Centre of Biological Engineering, University of Minho, Campus of Gualtar, 4710-057, Braga, Portugal.
LABBELS - Associate Laboratory, University of Minho, 4710-057, Braga, Guimarães, Portugal.
ChemSusChem. 2023 Oct 20;16(20):e202300615. doi: 10.1002/cssc.202300615. Epub 2023 Aug 9.
In this work, three deep eutectic mixtures (DES 1: choline chloride/urea; DES 2: choline chloride/glycerol; and DES 3: tetrabutylammonium bromide/imidazole) were investigated as mediums for the synthesis of glucose laurate and glucose acetate. Aiming to achieve a greener and more sustainable approach, the synthesis reactions were catalyzed by lipases from Aspergillus oryzae (LAO), Candida rugosa (LCR), and porcine pancreas (LPP). The hydrolytic activity of lipases against p-nitrophenyl hexanoate revealed no evidence of enzyme inactivation when DES were used as medium. Regarding the transesterification reactions, combining LAO or LCR with DES 3 resulted in the efficient production of glucose laurate (from glucose and vinyl laurate) (conversion >60 %). The best result for LPP was observed in DES 2, with 98 % of product production after 24 hours of reaction. When replacing vinyl laurate by a smaller hydrophilic substrate, vinyl acetate, a distinct behavior was observed. LCR and LPP performed better in DES 1, yielding more than 80 % of glucose acetate after 48 hours of reaction. The catalytic activity of LAO was less pronounced, reaching only nearly 40 % of product in DES 3. The results highlight the potential of combining biocatalysis with greener and environmentally-safer solvents, for the synthesis of differentiated chain-length sugar fatty acid esters (SFAE).
在这项工作中,研究了三种深共晶混合物(DES1:氯化胆碱/尿素;DES2:氯化胆碱/甘油;DES3:四丁基溴化铵/咪唑)作为合成月桂酸葡萄糖酯和醋酸葡萄糖酯的介质。为了实现更绿色、更可持续的方法,使用脂肪酶(来自米曲霉(LAO)、皱褶假丝酵母(LCR)和猪胰腺(LPP))作为催化剂进行合成反应。脂肪酶对 p-硝基苯己酸酯的水解活性表明,当 DES 用作介质时,没有证据表明酶失活。关于酯交换反应,LAO 或 LCR 与 DES3 结合可高效生产月桂酸葡萄糖酯(由葡萄糖和乙烯基月桂酸酯合成)(转化率>60%)。对于 LPP,DES2 的效果最佳,反应 24 小时后产物产率达到 98%。当用更小的亲水性底物乙烯基乙酸酯代替乙烯基月桂酸酯时,观察到明显的不同行为。LCR 和 LPP 在 DES1 中的表现更好,反应 48 小时后葡萄糖醋酸酯的产率超过 80%。LAO 的催化活性不明显,在 DES3 中仅达到近 40%的产物。结果表明,将生物催化与更绿色、更环保的溶剂相结合,用于合成差异化链长糖脂肪酸酯(SFAE)具有潜力。