Inoue Michio, Li Xiaodan
The Laboratory of Biomolecular Research, Paul Scherrer Institut, 5232 Villigen, Switzerland.
Protein Expr Purif. 2015 Nov;115:34-8. doi: 10.1016/j.pep.2015.05.008. Epub 2015 May 15.
The oxaloacetate decarboxylase primary Na(+) pump (Oad) produces energy for the surviving of some pathogenic bacteria under anaerobic conditions. Oad composes of three subunits: Oad-α, a biotinylated soluble subunit and catalyzes the decarboxylation of oxaloacetate; Oad-β, a transmembrane subunit and functions as a Na(+) pump; and Oad-γ, a single transmembrane α-helical anchor subunit and assembles Oad-α/β/γ complex. The molecular mechanism of Oad complex coupling the exothermic decarboxylation to generate the Na(+) electrochemical gradient remains unsolved. Our biophysical and biochemical studies suggested that the stoichiometry of Oad complex from Vibrio cholerae composed of α, β, γ in 4:2:2 stoichiometry not that of 4:4:4. The high-resolution structure determination of the Oad complex would reveal the energetic transformation mechanism from the catalytical soluble α subunit to membrane β subunit. Sufficient amount stable, conformational homogenous and active Oad complex with the right stoichiometry is the prerequisite for structural analysis. Here we report an easy and reproducible protocol to obtain high quantity and quality Oad complex protein for structural analysis.
草酰乙酸脱羧酶初级钠离子泵(Oad)在厌氧条件下为一些病原菌的存活产生能量。Oad由三个亚基组成:Oad-α,一个生物素化的可溶性亚基,催化草酰乙酸的脱羧反应;Oad-β,一个跨膜亚基,作为钠离子泵发挥作用;以及Oad-γ,一个单跨膜α螺旋锚定亚基,组装Oad-α/β/γ复合物。Oad复合物将放热脱羧反应与产生钠离子电化学梯度偶联的分子机制仍未解决。我们的生物物理和生化研究表明,霍乱弧菌的Oad复合物的化学计量比为α:β:γ = 4:2:2,而非4:4:4。Oad复合物的高分辨率结构测定将揭示从催化性可溶性α亚基到膜性β亚基的能量转化机制。具有正确化学计量比的足量稳定、构象均一且有活性的Oad复合物是进行结构分析的前提条件。在此,我们报告一种简便且可重复的方案,用于获取用于结构分析的高质量、高产量的Oad复合蛋白。