首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Solubility Enhancement of Myricetin by Inclusion Complexation with Heptakis-O-(2-Hydroxypropyl)-β-Cyclodextrin: A Joint Experimental and Theoretical Study
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Solubility Enhancement of Myricetin by Inclusion Complexation with Heptakis-O-(2-Hydroxypropyl)-β-Cyclodextrin: A Joint Experimental and Theoretical Study

机译:七肽-O-(2-羟丙基)-β-环糊精包合络合提高杨梅素的溶解度:联合实验和理论研究

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摘要

Four cyclodextrins (CD) including β-cyclodextrin (β-CD), γ-cyclodextrin (γ-CD), heptakis- -(2-hydroxypropyl)-β-cyclodextrin (HP-β-CD), and heptakis- -(2, 6-di- -methyl)-β-cyclodextrin (DM-β-CD) were used as solubilizer to study the solubility enhancement of myricetin. The results of the phase solubility study showed that the presence of CDs could enhance the solubility of myricetin by forming 1:1 complexes. Among all CDs, HP-β-CD had the highest solubilization effect to myricetin. The concentration of myricetin could be 1.60 × 10 moL/L when the presence of HP-β-CD reached 1.00 × 10 moL/L, which was 31.45 times higher than myricetin’s aqueous solubility. Subsequently, the HP-β-CD:myricetin complex was characterized by Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), and thermogravimetric analysis (TGA). In order to get an insight of the plausible structure of the complex, molecular docking was used to study the complexation process of HP-β-CD and myricetin. In the complex, the A ring and C ring of myricetin were complexed into the hydrophobic cavity of HP-β-CD, while the ring B was located at the wide rim of HP-β-CD. Four hydrogen bonding interactions were found between HP-β-CD and -OH groups of the guest in the HP-β-CD: myricetin complex. The complexation energy (△ ) for the host-guest interactions was calculated with a negative sign, indicating the formation of the complex was an exergonic process. A 30-ns molecular dynamics simulation was conducted to the HP-β-CD: myricetin complex. Calculation results showed that no large structural deformation or position change were observed during the whole simulation time span. The average root-mean-square deviation (RMSD) changes of the host and guest were 2.444 and 1.145 Å, respectively, indicating the complex had excellent stability.
机译:四种环糊精(CD),包括β-环糊精(β-CD),γ-环糊精(γ-CD),庚基-(2-羟丙基)-β-环糊精(HP-β-CD)和庚基-(2用6-二-甲基)-β-环糊精(DM-β-CD)作为增溶剂研究杨梅素的溶解度。相溶解度研究的结果表明,CD的存在可以通过形成1:1配合物来增强杨梅素的溶解度。在所有CD中,HP-β-CD对杨梅素的增溶作用最高。当HP-β-CD的存在达到1.00×10 moL / L时,杨梅素的浓度可能为1.60×10 moL / L,这比杨梅素的水溶性高31.45倍。随后,通过傅立叶变换红外光谱(FT-IR),X射线衍射(XRD)和热重分析(TGA)对HP-β-CD:杨梅素复合物进行表征。为了了解复合物的合理结构,使用分子对接技术研究了HP-β-CD和杨梅素的复合过程。在该复合物中,杨梅素的A环和C环被复合到HP-β-CD的疏水腔中,而环B位于HP-β-CD的宽边缘。在HP-β-CD:杨梅素复合物中,客体的HP-β-CD和-OH基团之间发现了四个氢键相互作用。计算出的客体-客体相互作用的络合能(△)带有一个负号,表明该络合物的形成是一个能量过程。对HP-β-CD:杨梅素复合物进行了30 ns的分子动力学模拟。计算结果表明,在整个模拟时间段内均未观察到较大的结构变形或位置变化。宿主和客体的平均均方根偏差(RMSD)变化分别为2.444和1.145Å,表明该配合物具有出色的稳定性。

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