Moritz Michał, Geszke-Moritz Małgorzata
Institute of Chemistry and Technical Electrochemistry, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, 60-965 Poznań, Poland.
Department of Pharmaceutical Chemistry, Faculty of Pharmacy, Poznan University of Medical Sciences, Grunwaldzka 6, 60-780 Poznań, Poland.
Materials (Basel). 2019 Nov 7;12(22):3671. doi: 10.3390/ma12223671.
This study aimed at the adsorption of 18β-glycyrrhetinic acid (18β-GA), a pentacyclic triterpenoid derivative of oleanane type, onto functionalized mesoporous SBA-15 silica and non-porous silica (Aerosil) as the reference adsorbent. Although 18β-GA possesses various beneficial pharmacological properties including antitumor, anti-inflammatory, and antioxidant activity, it occurs is small amounts in plant materials. Thus, the efficient methods of this bioactive compound enrichment from vegetable raw materials are currently studied. Siliceous adsorbents were functionalized while using various alkoxysilane derivatives, such as (3-aminopropyl)trimethoxysilane (APTMS), [3-(methylamino)propyl]trimethoxysilane (MAPTMS), (N,N-dimethylaminopropyl)trimethoxysilane (DMAPTMS), and [3-(2-aminothylamino)propyl] trimethoxysilane (AEAPTMS). The effect of silica surface modification with agents differing in the structure and the order of amine groups on the adsorption capacity of the adsorbent and adsorption efficiency were thoroughly examined. The equilibrium adsorption data were analyzed while using the Langmuir, Freundlich, Redlich-Peterson, Temkin, Dubinin-Radushkevich, and Dubinin-Astakhov isotherms. Both linear regression and nonlinear fitting analysis were employed in order to find the best-fitted model. The adsorption isotherms of 18β-GA onto silicas functionalized with APTMS, MAPTMS, and AEAPTMS indicate the Langmuir-type adsorption, whereas sorbents modified with DMAPTMS show the constant distribution of the adsorbate between the adsorbent and the solution regardless of silica type. The Dubinin-Astakhov, Dubinin-Radushkevich, and Redlich-Peterson equations described the best the process of 18β-GA adsorption onto SBA-15 and Aerosil silicas that were functionalized with APTMS, MAPTMS, and AEAPTMS, regardless of the method that was used for the estimation of isotherm parameters. Based on nonlinear fitting analysis (Dubinin-Astakhov model), it can be concluded that SBA-15 sorbent that was modified with APTMS, MAPTMS, and AEAPTMS is characterized by twice the adsorption capacity (202.8-237.3 mg/g) as compared to functionalized non-porous silica (118.2-144.2 mg/g).
本研究旨在将齐墩果烷型五环三萜衍生物18β-甘草次酸(18β-GA)吸附到功能化介孔SBA-15二氧化硅和无孔二氧化硅(气相法二氧化硅)上,后者作为参比吸附剂。尽管18β-GA具有多种有益的药理特性,包括抗肿瘤、抗炎和抗氧化活性,但它在植物材料中的含量很少。因此,目前正在研究从植物原料中富集这种生物活性化合物的有效方法。使用各种烷氧基硅烷衍生物,如(3-氨丙基)三甲氧基硅烷(APTMS)、[3-(甲氨基)丙基]三甲氧基硅烷(MAPTMS)、(N,N-二甲基氨丙基)三甲氧基硅烷(DMAPTMS)和[3-(2-氨乙基氨基)丙基]三甲氧基硅烷(AEAPTMS)对硅质吸附剂进行功能化。深入研究了胺基结构和顺序不同的试剂对二氧化硅表面进行改性后,对吸附剂吸附容量和吸附效率的影响。使用朗缪尔、弗伦德利希、雷德利希-彼得森、特姆金、杜比宁-拉杜舍维奇和杜比宁-阿斯塔霍夫等温线分析平衡吸附数据。采用线性回归和非线性拟合分析以找到最佳拟合模型。18β-GA在经APTMS、MAPTMS和AEAPTMS功能化的二氧化硅上的吸附等温线表明为朗缪尔型吸附,而用DMAPTMS改性的吸附剂显示,无论二氧化硅类型如何,吸附质在吸附剂和溶液之间的分布恒定。杜比宁-阿斯塔霍夫、杜比宁-拉杜舍维奇和雷德利希-彼得森方程最能描述18β-GA在经APTMS、MAPTMS和AEAPTMS功能化的SBA-15和气相法二氧化硅上的吸附过程,无论用于估算等温线参数的方法如何。基于非线性拟合分析(杜比宁-阿斯塔霍夫模型),可以得出结论,经APTMS、MAPTMS和AEAPTMS改性的SBA-15吸附剂的吸附容量(202.8 - 237.3 mg/g)是功能化无孔二氧化硅(118.2 - 144.2 mg/g)的两倍。