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一种具有草酰乙酸脱羧酶活性的稳定微型蛋白质。

A stable miniature protein with oxaloacetate decarboxylase activity.

作者信息

Weston Chris J, Cureton Charly H, Calvert Melanie J, Smart Oliver S, Allemann Rudolf K

机构信息

School of Chemistry, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK.

出版信息

Chembiochem. 2004 Aug 6;5(8):1075-80. doi: 10.1002/cbic.200300805.

Abstract

An 18-residue miniature enzyme, Apoxaldie-1, has been designed, based on the known structure of the neurotoxic peptide apamin. Three lysine residues were introduced on the solvent-exposed face of the apamin alpha-helix to serve as an active site for decarboxylation of oxaloacetate. The oxidised form of Apoxaldie-1, in which two disulfide bonds stabilise the alpha-helix, formed spontaneously. CD spectroscopy measurements revealed that, in its oxidised form, Apoxaldie-1 adopted a stably folded structure, which was lost upon reduction of the disulfide bonds. Despite its small size and the absence of a designed binding pocket, Apoxaldie-1 displayed saturation kinetics in its oxidised form and catalysed the decarboxylation of oxaloacetate at a rate that was almost four orders of magnitude faster than that observed with n-butylamine. This rivals the performance of the best synthetic oxaloacetate decarboxylases reported to date. Unlike those, however, Apoxaldie-1 displayed significant stability. It maintained its secondary structure at temperatures in excess of 75 degrees C, in the presence of high concentrations of guanidinium chloride and at pH values as low as 2.2. Apamin-based catalysts have potential for the generation of miniature peptides that display activity under nonphysiological conditions.

摘要

基于神经毒性肽蜂毒明肽的已知结构,设计了一种由18个残基组成的微型酶Apoxaldie-1。在蜂毒明肽α-螺旋的溶剂暴露面上引入了三个赖氨酸残基,作为草酰乙酸脱羧的活性位点。Apoxaldie-1的氧化形式自发形成,其中两个二硫键稳定了α-螺旋。圆二色光谱测量表明,氧化形式的Apoxaldie-1具有稳定的折叠结构,二硫键还原后该结构消失。尽管Apoxaldie-1体积小且没有设计的结合口袋,但其氧化形式表现出饱和动力学,催化草酰乙酸脱羧的速率比正丁胺快近四个数量级。这可与迄今为止报道的最佳合成草酰乙酸脱羧酶的性能相媲美。然而,与那些酶不同的是,Apoxaldie-1表现出显著的稳定性。在温度超过75摄氏度、存在高浓度氯化胍以及pH值低至2.2的情况下,它仍能保持其二级结构。基于蜂毒明肽的催化剂有可能生成在非生理条件下具有活性的微型肽。

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