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Enzymatic hydrolysis of penicillin and in situ product separation in thermally induced reversible phase-separation of ionic liquids/water mixture

机译:青霉素的酶促水解和离子液体/水混合物的热诱导可逆相分离中的原位产物分离

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Enzymatic hydrolysis of penicillin G to produce 6-aminopenicillanic acid, key intermediate for the production of semisynthetic 3-lactam antibiotics, is one of the most relevant example of industrial implementation of biocatalysts. The hydrolysis reaction is traditionally carried out in aqueous buffer at pH 7.5-8. However, the aqueous rout exhibits several drawbacks in enzyme stability and product recovery. In this study, several ionic liquids (ILs) have been used as media for enzymatic hydrolysis of penicillin G. The results indicated that hydrophobic ILs/water two-phase system were good media for the reaction. In addition, a novel aqueous two-phase system based on the lower critical solution temperature type phase changes of amino acid based ILs/water mixture was developed for in situ penicillin G hydrolysis and product separation. For instance, hydrolysis yield of 87.13% was obtained in system containing 30wt% [TBP][Tf-ILe] with pH control (pH 7.6). Since the phase-separation of this medium system can be reversible switched from single to two phases by slightly changing the solution temperature, enzymatic hydrolytic reaction and product recovery were more efficient than those of aqueous system. In addition, the ILs could be reused for at least 5 cycles without significant loss in hydrolysis efficiency.
机译:青霉素G的酶促水解产生6-氨基青霉酸,这是生产半合成3-内酰胺抗生素的关键中间体,是生物催化剂工业应用中最相关的实例之一。水解反应通常在pH 7.5-8的水性缓冲液中进行。然而,含水溃烂在酶稳定性和产物回收方面表现出若干缺点。在这项研究中,几种离子液体(ILs)已被用作酶水解青霉素G的介质。结果表明,疏水性ILs /水两相系统是反应的良好介质。此外,开发了基于氨基酸的IL /水混合物的较低临界溶液温度型相变的新型水两相系统,用于原位青霉素G水解和产物分离。例如,在含有30%(重量)[TBP] [Tf-ILe]和pH值控制(pH 7.6)的体系中,水解产率为87.13%。由于通过稍微改变溶液温度可以将该介质系统的相分离从单相可逆地切换为两相,因此酶水解反应和产物回收比水性系统更有效。此外,IL可以重复使用至少5个循环,而不会显着降低水解效率。

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