Enhancing the Antioxidant Characteristics of Phenolic Acids by Their Conversion into Cholinium Salts

化学 抗氧化剂 溶解度 盐(化学) 多酚 有机化学 细胞毒性 生物利用度 没食子酸 核化学 生物化学 生物信息学 生物 体外
作者
Tânia E. Sintra,Andreia Luís,Samuel N. Rocha,Ana I.M.C. Lobo Ferreira,Fernando Gonçalves,Luı́s M. N. B. F. Santos,Bruno Miguel Neves,Mara G. Freire,Sónia P. M. Ventura,João A. P. Coutinho
出处
期刊:ACS Sustainable Chemistry & Engineering [American Chemical Society]
卷期号:3 (10): 2558-2565 被引量:60
标识
DOI:10.1021/acssuschemeng.5b00751
摘要

Because of the close relation between oxidative stress and a plethora of inflammatory diseases, antioxidants have received an increased attention for incorporation into dermatological products. Their use and absorption are, however, limited by their low solubility in water-rich formulations. Herein, a set of novel cholinium-based salts, namely dicholinium ellagate and cholinium caffeate, syringate, vanillate, gallate, and salicylate, were synthesized and characterized. Their melting and decomposition temperatures, water solubility, and toxicological, antioxidant, cytotoxicity and pro-/anti-inflammatory activities were addressed. These new salts, exclusively composed of ions derived from natural sources, display a high thermal stability–up to 150 °C. The synthesized compounds are significantly more soluble in water (on average, 3 orders of magnitude higher) than the corresponding phenolic acids. Furthermore, they present not only similar but even higher antioxidant and anti-inflammatory activities, as well as comparable cytotoxicity and lower ecotoxicity profiles than their acidic precursors. Among all the investigated salts, dicholinium ellagate is the most promising synthesized salt when considering the respective antioxidant and anti-inflammatory activities. Because all the synthesized salts are based on the cholinium cation, they can further be envisaged as essential nutrients to be used in oral drugs.
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