Heterologous expression of diadenylate cyclase in the form of inclusion bodies with enzymatic activity

IF 0.1 Q4 MULTIDISCIPLINARY SCIENCES
M. Vinter, I. Kazlouski, A. Zinchenko
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引用次数: 0

Abstract

Using the DNA recombination technique, a new bacterial strain Escherichia coli DAC-22 was derived, whose cells are able to carry out the heterologous expression of Bacillus thuringiensis diadenylate cyclase – the enzyme catalyzing the reaction of adenosine-5′-triphosphate (ATP) transformation into cyclic 3′,5′-diadenylate (cyclo-di-AMP). To derive the strain, E. coli “Rosetta (DE3) pLysS” cells were originally used as recipients of plasmid pET42a+ with the inserted gene disA encoding diadenylate cyclase of B. thuringiensis. The cells of the recombinant strain are able to produce heterologous diadenylate cyclase localized predominantly (by 90 %) in the fraction of the catalytically active inclusion bodies. The productivity of the new strain with respect to diadenylate cyclase structurally arranged as the inclusion bodies was 720 units/l of cultural fluid. The inclusion bodies formed by the newly engineered strain are intended for use in the technology of producing pharmacologically promising cyclo-di-AMP.
二腺苷酸环化酶以具有酶活性的包涵体形式异源表达
利用DNA重组技术,获得了一株新的菌株大肠杆菌DAC-22,其细胞能够异源表达苏云金芽孢杆菌二腺苷酸环化酶,该酶催化腺苷-5′-三磷酸(ATP)转化为环状3′,5′-二腺苷酸(cyclo-di-AMP)的反应。为了获得该菌株,最初使用大肠杆菌“Rosetta(DE3)pLysS”细胞作为质粒pET42a+的受体,该质粒插入了编码苏云金芽孢杆菌二腺苷酸环化酶的基因disA。重组菌株的细胞能够产生异源二腺苷酸环化酶,其主要定位于(90%)催化活性包涵体的部分中。新菌株相对于结构上排列为包涵体的二腺苷酸环化酶的生产率为720单位/l培养液。由新工程菌株形成的包涵体旨在用于生产药理学上有前景的环二AMP的技术。
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DOKLADY NATSIONALNOI AKADEMII NAUK BELARUSI
DOKLADY NATSIONALNOI AKADEMII NAUK BELARUSI MULTIDISCIPLINARY SCIENCES-
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