhu, LL
    Teng, QW
    Wu, S
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2006, 27 (04): : 680 - 683
  • [22] HREELS STUDIES OF FORMAMIDE ON PT(111) - HYDROGEN-BONDING INTERACTIONS BETWEEN ADSORBATES
    FLORES, CR
    GAO, QY
    HEMMINGER, JC
    SURFACE SCIENCE, 1990, 239 (1-2) : 156 - 168
  • [23] Experimental and Theoretical Investigation of Hydrogen-Bonding Interactions in Cocrystals of Sulfaguanidine
    Huang, Shan
    Cheemarla, Vinay K. R.
    Tiana, Davide
    Lawrence, Simon E.
    CRYSTAL GROWTH & DESIGN, 2023, 23 (04) : 2306 - 2320
  • [24] Hydrogen-bonding interactions in monomeric dimethylcuprates. A theoretical study
    Dem'yanov, Piotr
    Polestshuk, Pavel
    Gschwind, Ruth
    JOURNAL OF MOLECULAR STRUCTURE-THEOCHEM, 2008, 861 (1-3): : 85 - 96
  • [25] Theoretical Insights into Dispersion and Hydrogen-Bonding Interactions in Biomolecular Systems
    Pavlov, Alexander
    Mitrasinovic, Petar M.
    CURRENT ORGANIC CHEMISTRY, 2010, 14 (02) : 129 - 137
  • [26] HYDROGEN-BONDING BETWEEN WATER AND AMMONIA MOLECULES
    PIELA, L
    CHEMICAL PHYSICS LETTERS, 1972, 15 (02) : 199 - &
  • [27] THEORETICAL-STUDIES OF HYDROGEN-BONDING IN LIQUID WATER AND DILUTE AQUEOUS-SOLUTIONS
    MEZEI, M
    BEVERIDGE, DL
    JOURNAL OF CHEMICAL PHYSICS, 1981, 74 (01): : 622 - 632
  • [28] STUDIES IN HYDROGEN-BONDING
    HADDON, RC
    BRUS, LE
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1981, 181 (MAR): : 214 - ORGN
  • [29] Competition between Hydrogen and Halogen Bonding Interactions: Theoretical and Crystallographic Studies
    Awwadi, Firas F.
    Taher, Deeb
    Haddad, Salim F.
    Turnbull, Mark M.
    CRYSTAL GROWTH & DESIGN, 2014, 14 (04) : 1961 - 1971
  • [30] Hydrogen-bonding interactions between formic acid and pyridine
    Fernandez-Berridi, MJ
    Iruin, JJ
    Irusta, L
    Mercero, JM
    Ugalde, JM
    JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (16): : 4187 - 4191