Zhang Y, Liang J Y, Huang S, Ke H, Lipscomb W N
Gibbs Chemical Laboratory, Harvard University, Cambridge, Massachusetts 02138.
Biochemistry. 1993 Feb 23;32(7):1844-57. doi: 10.1021/bi00058a019.
The crystal structures of fructose-1,6-bisphosphatase (EC 3.1.3.11) complexed with substrate alone or with substrate analogues in the presence of divalent metal ions have been determined. The substrate analogues, 2,5-anhydro-D-glucitol-1,6-bisphosphate (AhG-1,6-P2) and 2,5-anhydro-D-mannitol-1,6-bisphosphate (AhM-1,6-P2), differ from the alpha and beta anomers of fructose-1,6-bisphosphate (Fru-1,6-P2), respectively, in that the OH on C2 is replaced by a hydrogen atom. Structures have been refined at resolutions of 2.5 to 3.0 A to R factors of 0.172 to 0.195 with root-mean-square deviations of 0.012-0.018 A and 2.7-3.8 degrees from the ideal geometries of bond lengths and bond angles, respectively. In addition, the complex of substrate with the enzyme has been determined in the absence of metal. The electron density at 2.5-A resolution does not distinguish between alpha and beta anomers, which differ for the most part only in the position of the 1-phosphate group and the orientation of the C2-hydroxyl group. The positions of the 6-phosphate and the sugar ring of the substrate analogues are almost identical to those of the respective anomer of the substrate. In the presence of metal ions the positions of the 1-phosphate groups of both alpha and beta analogues differ significantly (0.8-1.0 A) from those of anomers of the substrate in the metal-free complex. Two metal ions (Mn2+ or Zn2+) are located at the enzyme active site of complexes of the alpha analogue AhG-1,6-P2. Metal site 1 is coordinated by the carboxylate groups of Glu-97, Asp-118, and Glu-280 and the 1-phosphate group of substrate analogue, while the metal site 2 is coordinated by the carboxylate groups of Glu-97, Asp-118, the 1-phosphate group of substrate analogue, and the carbonyl oxygen of Leu-120. Both metal sites have a distorted tetrahedral geometry. However, only one metal ion (Mg2+ or Mn2+) is found very near the metal site 1 in the enzyme's active site in complexes of the beta analogue AhM-1,6-P2 or for Mg2+ in the complex of the alpha analogue AhG-1,6-P2. This single metal ion is coordinated by the carboxylate groups of Glu-97, Asp-118, Asp-121, and Glu-280 and the 1-phosphate group of substrate analogue in a distorted square pyramidal geometry.(ABSTRACT TRUNCATED AT 400 WORDS)
已确定果糖-1,6-二磷酸酶(EC 3.1.3.11)在存在二价金属离子的情况下单独与底物或与底物类似物形成的晶体结构。底物类似物2,5-脱水-D-葡萄糖醇-1,6-二磷酸(AhG-1,6-P2)和2,5-脱水-D-甘露糖醇-1,6-二磷酸(AhM-1,6-P2)分别与果糖-1,6-二磷酸(Fru-1,6-P2)的α和β异头物不同,在于C2上的OH被氢原子取代。结构已在2.5至3.0 Å分辨率下精修至R因子为0.172至0.195,与键长和键角的理想几何结构的均方根偏差分别为0.012 - 0.018 Å和2.7 - 3.8度。此外,还确定了在没有金属的情况下底物与酶的复合物。2.5 Å分辨率下的电子密度无法区分α和β异头物,它们在很大程度上仅在1-磷酸基团的位置和C2-羟基的取向上有所不同。底物类似物的6-磷酸基团和糖环的位置与底物各自异头物的位置几乎相同。在存在金属离子的情况下,α和β类似物的1-磷酸基团的位置与无金属复合物中底物异头物的位置有显著差异(0.8 - 1.0 Å)。两个金属离子(Mn2+或Zn2+)位于α类似物AhG-1,6-P2复合物的酶活性位点。金属位点1由Glu-97、Asp-118和Glu-280的羧基以及底物类似物的1-磷酸基团配位,而金属位点2由Glu-97、Asp-118的羧基、底物类似物的1-磷酸基团以及Leu-120的羰基氧配位。两个金属位点都具有扭曲的四面体几何结构。然而,在β类似物AhM-1,6-P2的复合物中,仅在酶活性位点的金属位点1附近发现一个金属离子(Mg2+或Mn2+),或者在α类似物AhG-1,6-P2的复合物中发现Mg2+。这个单一金属离子由Glu-97、Asp-118、Asp-121和Glu-280的羧基以及底物类似物的1-磷酸基团以扭曲的方锥几何结构配位。(摘要截于400字)