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Solvent-free lipase-catalyzed synthesis of diacylgycerols as low-calorie food ingredients

机译:低溶剂食品成分的无溶剂脂肪酶催化合成二酰基甘油

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摘要

Problems derived from obesity and overweight have recently promoted the development of fat substitutes and other low-calorie foods. On the one hand, fats with short- and medium-chain fatty acids are a source of quick energy, easily hydrolyzable and hardly stored as fat. Furthermore, 1,3-diacylglycerols are not hydrolyzed to 2-monoacylglycerols in the gastrointestinal tract, reducing the formation of chylomicron and lowers the serum level of triacylglycerols by decreasing its resynthesis in the enterocyte. In this work, these two effects were combined to synthesize short- and medium-chain 1,3-diacylglycerols, leading to a product with great potential as for their low-calorie properties. Lipase-catalyzed transesterification reactions were performed between short- and medium-chain fatty acid ethyl esters and glycerol. Different variables were investigated, such as the type of biocatalyst, the molar ratio FAEE:glycerol, the adsorption of glycerol on silica gel, or the addition of lecithin. Best reaction conditions were evaluated considering the percentage of 1,3-DAG produced and the reaction rate. Except Novozym 435 (Candida antarctica), other lipases required the adsorption of glycerol on silica gel to form acylglycerols. Lipases that gave the best results with adsorption were Novozym 435 and Lipozyme RM IM (Rhizomucor miehei) with 52 and 60.7% DAG at 32h, respectively. Because of its specificity for sn-1 and sn-3 positions, lipases leading to a higher proportion of 1,3-DAG vs. 1,2-DAG were Lipozyme RM IM (39.8 and 20.9%, respectively) and Lipase PLG (Alcaligenes sp.) (35.9 and 19.3%, respectively). By adding 1% (w/w) of lecithin to the reaction with Novozym 435 and raw glycerol, the reaction rate was considerably increased from 41.7 to 52.8% DAG at 24h.
机译:肥胖和超重引起的问题最近促进了脂肪替代品和其他低热量食品的发展。一方面,具有短链和中链脂肪酸的脂肪是快速能量的来源,易于水解且几乎不作为脂肪储存。此外,在胃肠道中1,3-二酰基甘油不水解为2-单酰基甘油,减少了乳糜微粒的形成,并通过减少其在肠上皮细胞中的再合成而降低了血清三酰基甘油的水平。在这项工作中,将这两种作用结合在一起,合成了短链和中链的1,3-二酰基甘油,从而产生了一种具有低热量特性的巨大潜力的产品。在短链和中链脂肪酸乙酯与甘油之间进行脂肪酶催化的酯交换反应。研究了不同的变量,例如生物催化剂的类型,FAEE:甘油的摩尔比,甘油在硅胶上的吸附或卵磷脂的添加。考虑到产生的1,3-DAG的百分比和反应速率,评估了最佳反应条件。除了Novozym 435(Candida antarctica)外,其他脂肪酶都需要甘油吸附在硅胶上才能形成酰基甘油。吸附效果最好的脂肪酶是Novozym 435和Lipozyme RM IM(Rhizomucor miehei),它们在32h分别具有52和60.7%的DAG。由于其对sn-1和sn-3位置的特异性,导致1,3-DAG比例高于1,2-DAG的脂肪酶为Lipozyme RM IM(分别为39.8和20.9%)和Lipase PLG(产碱酶) sp。)(分别为35.9%和19.3%)。通过在与Novozym 435和粗甘油的反应中添加1%(w / w)的卵磷脂,在24小时时,反应速率从41.7大大提高到52.8%。

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