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小麦和拟南芥非磷酸化甘油醛-3-磷酸脱氢酶的异源表达。

Heterologous expression of non-phosphorylating glyceraldehyde-3-phosphate dehydrogenase from Triticum aestivum and Arabidopsis thaliana.

机构信息

Instituto de Agrobiotecnología del Litoral (IAL, CONICET-UNL), Facultad de Bioquímica y Ciencias Biológicas, Paraje El Pozo, CC 242, S3000ZAA Santa Fe, Argentina.

出版信息

Biochimie. 2010 Jul;92(7):909-13. doi: 10.1016/j.biochi.2010.03.017. Epub 2010 Mar 30.

Abstract

Non-phosphorylating glyceraldehyde-3-phosphate dehydrogenase (np-Ga3PDHase) plays a key metabolic role in higher plants. Purification to homogeneity of enzymes found in relatively low abundance in plants represents a major technical challenge that can be solved by molecular gene cloning and heterologous expression. To apply this strategy to np-Ga3PDHase we performed the cloning of the gapN gene from Arabidopsis thaliana and Triticum aestivum, followed by the heterologous expression in Escherichia coli by two different strategies. Soluble expression of the Arabidopsis enzyme in the pET32c+ vector required a chaperone co-expression system (pGro7). The system using E. coli BL21-CodonPlus cells and the pRSETB vector was successful for expression of a soluble His(6)-taged recombinant wheat enzyme producing 2.5 mg of electrophoretically pure protein per liter of cell culture after a single chromatographic purification step. Both systems were effective for the expression of functional plant np-Ga3PDHases, however the expression of the Arabidopsis enzyme in pRSETB was affordable but not as optimal as for the wheat protein. This would be associated with a different codon usage preference between this specific plant and E. coli. Considering the relevant role played by np-Ga3PDHase in plant metabolism, it is experimentally valuable the development of a procedure to obtain adequate amounts of highly purified enzyme, which envisages the viability to perform studies of structure-to-function relationships to better understand the enzyme kinetics and regulation, as well as carbon and energy metabolism in higher plants.

摘要

非磷酸化甘油醛-3-磷酸脱氢酶(np-Ga3PDHase)在高等植物中发挥着关键的代谢作用。从植物中相对较少的丰度中纯化出酶的均相,是一个主要的技术挑战,可以通过分子基因克隆和异源表达来解决。为了将这一策略应用于 np-Ga3PDHase,我们从拟南芥和小麦中克隆了 gapN 基因,然后通过两种不同的策略在大肠杆菌中进行了异源表达。拟南芥酶在 pET32c+载体中的可溶性表达需要伴侣蛋白共表达系统(pGro7)。使用大肠杆菌 BL21-CodonPlus 细胞和 pRSETB 载体的系统成功地表达了可溶性 His(6)-标记的重组小麦酶,在单一的色谱纯化步骤后,每升细胞培养物可产生 2.5 毫克电泳纯的蛋白质。这两个系统都有效地表达了功能性的植物 np-Ga3PDHases,然而,在 pRSETB 中表达拟南芥酶的效率不如小麦蛋白那么高。这可能与特定植物和大肠杆菌之间不同的密码子使用偏好有关。考虑到 np-Ga3PDHase 在植物代谢中所起的重要作用,开发一种获得足够量的高度纯化酶的方法具有实验价值,这设想了进行结构-功能关系研究的可行性,以更好地理解酶动力学和调节,以及高等植物中的碳和能量代谢。

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