Bosron W F, Anderson R A, Falk M C, Kennedy F S, Vallee B L
Biochemistry. 1977 Feb 22;16(4):610-4. doi: 10.1021/bi00623a009.
Alkaline phosphatase of Escherichia coli, isolated by procedures which do not alter its intrinsic metal content, contains 4.0 +/- 0.3 g-atoms of tightly bound zinc per mole (Kd less than 1 muM) and 1.3 +/- 0.2 g-atoms of magnesium per mole (Bosron, W.F., Kennedy, F.S., and Vallee, B.L. (1975), Biochemistry 14, 2275-2282). Importantly, the binding of magnesium is dependent both upon pH and zinc content. Hence, the failure to assign the maximal magnesium stoichiometry to enzyme isolated by conventional procedures may be considered a consequence of the conditions chosen for optimal bacterial growth and purification of the enzyme which are not the conditions for optimal binding of magnesium to alkaline phosphatase. Under the conditions employed for the present experimental studies, a maximum of six metal sites are available to bind zinc and magnesium, i.e., four for zinc and two for magnesium. Magnesium alone does not activate the apoenzyme, but it regulates the nature of the zinc-dependent restoration of catalytic activity to apophosphatase, increasing the activity of enzyme containing 2-g-atoms of zinc five-fold and that of enzyme containing 4-g-atoms of zinc 1.4-fold. Moreover, hydrogen-tritium exchange reveals the stabilizing effects of magnesium on the structural properties of phosphatase. However, neither the KM for substrate nor the phosphate binding stoichiometry and Ki are significantly altered by magnesium. Hence, magnesium, which is specificially bound to the enzyme, both stabilizes the dynamic protein structure and regulates the expression of catalytic activity by zinc in alkaline phosphatase.
通过不改变其固有金属含量的方法分离得到的大肠杆菌碱性磷酸酶,每摩尔含有4.0±0.3克原子紧密结合的锌(解离常数小于1微摩尔)和每摩尔1.3±0.2克原子的镁(博斯隆,W.F.,肯尼迪,F.S.,以及瓦利,B.L.(1975年),《生物化学》14卷,2275 - 2282页)。重要的是,镁的结合既取决于pH值,也取决于锌的含量。因此,未能将最大镁化学计量比赋予通过传统方法分离的酶,可能被认为是由于选择了有利于细菌最佳生长和酶纯化的条件,而这些条件并非镁与碱性磷酸酶最佳结合的条件。在本实验研究采用的条件下,最多有六个金属位点可用于结合锌和镁,即四个用于锌,两个用于镁。单独的镁不能激活脱辅基酶,但它调节脱辅基磷酸酶锌依赖性催化活性恢复的性质,使含2克原子锌的酶活性增加五倍,含4克原子锌的酶活性增加1.4倍。此外,氢 - 氚交换揭示了镁对磷酸酶结构性质的稳定作用。然而,底物的米氏常数、磷酸盐结合化学计量比和抑制常数均未因镁而发生显著改变。因此,特异性结合到酶上的镁,既稳定了动态蛋白质结构,又调节了锌在碱性磷酸酶中催化活性的表达。