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米曲霉α-淀粉酶在磷酸钾-聚乙二醇双水相体系中的分配。

Aspergillus oryzae alpha-amylase partition in potassium phosphate-polyethylene glycol aqueous two-phase systems.

机构信息

Bioseparation Lab, Physical-Chemistry Department, Faculty of Biochemical and Pharmaceutical Sciences, National University of Rosario, FonCyT, CIUNR and CONICET, Suipacha 570, S2002RLK Rosario, Argentina.

出版信息

Int J Biol Macromol. 2011 Jul 1;49(1):7-13. doi: 10.1016/j.ijbiomac.2011.03.003. Epub 2011 Mar 22.

Abstract

The aim of this work is to study the partitioning of alpha-amylase from Aspergillus oryzae in polyethylene glycol-potassium phosphate systems formed by polymers of different molecular masses with different total concentrations, several NaCl concentrations and different volume ratio between the phases and at different temperatures. The enzyme was partitioned towards the top phase in the 2000-molecular-mass polyethylene glycol systems and towards the bottom phase in the other systems analyzed with higher molecular mass. The protein-medium interaction parameter (A) was determined; it increased in the same way as PEG molecular mass. The enthalpic and entropic changes found, in general, were negative and were shown to be associated by an entropic-enthalpic compensation effect suggesting that the ordered water structure in the chain of polyetyleneglycol plays a role in protein partition. The recovery in each of the phases was calculated in order to choose the best systems to be applied to enzyme isolation either from a polymer-rich or a polymer-poor phase. Enzymatic activity, circular dichroism and fluorescence were studied for the protein alone and in the presence of the different phases of the aqueous two-phase systems (ATPSs) in order to understand how they affect the enzymatic structure and the role of the protein-polymer interaction in the partitioning process. Secondary structure is not affected, in general, by the presence of the phases that do affect the enzymatic activity; therefore, there should be a change in the tertiary structure in the enzyme active site. These changes are more important for PEG 8000 than for PEG 2000 systems according to the results of the quenching of the intrinsic fluorescence. In a bio-separation process, the A. oryzae alpha-amylase could be isolated with ATPSs PEG 2000/Pi or PEG 8000/Pi with a high recovery, in the top or bottom phases, respectively.

摘要

本工作旨在研究在不同分子量的聚合物组成的聚乙二醇-磷酸钾体系中,在不同总浓度、不同 NaCl 浓度和不同相间体积比以及不同温度下,米曲霉α-淀粉酶的分配情况。在 2000 分子量的聚乙二醇体系中,酶分配到上相,而在其他分析的高分子量体系中,酶分配到下相。测定了蛋白质-介质相互作用参数(A),它随聚乙二醇分子量的增加而增加。一般来说,发现焓变和熵变都是负的,并表现出熵-焓补偿效应,这表明聚乙二醇链中有序水结构在蛋白质分配中起作用。计算了在每一相中酶的回收率,以选择最佳的体系,用于从富含聚合物相或聚合物贫相分离酶。为了了解它们如何影响酶的结构以及蛋白质-聚合物相互作用在分配过程中的作用,研究了蛋白质本身以及在水相双相体系(ATPS)的不同相中的酶的圆二色性和荧光。一般来说,酶的二级结构不受相的影响,而这些相影响酶的活性;因此,酶的活性部位的三级结构应该发生变化。根据内源荧光猝灭的结果,这些变化对于 PEG 8000 系统比对 PEG 2000 系统更为重要。在生物分离过程中,米曲霉α-淀粉酶可以用 ATPSs PEG 2000/磷酸钾或 PEG 8000/磷酸钾从富含聚合物相或聚合物贫相高效回收。

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