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Enantioselective Transesterification by Candida antarctica Lipase B Immobilized on Fumed Silica

机译:固定在气相二氧化硅上的南极假丝酵母脂肪酶B的对映选择性酯交换

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摘要

Enzymatic catalysis to produce molecules such as perfumes, flavors, and fragrances has the advantage of allowing the products to be labeled “natural” for marketing in the U.S., in addition to the exquisite selectivity and stereoselectivity of enzymes that can be an advantage over chemical catalysis. Enzymatic catalysis in organic solvents is attractive if solubility issues of reactants or products, or thermodynamic issues (water as a product in esterification) complicate or prevent aqueous enzymatic catalysis. Immobilization of the enzyme on a solid support can address the generally poor solubility of enzymes in most solvents.We have recently reported on a novel immobilization method for Candida antarctica Lipase B on fumed silica to improve the enzymatic activity in hexane. This research is extended here to study the enantioselective transesterification of (RS)-1-phenylethanol with vinyl acetate. The maximum catalytic activity for this preparation exceeded the activity (on an equal enzyme amount basis) of the commercial Novozyme 435® significantly. The steady-state conversion for (R)-1-phenylethanol was about 75% as confirmed via forward and reverse reaction. The catalytic activity steeply increases with increasing nominal surface coverage of the support until a maximum is reached at a nominal surface coverage of 230%. We hypothesize that the physical state of the enzyme molecules at a low surface coverage is dominated in this case by detrimental strong enzyme-substrate interactions. Enzyme-enzyme interactions may stabilize the active form of the enzyme as surface coverage increases while diffusion limitations reduce the apparent catalytic performance again at multi-layer coverage. The temperature-, solvent-, and long-term stability for CALB/fumed silica preparations showed that these preparations can tolerate temperatures up to 70°C, continuous exposure to solvents, and long term storage.
机译:酶催化产生诸如香水,香精和香料之类的分子的优势在于,除了酶的精湛选择性和立体选择性外,酶产品还具有优于化学催化的优势,该产品可标记为“天然”产品以在美国销售。 。如果反应物或产物的溶解度问题或热力学问题(酯化中的水为产物)使水溶液酶催化反应复杂化或受阻,则有机溶剂中的酶催化作用将很有吸引力。将酶固定在固体支持物上可以解决酶在大多数溶剂中普遍溶解性差的问题。我们最近报道了一种新的将南极假丝酵母脂肪酶B固定在气相二氧化硅上的新方法,以提高己烷中的酶活性。该研究在此扩展,以研究(RS)-1-苯基乙醇与乙酸乙烯酯的对映选择性酯交换反应。该制剂的最大催化活性显着超过了商业Novozyme435®的活性(以等量酶为基础)。如通过正向和反向反应所证实的,(R)-1-苯基乙醇的稳态转化率为约75%。催化活性随着载体的标称表面覆盖率的增加而急剧增加,直到在230%的标称表面覆盖率达到最大值。我们假设在这种情况下,酶分子在低表面覆盖率下的物理状态受有害的强酶-底物相互作用的支配。随着表面覆盖率的增加,酶与酶之间的相互作用可以稳定酶的活性形式,而扩散限制又会降低多层覆盖率时的表观催化性能。 CALB /气相二氧化硅制备物的温度,溶剂和长期稳定性表明,这些制备物可耐受高达70°C的温度,连续暴露于溶剂中并能长期保存。

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