| Literature DB >> 27043500 |
Rui Zhao1,2,3, Corine Sandström4, Haiyang Zhang5, Tianwei Tan6.
Abstract
The structure of the inclusion complexes of β-cyclodextrin (β-CD) with daidzein and daidzin in D2O were investigated using NMR spectroscopy. For the β-CD and daidzein system, two types of 1:1 complexes were formed with the daidzein deeply inserted into the CD cavity with different orientations. For the β-CD/daidzin system, a 1:1 complex was formed with the flavonoid part of daidzin entering the CD cavity from the wide rim. The inclusion complexes determined by NMR were constructed using molecular docking. Furthermore, the mixture of puerarin, daidzein and daidzin, which are the major isoflavonoid components present in Radix puerariae, was analyzed by diffusion-ordered spectroscopy (DOSY) alone and upon addition of β-CD in order to mimic chromatographic conditions and compare their binding affinities.Entities:
Keywords: NMR; flavonoids; interaction; β-cyclodextrin
Mesh:
Substances:
Year: 2016 PMID: 27043500 PMCID: PMC6273401 DOI: 10.3390/molecules21040372
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structures of daidzein (1), daidzin (2) and puerarin (3) and a schematic representation of β-CD.
Figure 2Job’s plot using the chemical shift of the H-5 signal of β-CD of (a) the complex of daidzein with β-CD; (b) the complex of daidzin with β-CD. “r” is the molar fraction of β-CD in the guest/β-CD mixture.
1H-NMR Chemical shifts (δ, ppm) for CH protons of β-CD alone, daidzein alone and their complexation induced shifts (CIS = δ − δ) in D2O at 30 °C.
| β-CD | |||||||
| δ alone | 5.038 | 3.617 | 3.931 | 3.550 | 3.821 | 3.847 | |
| CIS | −0.040 | −0.052 | −0.065 | −0.026 | −0.113 | −0.097 | |
| Daidzein | CH protons | H-2 | H-5 | H-6 | H-8 | H-2′6′ | H-3′5′ |
| δ alone | 7.992 | 7.859 | 6.73 | 6.524 | 7.217 | 6.704 | |
| CIS | −0.123 | 0.009 | −0.022 | −0.047 | −0.049 | −0.007 |
1H-NMR Chemical shifts (δ, ppm) for CH protons of β-CD alone, daidzin alone and their complexation induced shifts (CIS = δ − δ) in D2O at 30 °C.
| β-CD | |||||||
| δ alone | 5.038 | 3.617 | 3.931 | 3.550 | 3.821 | 3.847 | |
| CIS | −0.019 | −0.021 | −0.047 | −0.012 | −0.063 | −0.050 | |
| Daidzin | CH protons | H-2 | H-5 | H-6 | H-8 | H-2′6′ | H-3′5′ |
| δ alone | 8.172 | 8.101 | 7.208 | 7.243 | 7.240 | 6.686 | |
| CIS | −0.059 | 0.060 | 0.063 | 0.028 | −0.019 | 0.031 |
Figure 32D ROESY spectrum of (a) daidzein/β-CD (1:1) in D2O at 30 °C; (b) daidzin/β-CD (1:1) in D2O at 30 °C.
Figure 4DOSY spectra of daidzein, daidzin and puerarin ((a): 2.0 mM for each); in the presence of β-CD ((b): β-CD 2.0 mM; (c): β-CD 4.0mM; (d): β-CD 6.0 mM in D2O, 30 °C).
Diffusion coefficients (D) in D2O and association constants (K), log Dfree (isoflavones alone 2 mM, diffusion/m2∙s−1), log D+CD (isoflavones 2 mM with β-CD 2 mM), K (M−1).
| Isoflavones | Daidzein | Daidzin | Puerarin |
|---|---|---|---|
| log Dfree | −9.27 ± 0.03 | −9.34 ± 0.03 | −9.35 ± 0.01 |
| log D+CD | −9.37 ± 0.04 | −9.38 ± 0.03 | −9.39 ± 0.01 |
| K | 2843 ± 187 | 902 ± 66 | 781 ± 42 |
Figure 5Possible structure of the inclusion complex between (a): daidzein and β-CD, type I; (b): daidzein and β-CD, type II; (c): puerarin and β-CD; (d): daidzin and β-CD obtained with the program Autodock 4.0).