载槲皮素复合纳米颗粒制备及稳定性和缓释性能
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大连理工大学 流体与粉体工程研究设计所

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TQ469

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Preparation, stability and slow release properties analysis of quercetin loaded composite nanoparticles
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1.R D Institute of Fluid and Powder Engineering,Dalian University of Technology;2.R&D Institute of Fluid and Powder Engineering,Dalian University of Technology

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    摘要:

    以槲皮素(Que)和玉米醇溶蛋白(Zein)为核,酪蛋白酸钠(SC)或SC-海藻酸钠(SA)为壳,采用抗溶剂沉淀法和静电吸附法制备了SC单壳层稳定的Zein纳米颗粒包埋Que的Que-Zein-SC复合纳米颗粒(Q-Z-SC)和SC-SA双壳层稳定的Zein纳米颗粒包埋Que的Que-Zein-SC-SA复合纳米颗粒(Q-Z-SC-SA)。基于纳米粒度及Zeta电位分析以及Que包埋率测试,在m(Zein)∶m(SC)=1∶1的条件下,分别考察了m(Que)∶m(Zein)、m(SC)∶m(SA)对Q-Z-SC、Q-Z-SC-SA的粒径分布和Zeta电位以及Que包埋情况的影响;采用FTIR表征,探究Q-Z-SC和Q-Z-SC-SA形成的相互作用机制;通过稳定性和体外模拟释放实验,分析pH和离子强度(NaCl溶液浓度)对Q-Z-SC、Q-Z-SC-SA稳定性和模拟胃肠条件的Que释放情况。结果表明,m(Que)∶m(Zein)=1∶25制备的Q-Z-SC(Q1-Z25-SC25)的平均粒径为158.2 nm,Que包埋率为79.53%;m(Que)∶m(Zein)=1∶25、m(SC)∶m(SA)=25∶7.5制备的Q-Z-SC-SA(Q1-Z25-SC25-SA7.5)的平均粒径为251.6 nm,对Que的包埋率显著提高至90.71%。静电、氢键和疏水相互作用是复合纳米颗粒形成的主要作用力。Q1-Z25-SC25和Q1-Z25-SC25-SA7.5均具有优异的pH和离子强度稳定性,并具有模拟胃肠条件下的Que缓释能力,在模拟胃消化阶段,Que释放率分别为87.23%和69.4%,在模拟肠消化阶段,Que释放率分别为11.04%和22.64%。

    Abstract:

    The core of the composite nanoparticles is constituted by quercetin (Que) and zein (Zein), while sodium caseinate (SC) or SC-sodium alginate (SA) serves as the shell. The nanoparticles are stabilized by a single layer of SC, which is embedded in a zein matrix. Double-shell-layer-stabilised Zein nanoparticles were prepared by antisolvent precipitation and electrostatic adsorption methods, with Que (Q-Z-SC) and SC-SA. These nanoparticles were embedded in the Que-Zein-SC-SA composite nanoparticles (Q-Z-SC-SA). The effects of m(Que)∶m(Zein) and m(SC)∶m(SA) on the particle size distribution and zeta potential of Q-Z-SC, Q-Z-SC-SA, and the embedding of Que were investigated under the condition of m(Zein)∶m(SC) based on the nanoparticle size and zeta potential analysis as well as the Que embedding rate test. The interaction mechanism of Q-Z-SC and Q-Z-SC-SA formation was explored by FTIR characterisation, and the effects of pH and ionic strength (NaCl solution concentration) on the stability of Q-Z-SC, Q-Z-SC-SA and Que release under simulated gastrointestinal conditions were analysed by stability and in vitro simulated release experiments. The results demonstrated that the average particle size of Q-Z-SC (Q1-Z25-SC25), prepared by a molar ratio of Que:Zein of 1∶25, was 158.2 nm, with a Que encapsulation rate of 79.53%. Q-Z-SC-SA, prepared by a molar ratio of Que∶Zein of 1∶25 and SC∶SA of 25∶7.5, exhibited an average particle size of 251.6 nm and a Que encapsulation rate of 90.71%. m(Que)∶m(Zein) = 1∶25 and m(SC)∶m(SA) = 25∶7.5 (Q1- Z25-SC25-SA7.5) with an average particle size of 251.6 nm demonstrated a significant increase in the encapsulation of Que, reaching 90.71%. The formation of the composite nanoparticles was driven by electrostatic, hydrogen bonding and hydrophobic interactions. Both Q1-Z25-SC25 and Q1-Z25-SC25-SA7.5 exhibited excellent pH and ionic strength stabilities, as well as the capacity to regulate the release of Que under simulated gastrointestinal conditions. The gastrointestinal conditions were simulated using the following parameters: gastric digestion stage (87.23% Que release rate) and enteric digestion stage (69.4% Que release rate). The Que release rates were 11.04% and 22.64%, respectively.

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刘志军,秦薪博,李志义,刘凤霞,许晓飞,魏炜.载槲皮素复合纳米颗粒制备及稳定性和缓释性能[J].精细化工,2025,42(3):

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  • 收稿日期:2024-03-14
  • 最后修改日期:2024-05-03
  • 录用日期:2024-04-08
  • 在线发布日期: 2025-03-14
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